Detection of genetic polymorphisms

Information

  • Patent Application
  • 20070105128
  • Publication Number
    20070105128
  • Date Filed
    March 22, 2006
    20 years ago
  • Date Published
    May 10, 2007
    19 years ago
Abstract
The present invention relates to genetic polymorphism data, compositions and methods for detecting genetic polymorphisms, methods for evaluating drugs using genetic polymorphisms and screening methods for drugs.
Description
FIELD OF THE INVENTION

The present invention relates to genetic polymorphism data, compositions and methods for detecting genetic polymorphisms, methods for evaluating drugs using genetic polymorphisms and screening methods for drugs.


BACKGROUND

Human beings come in all shapes and sizes, and over three billion genetic codes are located in somewhat different sites in each human being. Individual DNA sequence variations in the human genome are known to directly cause specific diseases or conditions, to predispose certain individuals to specific diseases or conditions, and to affect responses of individuals to treatments such as drugs. Such variations also modulate the severity or progression of many diseases. Additionally, DNA sequences vary between populations. Therefore, determining DNA sequence variations in the human genome is useful for making accurate diagnoses, for finding suitable therapies, and for understanding the relationship between genome variations and environmental factors in the pathogenesis of diseases, the prevalence of conditions and the efficacy of therapies.


There are several types of DNA sequence variations in the human genome. These variations include insertions, deletions and copy number differences of repeated sequences. These differences in the genetic code are called genetic polymorphisms. The most common DNA sequence variations in the human genome are single base pair substitutions. These are generally referred to as single nucleotide polymorphisms (SNPs) when the variant allele has a population frequency of at least 1%. SNPs may be classified by where they appear in the genome. For example, a single nucleotide polymorphism may be classified as a coding SNP (cSNP) when it is in a region encoding a protein, or genome SNP (gSNP) when it is detected anywhere in a genome, without reference to whether it is in a coding region. Coding SNPs include silent SNPs (sSNP), and SNPs that may be in regions associated with coding sequences, such as regulatory regions or elements (e.g., regulatory SNPs, or rSNPs) and introns (e.g., intron SNPs, or iSNPs).


SNPs are particularly useful in studying the relationship between DNA sequence variations and human diseases, conditions and drug responses because SNPs are stable in populations, occur frequently, and have lower mutation rates than other genome variations such as repeating sequences. In addition, methods for detecting SNPs are more amenable to being automated and used for large-scale studies than methods for detecting other, less common DNA sequence variations.


Single nucleotide polymorphisms are useful as polymorphism markers for discovering genes that cause or exacerbate certain diseases. This is directly related in clinical medicine to diagnosing the risk for a disease and determining the proper pharmaceutical treatment. There is currently a worldwide effort going on to develop drugs based on the target genes that cause diseases. Individual patients also react differently when a drug is administered. In some patients, a drug may have a significant effect, in others a lesser effect and in still others no effect at all. In other words, there is a major difference in patient reactions to the same drug. Patients may also metabolize drugs at different rates. In addition to differences in therapeutic reactions among patients to drugs, there is also the possibility of strong and even fatal side effects due to genetically linked differences in, e.g., drug metabolism, drug transport or drug receptor function. Analysis of genetic polymorphisms such as SNPs allows for the selection of drugs and the development of treatment protocols tailored to each individual patient (so-called “personalized” medical treatments). Instead of the using trial-and-error methods of matching patients with the right drugs, doctors may, for example, be able to analyze a patient's genetic profile and prescribe the best available drug therapy from the beginning. Not only would this take the guesswork out of finding the right drug, it would reduce the likelihood of adverse reactions, thus increasing safety.


SUMMARY OF THE INVENTION

The present invention identifies genetic polymorphisms relating to genes associated with drug metabolism. In some embodiments, the present invention provides methods for determining variations in sequences and genes associated with drug-metabolizing enzymes. In preferred embodiments, the present invention provides methods for collecting genetic polymorphism data for use in evaluating the effectiveness and safety of a drug based on the data, and screening drugs using the data. In some preferred embodiments, the polymorphisms of the present invention are used to evaluate a causal relationship between the genetic make-up of a patient and a response to an administered drug.


The present invention relates to genes encoding enzymes associated with drug metabolism (drug metabolizing enzymes, or DMEs). In particular, the present invention relates to sequence variations associated with variations in DMEs. In some embodiments, variations occur in coding regions of DMEs, such as may alter a function of the DMEs, (e.g., by increasing or decreasing its level of activity, or shifting its activity to an alternative target or function). In other embodiments, the variations occur in non-coding regions of the genome, such as may alter expression of a DME (e.g., increasing or decreasing the amount of an enzyme produced in a cell) or processing of an RNA transcript encoding a DME (e.g., by altering splicing).


In some embodiments, the present invention provides methods for detecting DME-related sequence variations. In some preferred embodiments, the methods of the present invention are used to create a profile of DME-related polymorphisms in a test subject.


In other embodiments, the present invention provides isolated nucleic acid sequences encoding variant DMEs. For example, the present invention provides a recombinant DNA vector comprising DNA having a nucleotide sequence encoding a variant DME, the nucleotide sequence comprising a sequence including, but not limited to, SEQ ID NOS:1-7669, and substantially similar sequences. In a preferred embodiment, the invention provides a host cell transformed with a recombinant DNA vector comprising DNA having a nucleotide sequence encoding a variant DME. The invention is not limited by the nature of the host cell employed. The art is well aware of expression vectors suitable for the expression of nucleotide sequences encoding variant DMEs that can be expressed in a variety of prokaryotic and eukaryotic host cells. In some preferred embodiments, the host cell is a eukaryotic cell grown in culture, such as for use in in vitro drug screening (e.g., by monitoring the expression of genes associated with the pathways targeted by a particular test drug). In other preferred embodiments, the host cell is in vivo.


The present invention provides systems and methods for detection of polymorphisms associated with genes encoding enzymes associated with drug metabolism. The present invention is not limited in the nature of the detection assay used for detection or identification of such polymorphisms. Such detection assays include, but are not limited to, hybridization methods and array technologies (e.g., technologies available from Aclara BioSciences, Haywood, Calif.; Affymetrix, Santa Clara, Calif.; Agilent Technologies, Inc., Palo Alto, Calif.; Aviva Biosciences Corp., San Diego, Calif.; Caliper Technologies Corp., Palo Alto, Calif.; Celera, Rockville, Md.; CuraGen Corp., New Haven, Conn.; Hyseq Inc., Sunnyvale, Calif.; Illumina, Inc., San Diego, Calif.; Incyte Genomics, Palo Alto, Calif.; Motorola BioChip Systems; Nanogen, San Diego, Calif.; Orchid BioSciences, Inc., Princeton, N.J.; Applera Corp., Foster City, Calif.; Rosetta Inpharmatics, Kirkland, Wash.; and Sequenom, San Diego, Calif.); polymerase chain reaction-based methods (e.g., TAQMAN, Applera Corp., GENECODE system, EraGen, Middleton, Wis.); branched hybridization methods; enzyme mismatch cleavage methods; NASBA; sandwich hybridization methods; methods employing molecular beacons; ligase chain reactions, and the like.


Methods of the present invention find application in improving the drug discovery and approval processes. For example, the costs and risks of drug development may be reduced if only those persons capable of responding to a drug are selected for clinical trials. In addition, previously failed drug candidates may be revived as they are matched with more appropriate patient populations. Decreases in the number of adverse drug reactions, the number of failed drug trials, the time it takes to get a drug approved, the length of time patients are on medication, the number of medications patients must take to find an effective therapy, and an increase in the range of possible drug targets will promote a net decrease in the cost of health care.


Thus, in some embodiments, the present invention provides a method of identifying individuals having a polymorphism, comprising providing nucleic acid from a subject; and detecting the presence of at least one polymorphism in said nucleic acid, said at least one polymorphism including, but not limited to, polymorphisms found in SEQ ID Nos:1-7669. In some embodiments, the method further provides the step of providing a prognosis (e.g., a genotype relative risk or a population attributable risk) to the subject based on the presence or absence of the at least one polymorphism. In some embodiments, the detecting step is carried out using a detection assay including, but not limited to, a hybridization assay, a TAQMAN assay, an invasive cleavage assay, use of mass spectroscopy, a microarray, a polymerase chain reaction, a rolling circle extension assay, a sequencing assay, a hybridization assay employing a probe complementary to a polymorphism, a bead array assay, a primer extension assay, an enzyme mismatch cleavage assay, a branched hybridization assay, a NASBA assay, a molecular beacon assay, a cycling probe assay, a ligase chain reaction assay, and a sandwich hybridization assay.


The present invention also provides a nucleic acid (e.g., a gene, a probe, a primer, etc.) comprising a sequence selected from the group consisting of SEQ ID NO:1-7669 or complements thereof. In some embodiments, the nucleic acid molecule comprises a label. In some embodiments, the nucleic acid is attached to a solid support (e.g., as part of a microarray). The present invention also provides vectors comprising the nucleic acid and host cell comprising the vector, as well as polypeptide encoded by the nucleic acid. Methods of producing and purifying polypeptides are well known in the art.


The present invention further provides kits for detecting a polymorphism, comprising at least one reagent that specifically detects a polymorphism in a sequence including, but not limited to, SEQ ID Nos:1-7669. In some embodiments, the kit further comprising instructions for determining whether the subject is at increased risk of having a drug metabolism disorder. In some embodiments, the at least one reagent comprises a nucleic acid probe. The kits can be configured for a variety of uses including, but not limited to, use as an in vitro diagnostic detection assay, an analyte specific reagent detection assay, and a research-use-only detection assay.


The present invention also provides a method for screening subjects for genetic markers associated with drug metabolizing enzyme(s), comprising: a) providing a biological sample comprising a nucleic acid from a subject; b) testing the nucleic acid for a polymorphism in a genetic marker associated with a drug metabolizing enzyme, said genetic marker comprising one or more nucleotide polymorphisms designated by n, said n selected from a base substitution, an insertion, or a deletion found in a sequence selected from the group consisting of SEQ ID Nos:1-7669. The present invention is not limited by the source of the nucleic acid. In some embodiments, the biological sample comprises blood, saliva, amniotic fluid, and tissue. In some embodiments, the subject is a human. In some preferred embodiments, the nucleic acid comprises DNA and/or RNA.


The present invention further provides a composition comprising an array of detection assays, said array comprising a plurality of drug metabolizing enzyme nucleotide polymorphism detection assays, one or more of said detection assays being capable of detecting one or more nucleotide polymorphisms designated by n in SEQ ID Nos:1-7669, wherein n represents a base substitution, insertion, or deletion compared to a wild-type sequence.


The present invention also provides a composition comprising a detection probe for determining the presence or absence a single nucleotide polymorphism in a gene encoding a drug metabolizing enzyme, said gene comprising a sequence selected from the group consisting of SEQ ID Nos:1-7669.


The present invention further provides a method of determining the effectiveness of or side-effect of a drug or treatment protocol, comprising; a) administering a drug or treatment protocol to one or more subjects; b) obtaining nucleic acid from said one or more subjects; c) using a detection assay to detect the presence of at least one polymorphism in said nucleic acid from said one or more of subjects, said at least one polymorphism selected from the group consisting of polymorphisms found in SEQ ID Nos:1-7669; and d) assigning an effectiveness rating, side-effect rating, or score for said drug or treatment protocol based upon a result of one or more said detection assays (See e.g., Toxicology Testing Handbook: Principles, Applications, and Data Interpretation, ed. Jacobson-Kram and Keller, 2001, herein incorporated by reference in its entirety).


The present invention also provides a method of prescribing a drug to or treatment protocol for a subject, comprising; providing nucleic acid from said subject; using a detection assay to detect the presence of at least one polymorphism in the nucleic acid, said at least one polymorphism selected from the group consisting of polymorphisms found in SEQ ID Nos:1-7669; and, prescribing said drug or treatment protocol based upon the result of said detection assay.


The present invention further provides a method for generating assay data comprising: obtaining a sample from a subject containing nucleic acid; transferring said sample to a laboratory; and receiving data from said laboratory, wherein said data corresponds to the presence of at least one polymorphism in said nucleic acid, said at least one polymorphism selected from the group consisting of polymorphisms found in SEQ ID Nos:1-7669. The present further provides data sets generated by this method.


Definitions


To facilitate an understanding of the present invention, a number of terms and phrases are defined below:


As used herein, the terms “complementary” or “complementarity” are used in reference to polynucleotides (i.e., a sequence of nucleotides such as an oligonucleotide or a target nucleic acid) related by the base-pairing rules. For example, for the sequence “5′-A-G-T-3′,” is complementary to the sequence “3′-T-C-A-5′.” Complementarity may be “partial,” in which only some of the nucleic acids' bases are matched according to the base pairing rules. Or, there may be “complete” or “total” complementarity between the nucleic acids. The degree of complementarity between nucleic acid strands has significant effects on the efficiency and strength of hybridization between nucleic acid strands. This is of particular importance in amplification reactions, as well as detection methods that depend upon binding between nucleic acids. Either term may also be used in reference to individual nucleotides, especially within the context of polynucleotides. For example, a particular nucleotide within an oligonucleotide may be noted for its complementarity, or lack thereof, to a nucleotide within another nucleic acid strand, in contrast or comparison to the complementarity between the rest of the oligonucleotide and the nucleic acid strand. Nucleotide analogs used to form non-standard base pairs, whether with another nucleotide analog (e.g., an IsoC/IsoG base pair), or with a naturally occurring nucleotide (e.g., as described in U.S. Pat. No. 5,912,340, herein incorporated by reference in its entirety) are also considered to be complementary to a base pairing partner within the meaning this definition.


The term “homology” and “homologous” refers to a degree of identity. There may be partial homology or complete homology. A partially homologous sequence is one that is less than 100% identical to another sequence.


As used herein, the term “hybridization” is used in reference to the pairing of complementary nucleic acids. Hybridization and the strength of hybridization (i.e., the strength of the association between the nucleic acids) is influenced by such factors as the degree of complementary between the nucleic acids, stringency of the conditions involved, and the Tm of the formed hybrid. “Hybridization” methods involve the annealing of one nucleic acid to another, complementary nucleic acid, i.e., a nucleic acid having a complementary nucleotide sequence. The ability of two polymers of nucleic acid containing complementary sequences to find each other and anneal through base pairing interaction is a well-recognized phenomenon. The initial observations of the “hybridization” process by Marmur and Lane, Proc. Natl. Acad. Sci. USA 46:453 (1960) and Doty et al., Proc. Natl. Acad. Sci. USA 46:461 (1960) have been followed by the refinement of this process into an essential tool of modern biology.


With regard to complementarity, it is important for some diagnostic applications to determine whether the hybridization represents complete or partial complementarity. For example, where it is desired to detect simply the presence or absence of a foreign DNA sequence, it is only important that the hybridization method ensures hybridization when the relevant sequence is present; conditions can be selected where both partially complementary probes and completely complementary probes will hybridize. Other diagnostic applications, however, may require that the hybridization method distinguish between partial and complete complementarity. It may be of interest to detect genetic polymorphisms. For example, human hemoglobin is composed, in part, of four polypeptide chains. Two of these chains are identical chains of 141 amino acids (alpha chains) and two of these chains are identical chains of 146 amino acids (beta chains). The gene encoding the beta chain is known to exhibit polymorphism. The normal allele encodes a beta chain having glutamic acid at the sixth position. The mutant allele encodes a beta chain having valine at the sixth position. This difference in amino acids has a profound (most profound when the individual is homozygous for the mutant allele) physiological impact known clinically as sickle cell anemia. It is well known that the genetic basis of the amino acid change involves a single base difference between the normal allele DNA sequence and the mutant allele DNA sequence.


The complement of a nucleic acid sequence as used herein refers to an oligonucleotide which, when aligned with the nucleic acid sequence such that the 5′ end of one sequence is paired with the 3′ end of the other, is in “antiparallel association.” Certain bases not commonly found in natural nucleic acids may be included in the nucleic acids of the present invention and include, for example, inosine and 7-deazaguanine. Complementarity need not be perfect; stable duplexes may contain mismatched base pairs or unmatched bases. Those skilled in the art of nucleic acid technology can determine duplex stability empirically considering a number of variables including, for example, the length of the oligonucleotide, base composition and sequence of the oligonucleotide, ionic strength and incidence of mismatched base pairs.


As used herein, the term “Tm” is used in reference to the “melting temperature.” The melting temperature is the temperature at which a population of double-stranded nucleic acid molecules becomes half dissociated into single strands. Several equations for calculating the Tm of nucleic acids are well known in the art. As indicated by standard references, a simple estimate of the Tm value may be calculated by the equation: Tm=81.5+0.41(% G+C), when a nucleic acid is in aqueous solution at 1 M NaCl (see e.g., Anderson and Young, Quantitative Filter Hybridization, in Nucleic Acid Hybridization (1985). Other references (e.g., Allawi, H. T. & SantaLucia, J., Jr. Thermodynamics and NMR of internal G.T mismatches in DNA. Biochemistry 36, 10581-94 (1997) include more sophisticated computations which take structural and environmental, as well as sequence characteristics into account for the calculation of Tm.


As used herein the term “stringency” is used in reference to the conditions of temperature, ionic strength, and the presence of other compounds, under which nucleic acid hybridizations are conducted. With “high stringency” conditions, nucleic acid base pairing will occur only between nucleic acid fragments that have a high frequency of complementary base sequences. Thus, conditions of “weak” or “low” stringency are often required when it is desired that nucleic acids that are not completely complementary to one another be hybridized or annealed together.


“High stringency conditions” when used in reference to nucleic acid hybridization comprise conditions equivalent to binding or hybridization at 42 C in a solution consisting of 5×SSPE (43.8 g/l NaCl, 6.9 g/l NaH2PO4H2O and 1.85 g/l EDTA, pH adjusted to 7.4 with NaOH), 0.5% SDS, 5× Denhardt's reagent and 100 μg/ml denatured salmon sperm DNA followed by washing in a solution comprising 0.1×SSPE, 1.0% SDS at 42 C when a probe of about 500 nucleotides in length is employed.


“Medium stringency conditions” when used in reference to nucleic acid hybridization comprise conditions equivalent to binding or hybridization at 42 C in a solution consisting of 5×SSPE (43.8 g/l NaCl, 6.9 g/l NaH2PO4H2O and 1.85 g/l EDTA, pH adjusted to 7.4 with NaOH), 0.5% SDS, 5× Denhardt's reagent and 100 μg/ml denatured salmon sperm DNA followed by washing in a solution comprising 1.0×SSPE, 1.0% SDS at 42 C when a probe of about 500 nucleotides in length is employed.


“Low stringency conditions” comprise conditions equivalent to binding or hybridization at 42 C in a solution consisting of 5×SSPE (43.8 g/l NaCl, 6.9 g/l NaH2PO4H2O and 1.85 g/l EDTA, pH adjusted to 7.4 with NaOH), 0.1% SDS, 5× Denhardt's reagent [50× Denhardt's contains per 500 ml: 5 g Ficoll (Type 400, Pharamcia), 5 g BSA (Fraction V; Sigma)] and 100 g/ml denatured salmon sperm DNA followed by washing in a solution comprising 5×SSPE, 0.1% SDS at 42 C when a probe of about 500 nucleotides in length is employed.


The term “gene” refers to a DNA sequence that comprises control and coding sequences necessary for the production of an RNA having a non-coding function (e.g., a ribosomal or transfer RNA), a polypeptide or a precursor. The RNA or polypeptide can be encoded by a full-length coding sequence or by any portion of the coding sequence so long as the desired activity or function is retained.


The term “wild-type” refers to a gene or a gene product that has the characteristics of that gene or gene product when isolated from a naturally occurring source. A wild-type gene is that which is most frequently observed in a population and is thus arbitrarily designated the “normal” or “wild-type” form of the gene. In contrast, the term “modified,” “mutant,” or “polymorphic” refers to a gene or gene product that displays modifications in sequence and or functional properties (i.e., altered characteristics) when compared to the wild-type gene or gene product. It is noted that naturally-occurring mutants can be isolated; these are identified by the fact that they have altered characteristics when compared to the wild-type gene or gene product.


The term “oligonucleotide” as used herein is defined as a molecule comprising two or more deoxyribonucleotides or ribonucleotides, preferably at least 5 nucleotides, more preferably at least about 10-15 nucleotides and more preferably at least about 15 to 30 nucleotides. The exact size will depend on many factors, which in turn depend on the ultimate function or use of the oligonucleotide. The oligonucleotide may be generated in any manner, including chemical synthesis, DNA replication, reverse transcription, PCR, or a combination thereof.


Because mononucleotides are reacted to make oligonucleotides in a manner such that the 5′ phosphate of one mononucleotide pentose ring is attached to the 3′ oxygen of its neighbor in one direction via a phosphodiester linkage, an end of an oligonucleotide is referred to as the “5′ end” if its 5′ phosphate is not linked to the 3′ oxygen of a mononucleotide pentose ring and as the “3′ end” if its 3′ oxygen is not linked to a 5′ phosphate of a subsequent mononucleotide pentose ring. As used herein, a nucleic acid sequence, even if internal to a larger oligonucleotide, also may be said to have 5′ and 3′ ends. A first region along a nucleic acid strand is said to be upstream of another region if the 3′ end of the first region is before the 5′ end of the second region when moving along a strand of nucleic acid in a 5′ to 3′ direction.


When two different, non-overlapping oligonucleotides anneal to different regions of the same linear complementary nucleic acid sequence, and the 3′ end of one oligonucleotide points towards the 5′ end of the other, the former may be called the “upstream” oligonucleotide and the latter the “downstream” oligonucleotide. Similarly, when two overlapping oligonucleotides are hybridized to the same linear complementary nucleic acid sequence, with the first oligonucleotide positioned such that its 5′ end is upstream of the 5′ end of the second oligonucleotide, and the 3′ end of the first oligonucleotide is upstream of the 3′ end of the second oligonucleotide, the first oligonucleotide may be called the “upstream” oligonucleotide and the second oligonucleotide may be called the “downstream” oligonucleotide.


The term “primer” refers to an oligonucleotide that is capable of acting as a point of initiation of synthesis when placed under conditions in which primer extension is initiated. An oligonucleotide “primer” may occur naturally, as in a purified restriction digest or may be produced synthetically.


A primer is selected to be “substantially” complementary to a strand of specific sequence of the template. A primer must be sufficiently complementary to hybridize with a template strand for primer elongation to occur. A primer sequence need not reflect the exact sequence of the template. For example, a non-complementary nucleotide fragment may be attached to the 5′ end of the primer, with the remainder of the primer sequence being substantially complementary to the strand. Non-complementary bases or longer sequences can be interspersed into the primer, provided that the primer sequence has sufficient complementarity with the sequence of the template to hybridize and thereby form a template primer complex for synthesis of the extension product of the primer.


The term “label” as used herein refers to any atom or molecule that can be used to provide a detectable (preferably quantifiable) effect, and that can be attached to a nucleic acid or protein. Labels include but are not limited to dyes; radiolabels such as 32P; binding moieties such as biotin; haptens such as digoxgenin; luminogenic, phosphorescent or fluorogenic moieties; and fluorescent dyes alone or in combination with moieties that can suppress or shift emission spectra by fluorescence resonance energy transfer (FRET). Labels may provide signals detectable by fluorescence, radioactivity, colorimetry, gravimetry, X-ray diffraction or absorption, magnetism, enzymatic activity, and the like. A label may be a charged moiety (positive or negative charge) or alternatively, may be charge neutral. Labels can include or consist of nucleic acid or protein sequence, so long as the sequence comprising the label is detectable.


The term “signal” as used herein refers to any detectable effect, such as would be caused or provided by a label or an assay reaction.


As used herein, the term “detector” refers to a system or component of a system, e.g., an instrument (e.g. a camera, fluorimeter, charge-coupled device, scintillation counter, etc.) or a reactive medium (X-ray or camera film, pH indicator, etc.), that can convey to a user or to another component of a system (e.g., a computer or controller) the presence of a signal or effect. A detector can be a photometric or spectrophotometric system, which can detect ultraviolet, visible or infrared light, including fluorescence or chemiluminescence; a radiation detection system; a spectroscopic system such as nuclear magnetic resonance spectroscopy, mass spectrometry or surface enhanced Raman spectrometry; a system such as gel or capillary electrophoresis or gel exclusion chromatography; or other detection systems known in the art, or combinations thereof.


The term “sequence variation” as used herein refers to differences in nucleic acid sequence between two nucleic acids. For example, a wild-type structural gene and a mutant form of this wild-type structural gene may vary in sequence by the presence of single base substitutions and/or deletions or insertions of one or more nucleotides. These two forms of the structural gene are said to vary in sequence from one another. A second mutant form of the structural gene may exist. This second mutant form is said to vary in sequence from both the wild-type gene and the first mutant form of the gene.


The term “nucleotide analog” as used herein refers to modified or non-naturally occurring nucleotides such as 7-deaza purines (i.e., 7-deaza-dATP and 7-deaza-dGTP). Nucleotide analogs include base analogs and comprise modified forms of deoxyribonucleotides as well as ribonucleotides.


The term “polymorphism” refers to the coexistence of more than one form of a gene or portion thereof. A portion of a gene of which there are at least two different forms, i.e., two different nucleotide sequences, is referred to as a “polymorphic region of a gene”. A polymorphic region can be a single nucleotide, the identity of which differs in different alleles. A polymorphic region can also be several nucleotides long.


A “polymorphic gene” refers to a gene having at least one polymorphic region.


The term “polymorphic locus” is a locus present in a population that shows variation between members of the population (e.g., the most common allele has a frequency of less than 0.95). In contrast, a “monomorphic locus” is a genetic locus at little or no variations seen between members of the population (generally taken to be a locus at which the most common allele exceeds a frequency of 0.95 in the gene pool of the population).


A “non-human animal” of the invention can include mammals such as rodents, non-human primates, sheep, goats, horses, dogs, cows, chickens, amphibians, reptiles, etc. Preferred non-human animals are selected from the rodent family including rat and mouse, most preferably mouse, though transgenic amphibians, such as members of the Xenopus genus, and transgenic chickens can also provide important tools for understanding and identifying drugs that can affect processes, e.g., embryogenesis and tissue formation.


The term “operably linked” is intended to mean that the promoter is associated with the nucleic acid in such a manner as to facilitate transcription of the nucleic acid from the promoter.


The terms “protein”, “polypeptide” and “peptide” are used interchangeably herein when referring to a gene product.


The term “recombinant protein” refers to a polypeptide which is produced by recombinant DNA techniques, wherein generally, DNA encoding the polypeptide is inserted into a suitable expression vector which is in turn used to transform a host cell to produce the heterologous protein.


A “regulatory element”, also termed herein “regulatory sequence” is intended to include elements which are capable of modulating transcription from a basic promoter and include elements such as enhancers and silencers. The term “enhancer”, also referred to herein as “enhancer element”, is intended to include regulatory elements capable of increasing, stimulating, or enhancing transcription from a basic promoter. The term “silencer”, also referred to herein as “silencer element” is intended to include regulatory elements capable of decreasing, inhibiting, or repressing transcription from a basic promoter. Regulatory elements are typically present in 5′ flanking regions of genes. However, regulatory elements have also been shown to be present in other regions of a gene, in particular in introns. Regulatory elements may also be present downstream of coding regions. Thus, it is possible that DME genes have regulatory elements located in introns, exons, coding regions, and 3′ flanking sequences. Such regulatory elements are also intended to be encompassed by the present invention and polymorphisms in such elements can be identified by any of the assays that can be used to identify polymorphisms in regulatory elements in 5′ flanking regions of genes.


The term “regulatory element” further encompasses “tissue specific” regulatory elements, i.e., regulatory elements that affect expression of a DME gene preferentially in specific cells (e.g., cells of a specific tissue). Gene expression occurs preferentially in a specific cell if expression in this cell type is significantly higher than expression in other cell types. The term “regulatory element” also encompasses non-tissue specific regulatory elements, i.e., regulatory elements that are active in most cell types. Furthermore, a regulatory element can be a constitutive regulatory element, i.e., a regulatory element that constitutively regulates transcription, as opposed to a regulatory element that is inducible, i.e., a regulatory element which is active primarily in response to a stimulus. A stimulus can be, e.g., a molecule, such as a hormone, cytokine, heavy metal, phorbol ester, cyclic AMP (cAMP), or retinoic acid.


As used herein, the term “transfection” means the introduction of a nucleic acid, e.g., an expression vector, into a recipient cell by nucleic acid-mediated gene transfer. The term “transduction” is generally used herein when the transfection with a nucleic acid is by viral delivery of the nucleic acid. “Transformation”, as used herein, refers to a process in which a cell's genotype is changed as a result of the cellular uptake of exogenous DNA or RNA, and, for example, the transformed cell expresses a recombinant form of a polypeptide or, in the case of anti-sense expression from the transferred gene, the expression of a naturally-occurring form of the recombinant protein is disrupted.


As used herein, the term “transgene” refers to a nucleic acid sequence that has been introduced into a cell. Daughter cells deriving from a cell in which a transgene has been introduced are also said to contain the transgene (unless it has been deleted). A transgene can encode, e.g., a polypeptide, or an antisense transcript, partly or entirely heterologous, i.e., foreign, to the transgenic animal or cell into which it is introduced, or, is homologous to an endogenous gene of the transgenic animal or cell into which it is introduced, but which is designed to be inserted, or is inserted, into the animal's genome in such a way as to alter the genome of the cell into which it is inserted (e.g., it is inserted at a location which differs from that of the natural gene or its insertion results in a knockout). Alternatively, a transgene can also be present in an episome. A transgene can include one or more transcriptional regulatory sequence and any other nucleic acid, (e.g. intron), that may be necessary for optimal expression of a selected nucleic acid.


A “transgenic animal” refers to any animal, preferably a non-human animal, e.g. a mammal, bird or an amphibian, in which one or more of the cells of the animal contain heterologous nucleic acid introduced by way of human intervention, such as by transgenic techniques well known in the art. The nucleic acid is introduced into the cell, directly or indirectly by introduction into a precursor of the cell, by way of deliberate genetic manipulation, such as by microinjection or by infection with a recombinant virus. The term genetic manipulation does not include classical cross-breeding, or in vitro fertilization, but rather is directed to the introduction of a recombinant DNA molecule. This molecule may be integrated within a chromosome, or it may be extrachromosomally replicating DNA. In the typical transgenic animals described herein, the transgene causes cells to express a recombinant form of one of a protein, e.g. either agonistic or antagonistic forms. However, transgenic animals in which the recombinant gene is silent are also contemplated. Moreover, “transgenic animal” also includes those recombinant animals in which gene disruption of one or more genes is caused by human intervention, including both recombination and antisense techniques.


The term “treating” as used herein is intended to encompass curing as well as ameliorating at least one symptom of the condition or disease.


The term “sample” in the present specification and claims is used in its broadest sense. On the one hand it is meant to include a biological (e.g., human) specimen. On the other hand, a sample may include a specimen of synthetic origin.


Biological samples may be animal, including human, fluid, solid (e.g., stool) or tissue, as well as liquid and solid food and feed products and ingredients such as dairy items, vegetables, meat and meat by-products, and waste. Biological samples may be obtained from all of the various families of domestic animals, as well as feral or wild animals, including, but not limited to, such animals as ungulates, bear, fish, lagamorphs, rodents, etc.


The term “source of target nucleic acid” refers to any sample that contains or is suspected to contain nucleic acids (RNA or DNA). Particularly preferred sources of target nucleic acids are biological samples including, but not limited to blood, saliva, cerebral spinal fluid, pleural fluid, milk, lymph, sputum and semen.


The term “polymerization means” or “polymerization agent” refers to any agent capable of facilitating the addition of nucleoside triphosphates to an oligonucleotide. Preferred polymerization means comprise DNA and RNA polymerases.


The term “ligation means” or “ligation agent” refers to any agent capable of facilitating the ligation (i.e., the formation of a phosphodiester bond between a 3′-OH and a 5′ P located at the termini of two strands of nucleic acid). Preferred ligation means comprise DNA ligases and RNA ligases.


The term “reactant” is used herein in its broadest sense. The reactant can comprise, for example, an enzymatic reactant, a chemical reactant or light (e.g., ultraviolet light, particularly short wavelength ultraviolet light is known to break oligonucleotide chains). Any agent capable of reacting with an oligonucleotide to either shorten (i.e., cleave) or elongate the oligonucleotide is encompassed within the term “reactant.”


The term “nucleic acid sequence” as used herein refers to an oligonucleotide, nucleotide or polynucleotide, and fragments or portions thereof, and to DNA or RNA of genomic or synthetic origin that may be single or double stranded, and represent the sense or antisense strand. Similarly, “amino acid sequence” as used herein refers to peptide or protein sequence.


The term “peptide nucleic acid” (“PNA”) as used herein refers to a molecule comprising bases or base analogs such as would be found in natural nucleic acid, but attached to a peptide backbone rather than the sugar-phosphate backbone typical of nucleic acids. The attachment of the bases to the peptide is such as to allow the bases to base pair with complementary bases of nucleic acid in a manner similar to that of an oligonucleotide. These small molecules, also designated anti gene agents, stop transcript elongation by binding to their complementary strand of nucleic acid (Nielsen, et al. Anticancer Drug Des. 8:53 63 [1993]).


As used herein, the terms “purified” or “substantially purified” refer to molecules, either nucleic or amino acid sequences, that are removed from their natural environment, isolated or separated, and are at least 60% free, preferably 75% free, and most preferably 90% free from other components with which they are naturally associated. An “isolated polynucleotide” or “isolated oligonucleotide” is therefore a substantially purified polynucleotide.


As used herein, the term “kit” refers to any delivery system for delivering materials. In the context of reaction assays, such delivery systems include systems that allow for the storage, transport, or delivery of reaction reagents (e.g., oligonucleotides, enzymes, etc. in the appropriate containers) and/or supporting materials (e.g., buffers, written instructions for performing the assay etc.) from one location to another. For example, kits include one or more enclosures (e.g., boxes) containing the relevant reaction reagents and/or supporting materials. As used herein, the term “fragmented kit” refers to a delivery systems comprising two or more separate containers that each contain a subportion of the total kit components. The containers may be delivered to the intended recipient together or separately. For example, a first container may contain an enzyme for use in an assay, while a second container contains oligonucleotides. The term “fragmented kit” is intended to encompass kits containing Analyte specific reagents (ASR's) regulated under section 520(e) of the Federal Food, Drug, and Cosmetic Act, but are not limited thereto. Indeed, any delivery system comprising two or more separate containers that each contains a subportion of the total kit components are included in the term “fragmented kit.” In contrast, a “combined kit” refers to a delivery system containing all of the components of a reaction assay in a single container (e.g., in a single box housing each of the desired components). The term “kit” includes both fragmented and combined kits.


As used herein, the term “information” refers to any collection of facts or data. In reference to information stored or processed using a computer system(s), including but not limited to internets, the term refers to any data stored in any format (e.g., analog, digital, optical, etc.). As used herein, the term “information related to a subject” refers to facts or data pertaining to a subject (e.g., a human, plant, or animal). The term “genomic information” refers to information pertaining to a genome including, but not limited to, nucleic acid sequences, genes, allele frequencies, RNA expression levels, protein expression, phenotypes correlating to genotypes, etc. “Allele frequency information” refers to facts or data pertaining allele frequencies, including, but not limited to, allele identities, statistical correlations between the presence of an allele and a characteristic of a subject (e.g., a human subject), the presence or absence of an allele in a individual or population, the percentage likelihood of an allele being present in an individual having one or more particular characteristics, etc.


The term “cleavage structure” as used herein, refers to a structure that is formed by the interaction of at least one probe oligonucleotide and a target nucleic acid, forming a structure comprising a duplex, the resulting structure being cleavable by a cleavage agent, including but not limited to an enzyme. The cleavage structure is a substrate for specific cleavage by the cleavage means in contrast to a nucleic acid molecule that is a substrate for non-specific cleavage by agents such as phosphodiesterases that cleave nucleic acid molecules without regard to secondary structure (i.e., no formation of a duplexed structure is required).




DESCRIPTION OF THE DRAWINGS


FIG. 1 shows sample embodiments of TAQMAN probes.



FIG. 2 represents one embodiment of the TAQMAN PCR method.



FIG. 3 shows examples of probes labeled with fluorescent dyes.



FIG. 4 shows a sample embodiment of an invasive cleavage structure, e.g., for an INVADER assay.



FIG. 5 shows one embodiment of a FRET probe, e.g., for an INVADER assay.



FIG. 6 shows one embodiment of an INVADER assay.



FIG. 7 shows a diagram of an INVADER assay probe in which the allele does not match the probe.



FIG. 8 shows one embodiment of allele identification using a ligation reaction.



FIG. 9 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily B member 2 (ABCB2) gene.



FIG. 10 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily B member 4 (ABCB4) gene.



FIG. 11 shows a drawing of the structure of and SNP position in the microsomal epoxide hydrogenase 1 (EPHX1) gene.



FIG. 12 shows a drawing of the structure of and SNP position in the cytoplasmic epoxide hydrogenase 2 (EPHX2) gene.



FIG. 13 shows a drawing of the structure of and SNP position in the guanidinoacetate-N-methyltransferase (GAMT) gene.



FIG. 14 shows a drawing of the structure of and SNP position in the nicotinamide-N-methyltransferase (NNMT) gene.



FIG. 15 shows a drawing of the structure of and SNP position in the phenylethanolamine-N-methyltransferase (PNMT) gene.



FIG. 16 shows a drawing of the structure of and SNP position in the phosphatidylethanolamine-N-methyltransferase (PEMT) gene.



FIG. 17 shows a drawing of the structure of and SNP position in the glutathione-5-methyltransferase 3 (GSTM3) gene.



FIG. 18 shows a drawing of the structure of and SNP position in the aldehyde dehydrogenase 5 (ALDH5) gene.



FIG. 19 shows a drawing of the structure of and SNP position in the transglutaminase (TGM1) gene.



FIG. 20 shows a drawing of the structure of and SNP position in the gamma glutamyltransferase (GGT1) gene.



FIG. 21 shows a drawing of the structure of and SNP position in the NAD(P)H: quinone oxidetransferase (NQ01) gene.



FIG. 22 shows a drawing of the structure of and SNP position in the p53-induced gene 3 (PIG3) of a quinone oxide transferase homologue.



FIG. 23 shows a drawing of the structure of and SNP position in the NRH: quinone oxide transferase 2 (NQ02) gene.



FIG. 24 shows a drawing of the structure of and SNP position in the sulfotransferase 1A1 (SULT1A1/STP1) gene.



FIG. 25 shows a drawing of the structure of and SNP position in the sulfotransferase 1A2 (SULT1A2/STP2) gene.



FIG. 26 shows a drawing of the structure of and SNP position in the sulfotransferase-related protein 3 (SULTX3) gene.



FIG. 27 shows a drawing of the structure of and SNP position in the tyrosyl protein sulfotransferase (TPST1) gene.



FIG. 28 shows a drawing of the structure of and SNP position in the tyrosyl protein sulfotransferase (TPST2) gene.



FIG. 29 shows a drawing of the structure of and SNP position in the sulfotransferase 1A3 (SULT1A3/STM/HAST) gene.



FIG. 30 shows a drawing of the structure of and SNP position in the cerebroside transferase (CST) gene.



FIG. 31 shows a drawing of the structure of and SNP position in the sulfotransferase 1C1 (SULT1C1) gene.



FIG. 32 shows a drawing of the structure of and SNP position in the sulfotransferase 1C2 (SULT1C2) gene.



FIG. 33 shows a drawing of the structure of and SNP position in the thyroid hormone sulfotransferase (ST1B2) gene.



FIG. 34 shows a drawing of the structure of and SNP position in the hydrocarbon sulfotransferase 2 (CHST2) gene.



FIG. 35 shows a drawing of the structure of and SNP position in the sulfotransferase 2A1 (SULT2A1) gene.



FIG. 36 shows a drawing of the structure of and SNP position in the sulfotransferase 2B1 (SULT2B1) gene.



FIG. 37 shows a drawing of the structure of and SNP position in the hydrocarbon sulfotransferase 4 (CHST4) gene.



FIG. 38 shows a drawing of the structure of and SNP position in the hydrocarbon sulfotransferase 5 (CHST5) gene.



FIG. 39 shows a drawing of the structure of and SNP position in the HNK-sulfotransferase (NHK-1ST) gene.



FIG. 40 shows a drawing of the structure of and SNP position in the estrogen sulfotransferase (STE) gene.



FIG. 41 shows a drawing of the structure of and SNP position in the alcohol dehydrogenase 1 (ADH1) gene.



FIG. 42 shows a drawing of the structure of and SNP position in the alcohol dehydrogenase 2 (ADH2) gene.



FIG. 43 shows a drawing of the structure of and SNP position in the alcohol dehydrogenase 3 (ADH3) gene.



FIG. 44 shows a drawing of the structure of and SNP position in the alcohol dehydrogenase 6 (ADH6) gene.



FIG. 45 shows a drawing of the structure of and SNP position in the alcohol dehydrogenase 7 (ADH7) gene.



FIG. 46 shows a drawing of the structure of and SNP position in the short-chained alcohol dehydrogenase family (HEP27) gene.



FIG. 47 shows a drawing of the structure of and SNP position in the L1 intracellular adhesion molecule (L1 CAM) gene.



FIG. 48 shows a drawing of the structure of and SNP position in the arylalkylamine-N-acetyltransferase (AANAT) gene.



FIG. 49 shows a drawing of the structure of and SNP position in the N-actyltransferase homologue (ARD1) gene of Saccharomyces cerevisiae.



FIG. 50 shows a drawing of the structure of and SNP position in the N-actyltransferase 1 (NAT1) gene.



FIG. 51 shows a drawing of the structure of and SNP position in the N-actyltransferase 2 (NAT2) gene.



FIG. 52 shows a drawing of the structure of and SNP position in the granzyme A (GZMA) gene.



FIG. 53 shows a drawing of the structure of and SNP position in the granzyme B (GZMB) gene.



FIG. 54 shows a drawing of the structure of and SNP position in the esterase D-formylglutathione hydrolase (ESD) gene.



FIG. 55 shows a drawing of the structure of and SNP position in the dolichyl-diphosphooligosaccharide-protein glycosyltransferase (DDOST) gene.



FIG. 56 shows a drawing of the structure of and SNP position in the microsomal glutathione-5-transferase (MGST1) gene.



FIG. 57 shows a drawing of the structure of and SNP position, in the alcohol dehydrogenase 5 (ADH5) gene.



FIG. 58 shows a drawing of the structure of and SNP position in the glutathione-5-transferase M1 (GSTM1) gene.



FIG. 59 shows a drawing of the structure of and SNP position in the glutathione-5-transferase M2 (GSTM2) gene.



FIG. 60 shows a drawing of the structure of and SNP position in the glutathione-5-transferase M4 (GSTM4) gene.



FIG. 61 shows a drawing of the structure of and SNP position in the glutathione-5-transferase Z1 (GSTZ1) gene.



FIG. 62 shows a drawing of the structure of and SNP position in the glutathione-5-transferase P (GSTZPi) gene.



FIG. 63 shows a drawing of the structure of and SNP position in the glutathione-5-transferase q1 (GSTT1) gene.



FIG. 64 shows a drawing of the structure of and SNP position in the microsomal glutathione-5-transferase IL1 (MGST1L1) gene.



FIG. 65 shows a drawing of the structure of and SNP position in the microsomal glutathione-5-transferase 2 (MGST2) gene.



FIG. 66 shows a drawing of the structure of and SNP position in the microsomal glutathione-5-transferase 3 (MGST3) gene.



FIG. 67 shows a drawing of the structure of and SNP position in the glutathione-5-transferase A1 (GSTA1) gene.



FIG. 68 shows a drawing of the structure of and SNP position in the glutathione-5-transferase A4 (GSTA4) gene.



FIG. 69 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1a subcomplex 1 (NDUFA1) gene.



FIG. 70 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1a subcomplex 2 (NDUFA2) gene.



FIG. 71 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1a subcomplex 3 (NDUFA3) gene.



FIG. 72 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1a subcomplex 5 (NDUFA5) gene.



FIG. 73 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1a subcomplex 6 (NDUFA6) gene.



FIG. 74 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1a subcomplex 7 (NDUFA7) gene.



FIG. 75 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1a subcomplex 8 (NDUFA8) gene.



FIG. 76 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1a/b subcomplex 1 (NDUFAB1) gene.



FIG. 77 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1a subcomplex 9 (NDUFA9) gene.



FIG. 78 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase Fe—S protein 1 (NDUFS1) gene.



FIG. 79 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase Fe—S protein 3 (NDUFS3) gene.



FIG. 80 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase Fe—S protein 4 (NDUFS4) gene.



FIG. 81 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase Fe—S protein 5 (NDUFS5) gene.



FIG. 82 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase Fe—S protein 6 (NDUFS6) gene.



FIG. 83 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase Fe—S protein 8 (NDUFS8) gene.



FIG. 84 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1b subcomplex 3 (NDUFB3) gene.



FIG. 85 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1b subcomplex 5 (NDUFB5) gene.



FIG. 86 shows a drawing of the structure of and SNP position in the NADH-ubiquinone oxide reductase 1b subcomplex 7 (NDUFB7) gene.



FIG. 87 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily A member 1 (ABCA1) gene.



FIG. 88 shows a drawing of the structure of and SNP position in the catechol-0-methyltransferase (COMT) gene.



FIG. 89 shows a drawing of the structure of and SNP position in the vitamin-N-transferase (HNMT) gene.



FIG. 90 shows a drawing of the structure of and SNP position in the cytochrome P450 subfamily 1 (aromatic compound-induced) polypeptide 1 (CYP1A1) gene.



FIG. 91 shows a drawing of the structure of and SNP position in the cytochrome P450 subfamily 1 (aromatic compound-induced) polypeptide 2 (CYP1A2) gene.



FIG. 92 shows a drawing of the structure of and SNP position in the cytochrome P450 subfamily 1 (dioxin-induced) polypeptide 1 (CYP1B1) gene.



FIG. 93 shows a drawing of the structure of and SNP position in the arylacetamide deactylase (AADAC) gene.



FIG. 94 shows a drawing of the structure of and SNP position in the neuropathy target esterase (NTE) gene.



FIG. 95 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily C(CFTR/MRP) member 2 (MRP2) gene.



FIG. 96 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily B member 1 (ABCB1) gene.



FIG. 97 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily B member 3 (ABCB3) gene.



FIG. 98 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily B member 7 (ABCB7) gene.



FIG. 99 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily B member 8 (ABCB8) gene.



FIG. 100 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily B member 9 (ABCB9) gene.



FIG. 101 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily B member 10 (ABCB10) gene.



FIG. 102 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily B member 11 (ABCB11) gene.



FIG. 103 shows a drawing of the structure of and SNP position in the cytochrome P450 subfamily IVB polypeptide 1 (CYP4B1) gene.



FIG. 104 shows a drawing of the structure of and SNP position in the cytochrome P450 subfamily XXVIIA polypeptide 1 (CYP27A1) gene.



FIG. 105 shows a drawing of the structure of and SNP position in the cytochrome P450 subfamily IVF polypeptide 1 (CYP4F2) gene.



FIG. 106 shows a drawing of the structure of and SNP position in the cytochrome P450 subfamily 4F polypeptide 3 (CYP4F3) gene.



FIG. 107 shows a drawing of the structure of and SNP position in the cytochrome P450 subfamily 4F polypeptide 8 (CYP4F8) gene.



FIG. 108 shows a drawing of the structure of and SNP position in the aldehyde dehydrogenase 1 (ALDH1) gene.



FIG. 109 shows a drawing of the structure of and SNP position in the aldehyde dehydrogenase 2 (ALDH2) gene.



FIG. 110 shows a drawing of the structure of and SNP position in the aldehyde dehydrogenase 7 (ALDH7) gene.



FIG. 111 shows a drawing of the structure of and SNP position in the aldehyde dehydrogenase 8 (ALDH8) gene.



FIG. 112 shows a drawing of the structure of and SNP position in the aldehyde dehydrogenase 9 (ALDH9) gene.



FIG. 113 shows a drawing of the structure of and SNP position in the aldehyde dehydrogenase 10 (ALDH10) gene.



FIG. 114 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily C member 7 (ABCC7) gene.



FIG. 115 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily C member 8 (ABCC8) gene.



FIG. 116 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily C member 9 (ABCC9) gene.



FIG. 117 shows a drawing of the structure of and SNP position in the carboxylesterase 1 (CES1) gene.



FIG. 118 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily A member 4 (ABCC4) gene.



FIG. 119 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily A member 7 (ABCC7) gene.



FIG. 120 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily G member 1 (ABCG1) gene.



FIG. 121 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily G member 2 (ABCG2) gene.



FIG. 122 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily G member 4 (ABCG4) gene.



FIG. 123 shows a drawing of the structure of and SNP position in the ATP-binding cassette subfamily E member 1 (ABCE1) gene.



FIG. 124 shows a drawing of the structure of and SNP position in the carbohydrate sulfotransferase 1 (CHST1) gene.



FIG. 125 shows a drawing of the structure of and SNP position in the carbohydrate sulfotransferase 3 (CHST3) gene.



FIG. 126 shows a drawing of the structure of and SNP position in the NADH: ubiquinone dehydrogenase flavoprotein 1 (NDUFV1) gene.



FIG. 127 shows a drawing of the structure of and SNP position in the NADH: ubiquinone dehydrogenase flavoprotein 2 (NDUFV2) gene.



FIG. 128 shows a drawing of the structure of and SNP position in the NADH: ubiquinone dehydrogenase flavoprotein 3 (NDUFV3) gene.



FIG. 129 shows a drawing of the structure of and SNP position in the NADH: ubiquinone oxide reductase A10 (NDUFA10) gene.



FIG. 130 shows a drawing of the structure of and SNP position in the high-mobility group protein 17-like 1 (HMG17L1) gene.



FIG. 131 shows a drawing of the structure of and SNP position in the UDP glycoxyl transferase 2 family polypeptide A1 (UGT2A1) gene.



FIG. 132 shows a drawing of the structure of and SNP position in the human organic anion transporter polypeptide 1 (hOATP1) gene.



FIG. 133 shows a drawing of the structure of and SNP position in the human organic anion transporter polypeptide 2 (hOATP2) gene.



FIG. 134 shows a drawing of the structure of and SNP position in the human organic anion transporter polypeptide 8 (hOATP8) gene.



FIG. 135 shows a drawing of the structure of and SNP position in the human organic anion transporter 1 (hOAT1) gene.



FIG. 136 shows a drawing of the structure of and SNP position in the human organic anion transporter 2 (hOAT2) gene.



FIG. 137 shows a drawing of the structure of and SNP position in the human organic anion transporter 3 (hOAT3) gene.



FIG. 138 shows a drawing of the structure of and SNP position in the aldehyde dehydrogenase 1 family member A2 (ALDH1A2) gene.



FIG. 139 shows a drawing of the structure of and SNP position in the aldehyde dehydrogenase 1 family member A3 (ALDH1A3) gene.



FIG. 140 shows a drawing of the structure of and SNP position in the formyltetrahydroforate dehydrogenase (FTHFD/ALDH1L1) gene.



FIG. 141 shows a drawing of the structure of and SNP position in the cytochrome P450 subfamily IIIA (aromatic compound-induced) polypeptide 4 (CYP3A4) gene.



FIG. 142 shows graph of the results of typing performed on two different groups of subjects using the INVADER assay method.



FIG. 143 shows a summary of genetic information.



FIG. 144A shows a structure of ATP-binding cassette subfamily A member 1 (ABCA1) gene and the SNP location therein.


Accession No.: AF275948.1 and AL359846.11



FIG. 144B shows a structure of ATP-binding cassette subfamily A member 1 (ABCA1) gene and the SNP location therein. (continuation of FIG. 144A)


Accession No.: AF275948.1 and AL359846.11



FIG. 145 shows a structure of ATP-binding cassette subfamily A member 4 (ABCA4) gene and the SNP location therein.


Accession No.: NT019258.1



FIG. 146 shows a structure of ATP-binding cassette subfamily A member 7 (ABCA7) gene and the SNP location therein.


Accession No.: NT025194.1



FIG. 147 shows a structure of ATP-binding cassette subfamily A member 8 (ABCA8) gene and the SNP location therein.


Accession No.: AC005922.1 and AC015844.5



FIG. 148 shows a structure of ATP-binding cassette subfamily B member 1 (ABCB1) gene and the SNP location therein.


Accession No.: AC002457.1 and AC005068.1



FIG. 149 shows a structure of ATP-binding cassette subfamily B member 4 (ABCB4) gene and the SNP location therein.


Accession No.: AC079591.1, AC079303.3 and AC005045.2



FIG. 150 shows a structure of ATP-binding cassette subfamily B member 7 (ABCB7) gene and the SNP location therein.


Accession No.: AL360179.3 and AC002417.1



FIG. 151 shows a structure of ATP-binding cassette subfamily B member 8 (ABCB8) gene and the SNP location therein.


Accession No.: AC010973.4



FIG. 152 shows a structure of ATP-binding cassette subfamily B member 9 (ABCB9) gene and the SNP location therein.


Accession No.: AC026362.9 and AC073857.10



FIG. 153 shows a structure of ATP-binding cassette subfamily B member 10 (ABCB10) gene and the SNP location therein.


Accession No.: AL121990.9



FIG. 154 shows a structure of ATP-binding cassette subfamily B member 11 (ABCB11) gene and the SNP location therein.


Accession No.: AC008177.3 and AC069137.3



FIG. 155 shows a structure of ATP-binding cassette subfamily C member 1 (ABCC1) gene and the SNP location therein.


Accession No.: AC026452.5 and AC025778.4



FIG. 156 shows a structure of ATP-binding cassette subfamily C member 2 (ABCC2) gene and the SNP location therein.


Accession No.: AL392107.4



FIG. 157 shows a structure of ATP-binding cassette subfamily C member 3 (ABCC3) gene and the SNP location therein.


Accession No.: AC004590.1 and AC005921.3



FIG. 158A shows a structure of ATP-binding cassette subfamily C member 4 (ABCC4) gene and the SNP location therein.


Accession No.: AL356257.11, AL157818.12 and AL139381.12



FIG. 158B shows a structure of ATP-binding cassette subfamily C member 4 (ABCC4) gene and the SNP location therein. (continuation of FIG. 158A)


Accession No.: AL356257.11, AL157818.12, and AL139381.12



FIG. 159 shows a structure of ATP-binding cassette subfamily C member 5 (ABCC5) gene and the SNP location therein.


Accession No.: AC068644.5



FIG. 160 shows a structure of ATP-binding cassette subfamily C member 7 (ABCC7) gene and the SNP location therein.


Accession No.: AC000111.1 and AC000061.1



FIG. 161 shows a structure of ATP-binding cassette subfamily C member 8 (ABCC8) gene and the SNP location therein.


Accession No.: AC000406.1



FIG. 162 shows a structure of ATP-binding cassette subfamily C member 9 (ABCC9) gene and the SNP location therein.


Accession No.: AC084806.9 and AC008250.23



FIG. 163 shows a structure of ATP-binding cassette subfamily D member 1 (ABCD1) gene and the SNP location therein.


Accession No.: U52111.2



FIG. 164 shows a structure of ATP-binding cassette subfamily D member 3 (ABCD3) gene and the SNP location therein.


Accession No.: NT 019284.3



FIG. 165 shows a structure of ATP-binding cassette subfamily D member 4 (ABCD4) gene and the SNP location therein.


Accession No.: AC005519.3



FIG. 166 shows a structure of ATP-binding cassette subfamily G member 1 (ABCG1) gene and the SNP location therein.


Accession No.: AP001746.1



FIG. 167 shows a structure of ATP-binding cassette subfamily G member 2 (ABCG2) gene and the SNP location therein.


Accession No.: NT022959.2



FIG. 168 shows a structure of ATP-binding cassette subfamily G member 4 (ABCG4) gene and the SNP location therein.


Accession No.: AP001315.3



FIG. 169 shows a structure of ATP-binding cassette subfamily G member 5 (ABCG5) gene and the SNP location therein.


Accession No.: AC084265.2 and AC011242.8



FIG. 170 shows a structure of ATP-binding cassette subfamily G member 8 (ABCG8) gene and the SNP location therein.


Accession No.: AC084265.2



FIG. 171 shows a structure of ATP-binding cassette subfamily E member 1 (ABCE1) gene and the SNP location therein.


Accession No.: NT006296.2



FIG. 172 shows a structure of ATP-binding cassette subfamily F member 1 (ABCF1) gene and the SNP location therein.


Accession No.: NT007592.3



FIG. 173 shows a structure of organic anion transporter 1 (OAT1) gene and the SNP location therein.


Accession No.: AP001858.3, AJ249369.1, and AP000438.4



FIG. 174 shows a structure of organic anion transporter 2 (OAT2) gene and the SNP location therein.


Accession No.: AC26532.3



FIG. 175 shows a structure of organic anion transporter 3 (OAT3) gene and the SNP location therein.


Accession No.: AP001858.3



FIG. 176 shows a structure of organic anion transporter polypeptide 1 (OATP1) gene and the SNP location therein.


Accession No.: AC022224.22



FIG. 177 shows a structure of organic anion transporter polypeptide 2 (OATP2) gene and the SNP location therein.


Accession No.: NT024399.2



FIG. 178 shows a structure of organic anion transporter polypeptide 8 (OATP8) gene and the SNP location therein.


Accession No.: NT024399.2



FIG. 179 shows a structure of transporter 1 ATP-binding cassette subfamily B (TAP1) gene and the SNP location therein.


Accession No.: X66401.1



FIG. 180 shows a structure of transporter 2 ATP-binding cassette subfamily B (TAP2) gene and the SNP location therein.


Accession No.: X66401.1



FIG. 181 shows a structure of SLC22A4 solute carrier family 22 (organic cation transporter) member 4 (OCTN1) gene and the SNP location therein.


Accession No.: AC008599.6



FIG. 182 shows a structure of SLC22A5 solute carrier family 22 (organic cation transporter) member 5 (OCTN2) gene and the SNP location therein.


Accession No.: AC023861.3



FIG. 183 shows a structure of SLC22A1 solute carrier family 22 (organic cation transporter) member 1 (OCT1) gene and the SNP location therein.


Accession No.: AL35625.5



FIG. 184 shows a structure of SLC22A2 solute carrier family 22 (organic cation transporter) member 2 (OCT2) gene and the SNP location therein.


Accession No.: AL162582.18



FIG. 185 shows a structure of SLC10A2 solute carrier family 10 (sodium/bile acid cotransporter family) member 2 (NTCP) gene and the SNP location therein.


Accession No.: AL157789.6



FIG. 186 shows a structure of SLC15A1 solute carrier family 15 (oligopeptide transporter) member 1 (PEPT1) gene and the SNP location therein.


Accession No.: AL353574.8 and AL391670.6



FIG. 187 shows a structure of microsomal epoxide hydrolase 1 (EPHX1) gene and the SNP location therein.


Accession No.: AC058782.8



FIG. 188 shows a structure of cytoplasmic epoxide hydrolase (EPHX2) gene and the SNP location therein.


Accession No.: AC010856.3



FIG. 189 shows a structure of catechol-O-methyl transferase (COMT) gene and the SNP location therein.


Accession No.: AC000080.2



FIG. 190 shows a structure of guanidinoacetate N-methyl transferase (GAMT) gene and the SNP location therein.


Accession No.: NT 000879.1



FIG. 191 shows a structure of phenyl ethanolamine N-methyl transferase (PNMT) gene and the SNP location therein.


Accession No.: AC040933.3



FIG. 192 shows a structure of histamine N-methyl transferase (HNMT) gene and the SNP location therein.


Accession No.: AC019304.3



FIG. 193 shows a structure of nicotinamide N-methyl transferase (NNMT) gene and the SNP location therein.


Accession No.: AC019290.3



FIG. 194 shows a structure of phosphatidylethanolamine N-methyl transferase (PEMT) gene and the SNP location therein.


Accession No.: AC020558.3



FIG. 195 shows a structure of aldehyde dehydrogenase 1 family member A1 (ALDH1A1) gene and the SNP location therein.


Accession No.: AC009284.2 and AL162416.3



FIG. 196 shows a structure of aldehyde dehydrogenase 1 family member A2 (ALDH1A2) gene and the SNP location therein.


Accession No.: AC025431.7 and AC012653.8



FIG. 197 shows a structure of aldehyde dehydrogenase 1 family member A3 (ALDH1A3) gene and the SNP location therein.


Accession No.: AC015712.7



FIG. 198 shows a structure of aldehyde dehydrogenase 1 family member B1 (ALDH1B1) gene and the SNP location therein.


Accession No.: AL135785.9



FIG. 199A shows a structure of formyl tetrahydrofolate dehydrogenase (ALDH1L1) gene and the SNP location therein.


Accession No.: AC079848.6



FIG. 199B shows a structure of formyl tetrahydrofolate dehydrogenase (ALDH1L1) gene and the SNP location therein. (continuation of FIG. 199A)


Accession No.: AC079848.6



FIG. 200 shows a structure of aldehyde dehydrogenase 2 (ALDH2) gene and the SNP location therein.


Accession No.: AC002996.1 and AC003029.2



FIG. 201 shows a structure of aldehyde dehydrogenase 3 family member A1 (ALDH3A1) gene and the SNP location therein.


Accession No.: AC005722.1



FIG. 202 shows a structure of aldehyde dehydrogenase 3 family member A2 (ALDH3A2) gene and the SNP location therein.


Accession No.: AC005722.1



FIG. 203 shows a structure of aldehyde dehydrogenase 3 family member B1 (ALDH3B1) gene and the SNP location therein.


Accession No.: AC004923.2



FIG. 204 shows a structure of aldehyde dehydrogenase 3 family member B2 (ALDH3B2) gene and the SNP location therein.


Accession No.: AC021987.3



FIG. 205 shows a structure of aldehyde dehydrogenase 5 family member A1 (ALDH5A1) gene and the SNP location therein.


Accession No.: AL031230.1



FIG. 206 shows a structure of aldehyde dehydrogenase 6 family member A1 (ALDH6A1) gene and the SNP location therein.


Accession No.: AC005484.2



FIG. 207 shows a structure of aldehyde dehydrogenase 8 family member A1 (ALDH8A1) gene and the SNP location therein.


Accession No.: AL445190.9 and AL021939.1



FIG. 208 shows a structure of aldehyde dehydrogenase 9 family member A1 (ALDH9A1) gene and the SNP location therein.


Accession No.: AL451074.4



FIG. 209 shows a structure of alcohol dehydrogenase 1 (ADH1) gene and the SNP location therein.


Accession No.: AP002027.1



FIG. 210 shows a structure of alcohol dehydrogenase 2 (ADH2) gene and the SNP location therein.


Accession No.: AP002027.1



FIG. 211 shows a structure of alcohol dehydrogenase 3 (ADH3) gene and the SNP location therein.


Accession No.: AP002027.1



FIG. 212 shows a structure of alcohol dehydrogenase 4 (ADH4) gene and the SNP location therein.


Accession No.: AP002026.1



FIG. 213 shows a structure of alcohol dehydrogenase 5 (ADH5) gene and the SNP location therein.


Accession No.: AC019131.4



FIG. 214 shows a structure of alcohol dehydrogenase 6 (ADH6) gene and the SNP location therein.


Accession No.: AP002026.1



FIG. 215 shows a structure of alcohol dehydrogenase 7 (ADH7) gene and the SNP location therein.


Accession No.: AC027065.3



FIG. 216 shows a structure of short-chain alcohol dehydrogenase family gene (HEP27) and the SNP location therein.


Accession No.: AL135999.3



FIG. 217 shows a structure of UDP glycosyltransferase 1 family polypeptide A1 (UGT1A1) and the SNP location therein.


Accession No.: AC006985.2



FIG. 218 shows a structure of UDP glycosyltransferase 2 family polypeptide A1 (UGT2A1) and the SNP location therein.


Accession No.: AC011254.3



FIG. 219 shows a structure of UDP glycosyltransferase 2 family polypeptide B15 (UGT2B15) and the SNP location therein.


Accession No.: AC019173.4



FIG. 220 shows a structure of UDP glycosyltransferase 8 (UGT8) and the SNP location therein.


Accession No.: U31353.1



FIG. 221 shows a structure of glutathione S transferase A1 (GSTA1) gene and the SNP location therein.


Accession No.: AC021133.4



FIG. 222 shows a structure of glutathione S transferase A4 (GSTA4) gene and the SNP location therein.


Accession No.: AC025085.4



FIG. 223 shows a structure of glutathione S transferase M1 (GSTM1) gene and the SNP location therein.


Accession No.: AC000032.7



FIG. 224 shows a structure of glutathione S transferase M2 (GSTM2) gene and the SNP location therein.


Accession No.: AC000031.5



FIG. 225 shows a structure of glutathione S transferase Z1 (GSTZ1) gene and the SNP location therein.


Accession No.: AC007954.7



FIG. 226 shows a structure of glutathione S transferase Pi (GSTPi) gene and the SNP location therein.


Accession No.: X08058.1 and M24485.1



FIG. 227 shows a structure of glutathione S transferase T1 (GSTT1) gene and the SNP location therein.


Accession No.: AF240786.1 and AP000351.3



FIG. 228 shows a structure of microsomal glutathione S transferase 1 (MGST1) gene and the SNP location therein.


Accession No.: AC007528.5



FIG. 229 shows a structure of microsomal glutathione S transferase 1-like 1 (MGST1L1) gene and the SNP location therein.


Accession No.: AC007936.2



FIG. 230 shows a structure of microsomal glutathione S transferase T2 (MGST2) gene and the SNP location therein.


Accession No.: AC019049.4



FIG. 231 shows a structure of microsomal glutathione S transferase T3 (MGST3) gene and the SNP location therein.


Accession No.: AC064827.2



FIG. 232 shows a structure of sulfotransferase 1A1 (SULT1A1/STP1) gene and the SNP location therein.


Accession No.: U52852.2



FIG. 233 shows a structure of sulfotransferase 1A2 (SULT1A2/STP2) gene and the SNP location therein.


Accession No.: U33886.1, U34804.1 and AC020765.5



FIG. 234 shows a structure of sulfotransferase 1A3 (SULT1A3/STM/HAST) gene and the SNP location therein


Accession No.: L34160.1 and AC012645.4



FIG. 235 shows a structure of sulfotransferase 1C1 (SULT1C1) gene and the SNP location therein.


Accession No.: AC019100.4



FIG. 236 shows a structure of sulfotransferase 1C2 (SULT1C2) gene and the SNP location therein.


Accession No.: AF186263.1



FIG. 237 shows a structure of sulfotransferase 2A1 (SULT2A1) gene and the SNP location therein.


Accession No.: AC024582.4, AC008745.5, NT011190.1, and AC024582.4



FIG. 238 shows a structure of sulfotransferase 2B1 (SULT2B1) gene and the SNP location therein.


Accession No.: AC040922.2 and AC008403.6



FIG. 239 shows a structure of sulfotransferase-associated protein 3 (SULTX3) gene and the SNP location therein.


Accession No.: Z97055.1



FIG. 240 shows a structure of tyrosyl protein sulfotransferase 1 (TPST1) gene and the SNP location therein.


Accession No.: AC026281.5



FIG. 241 shows a structure of tyrosyl protein sulfotransferase 2 (TPST2) gene and the SNP location therein.


Accession No.: Z95115.1



FIG. 242 shows a structure of cerebroside sulfotransferase (CST) gene and the SNP location therein.


Accession No.: AC005006.2



FIG. 243 shows a structure of thyroid hormone sulfotransferase (ST1B2) gene and the SNP location therein.


Accession No.: AC027059.2



FIG. 244 shows a structure of carbohydorate sulfotransferase 1 (CHST1) gene and the SNP location therein.


Accession No.: NT 008982.1



FIG. 245 shows a structure of carbohydorate sulfotransferase 2 (CHST2) gene and the SNP location therein.


Accession No.: AC055737.10



FIG. 246 shows a structure of carbohydorate sulfotransferase 3 (CHST3) gene and the SNP location therein.


Accession No.: AC073370.3



FIG. 247 shows a structure of carbohydorate sulfotransferase 4 (CHST4) gene and the SNP location therein.


Accession No.: AC010547.5



FIG. 248 shows a structure of carbohydorate sulfotransferase 5 (CHST5) gene and the SNP location therein.


Accession No.: AC025287.3



FIG. 249 shows a structure of HNK-sulfotransferase (HNK-1ST) gene and the SNP location therein.


Accession No.: AC012493.4



FIG. 250 shows a structure of estrogen sulfotransferase (STE) gene and the SNP location therein.


Accession No.: AC074273.1



FIG. 251 shows a structure of NAD (P)H: quinone oxidoreductase 1 (NQO1) gene and the SNP location therein.


Accession No.: M81596.1



FIG. 252 shows a structure of NRH: quinone oxidoreductase 2 (NQO2) gene and the SNP location therein.


Accession No.: AB050248.1



FIG. 253 shows a structure of p53-inducible gene 3 (PIG3) in a quinone oxidoreductase homolog and the SNP location therein.


Accession No.: AC008073.3



FIG. 254 shows a structure of NADH-dehydrogenase(ubiquinone)1α-subcomplex 1 (NDUFA1) gene and the SNP location therein.


Accession No.: AC002477.1



FIG. 255 shows a structure of NADH-dehydrogenase(ubiquinone)1α-subcomplex 2 (NDUFA2) gene and the SNP location therein.


Accession No.: AB054976.1



FIG. 256 shows a structure of NADH-dehydrogenase(ubiquinone)1α-subcomplex 3 (NDUFA3) gene and the SNP location therein.


Accession No.: AC009968.6



FIG. 257 shows a structure of NADH-dehydrogenase(ubiquinone)1α-subcomplex 5 (NDUFA5) gene and the SNP location therein.


Accession No.: AC073323.5



FIG. 258 shows a structure of NADH-dehydrogenase(ubiquinone)1α-subcomplex 6 (NDUFA6) gene and the SNP location therein.


Accession No.: AL021878.1



FIG. 259 shows a structure of NADH-dehydrogenase(ubiquinone)1α-subcomplex 7 (NDUFA7) gene and the SNP location therein.


Accession No.: AC010323.6



FIG. 260 shows a structure of NADH-dehydrogenase(ubiquinone)1α-subcomplex 8 (NDUFA8) gene and the SNP location therein.


Accession No.: AL162423.10



FIG. 261 shows a structure of NADH-dehydrogenase(ubiquinone)1α-subcomplex 9 (NDUFA9) gene and the SNP location therein.


Accession No.: AC005832.1



FIG. 262 shows a structure of NADH-dehydrogenase(ubiquinone)1α-subcomplex 10 (NDUFA10) gene and the SNP location therein.


Accession No.: AC013469.8



FIG. 263 shows a structure of NADH-dehydrogenase(ubiquinone)1α/β-subcomplex 1 (NDUFAB1) gene and the SNP location therein.


Accession No.: AC008870.6



FIG. 264 shows a structure of NADH-dehydrogenase(ubiquinone)1β-subcomplex 3 (NDLFB3) gene and the SNP location therein.


Accession No.: AC007272.3



FIG. 265 shows a structure of NADH-dehydrogenase(ubiquinone)1β-subcomplex 5 (NDUFB5) gene and the SNP location therein.


Accession No.: AC068361.2



FIG. 266 shows a structure of NADH-dehydrogenase(ubiquinone)1β-subcomplex 7 (NDUFB7) gene and the SNP location therein.


Accession No.: AC010527.4



FIG. 267 shows a structure of NADH-dehydrogenase(ubiquinone)Fe—S protein 1 (NDUFS1) gene and the SNP location therein.


Accession No.: AC007383.4



FIG. 268 shows a structure of NADH-dehydrogenase(ubiquinone)Fe—S protein 3 (NDUFS3) gene and the SNP location therein.


Accession No.: AC067943.4



FIG. 269 shows a structure of NADH-dehydrogenase(ubiquinone)Fe—S protein 4 (NDUFS4) gene and the SNP location therein.


Accession No.: AC024569.3



FIG. 270 shows a structure of NADH-dehydrogenase(ubiquinone)Fe—S protein (NDUFS5) gene and the SNP location therein.


Accession No.: AL139015.5



FIG. 271 shows a structure of NADH-dehydrogenase(ubiquinone)Fe—S protein 6 (NDUFS6) gene and the SNP location therein.


Accession No.: AC026443.2



FIG. 272 shows a structure of NADH-dehydrogenase(ubiquinone)Fe—S protein 8 (NDUFS8) gene and the SNP location therein.


Accession No.: AC034259.2



FIG. 273 shows a structure of NADH-dehydrogenase(ubiquinone)flavoprotein 1 (NDUFV1) gene and the SNP location therein.


Accession No.: NT 009304.2



FIG. 274 shows a structure of NADH-dehydrogenase(ubiquinone)flavoprotein 2 (NDUFV2) gene and the SNP location therein.


Accession No.: NT011024.2



FIG. 275 shows a structure of NADH-dehydrogenase(ubiquinone)flavoprotein 3 (NDUFV3) gene and the SNP location therein.


Accession No.: AP001748.1



FIG. 276 shows a structure of gamma-glutamyl transferase 1 (GGT1) gene and the SNP location therein.


Accession No.: D87002.1



FIG. 277 shows a structure of transglutaminase 1 (TGM1) gene and the SNP location therein.


Accession No.: M98447.1



FIG. 278 shows a structure of cytochrome P450 subfamily 1 (aromatic compound-inducible) polypeptide 1 (CYP1A1) gene and the SNP location therein.


Accession No.: X04300.1 and AC020705.4



FIG. 279 shows a structure of cytochrome P450 subfamily 1 (aromatic compound-inducible) polypeptide 2 (CYP1A2) gene and the SNP location therein.


Accession No.: AC020705.4



FIG. 280 shows a structure of cytochrome P450 subfamily 1 (dioxin-inducible) polypeptide 1 (CYP1B1) gene and the SNP location therein.


Accession No.: AC009229.4



FIG. 281 shows a structure of cytochrome P450 subfamily 3A (aromatic compound-inducible) polypeptide 4 (CYP3A4) gene and the SNP location therein.


Accession No.: AF280107.1



FIG. 282 shows a structure of cytochrome P450 subfamily 3A (aromatic compound-inducible) polypeptide 5 (CYP3A5) gene and the SNP location therein.


Accession No.: AC005020.5



FIG. 283 shows a structure of cytochrome P450 subfamily 3A polypeptide 7 (CYP3A7) gene and the SNP location therein.


Accession No.: AF280107.1



FIG. 284 shows a structure of cytochrome P450 polypeptide 43 (CYP3A43) gene and the SNP location therein.


Accession No.: AC011904.3



FIG. 285 shows a structure of cytochrome P450 subfamily IVB polypeptide 1 (CYP4B1) gene and the SNP location therein.


Accession No.: AL356793.10



FIG. 286 shows a structure of cytochrome P450 subfamily IVF polypeptide 2 (CYP4F2) gene and the SNP location therein.


Accession No.: AC005336.1



FIG. 287 shows a structure of cytochrome P450 subfamily IVF polypeptide 3 (CYP4F3) gene and the SNP location therein.


Accession No.: AD000685.1



FIG. 288 shows a structure of cytochrome P450 subfamily IVF polypeptide 8 (CYP4F8) gene and the SNP location therein.


Accession No.: AC068845.3



FIG. 289 shows a structure of cytochrome P450 subfamily XXVIIA polypeptide 1 (CYP27A1) gene and the SNP location therein.


Accession No.: AC009974.7



FIG. 290 shows a structure of cytochrome P450 subfamily XXVIIB polypeptide 1 (CYP27B1) gene and the SNP location therein.


Accession No.: AC025165.27



FIG. 291 shows a structure of allylacetamide deacetylase (AADAC) gene and the SNP location therein.


Accession No.: AC068647.4



FIG. 292 shows a structure of carboxyl esterase 1 (CES1) gene and the SNP location therein Accession No.: AC007602.4



FIG. 293 shows a structure of carboxyl esterase 2 (CES2) gene and the SNP location therein Accession No.: AC027131.4



FIG. 294 shows a structure of granzyme A (GZMA) gene and the SNP location therein.


Accession No.: AC091977.1



FIG. 295 shows a structure of granzyme B (GZMB) gene and the SNP location therein.


Accession No.: AL136018.3



FIG. 296 shows a structure of esterase D/formylglutathione hydrolase (ESD) gene and the SNP location therein.


Accession No.: AL136958.9



FIG. 297A shows a structure of carboxyl ester lipase (bile salt-stimulated lipase) (CEL) gene and the SNP location therein.


Accession No.: AL138750.8, AL162417.20 and AF072711.1



FIG. 297B shows a structure of carboxyl ester lipase (bile salt-stimulated lipase) (CEL) gene and the SNP location therein. (continuation of FIG. 297A) Accession No.: AL138750, AL162417.20 and AF072711.1



FIG. 298 shows a structure of interleukin 17 (cytotoxic T lymphocyte-associated serine esterase 8) (IL17) gene and the SNP location therein.


Accession No.: AL355513.11



FIG. 299 shows a structure of ubiquitin carboxyl terminal esterase L3 (ubiquitin thiol esterase) (UCHL3) gene and the SNP location therein.


Accession No.: AL137244.28



FIG. 300 shows a structure of dolichyl-diphosphooligosaccharide-protein glycosyltransferase (DDOST) gene and the SNP location therein.


Accession No.: D89060



FIG. 301 shows a structure of neuropathy target esterase (NTE) gene and the SNP location therein.


Accession No.: AC021153



FIG. 302 shows a structure of L1 cell adhesion molecule (L1 CAM) gene and the SNP location therein.


Accession No.: U52112



FIG. 303 shows a structure of arylalkylamine N-acetyltransferase (AANAT) gene and the SNP location therein.


Accession No.: U40391



FIG. 304 shows a structure of N-acetyltransferase homolog (ARD1) gene of Saccharomyces cerevisiae and the SNP location therein.


Accession No.: U52112



FIG. 305 shows a structure of N-acetyltransferase (NAT1) gene and the SNP location therein.


Accession No.: X17059



FIG. 306 shows a structure of N-acetyltransferase 2 (NAT2) gene and the SNP location therein.


Accession No.: D10870



FIG. 307 shows a structure of ATP-binding cassette subfamily B member 2 (ABCB2) gene and the SNP location therein.


Accession No.: X66401



FIG. 308 shows a structure of ATP-binding cassette subfamily B member 3 (ABCB3) gene and the SNP location therein.


Accession No.: X66401



FIG. 309 shows a structure of glutathione S transferase M3 (GSTM3) gene and the SNP location therein.


Accession No.: AF043105.1



FIG. 310 shows a structure of glutathione S transferase M4 (GSTM4) gene and the SNP location therein.


Accession No.: M96233.1



FIG. 311 shows a structure of aldehyde dehydrogenase 7 (ALDH7) gene and the SNP location therein.


Accession No.: AC004923



FIG. 312 shows a structure of high-mobility group protein 17-like 1 (HMG17L1) gene and the SNP location therein.


Accession No.: Z97055.1




GENERAL DESCRIPTION OF THE INVENTION

The present invention provides a method of analysis of drug metabolizing enzymes by analysis of SNPs associated with their encoding genes. In some embodiments, the method of the present invention can be used in the selection of drugs based on, e.g., particular characteristics of an individual patient or on characteristics of a target disease.


In some embodiments, the present invention provides a method for detecting a genetic polymorphism associated with a DME, wherein an oligonucleotide probe and/or oligonucleotide primer is created so as to include the genetic polymorphism site from genetic polymorphism data in a gene for encoding a drug metabolizing enzyme or so as to include the genetic polymorphism site in an amplified fragment when the gene encoding the drug metabolizing enzyme has been amplified, and wherein at least one genetic polymorphism in a gene for encoding the target drug metabolizing enzyme is detected using the oligonucleotide probe and/or oligonucleotide primer thus obtained.


The present invention further provides methods for evaluating a drug, wherein the effectiveness and safety of a drug metabolized by the drug metabolizing enzyme are evaluated based on the results obtained by the detection method.


In some embodiments, the present invention provides a method for screening a drug, wherein the drug to be used is selected based on the results obtained in the evaluation method. In other embodiments, the present invention provides a method for screening a drug, wherein the genetic polymorphism data associated with the gene encoding a DME in a control subject is compared to the genetic polymorphism data associated with the same gene in a test subject, and wherein a drug to be used is selected from the results of an analysis of the effectiveness and/or safety of the drugs metabolized by the drug metabolizing enzyme.


The invention further features predictive medicines, which are based, at least in part, on determination of the identity of DME polymorphic regions that are associated with particular drug responses. For example, information obtained using the diagnostic assays described herein (alone or in conjunction with information on another genetic defect, which contributes to the same disease) is useful for determining if a test subject has an allele of a polymorphic region that is associated with a particular drug response. Knowledge of the DME profile in an individual (the DME genetic profile), alone or in conjunction with information on other genetic defects contributing to the same disease (the genetic profile of the particular disease) allows customization of therapy for a particular disease to the individual's genetic profile, the goal of “pharmacogenomics.” For example, an individual's DME genetic profile can enable a doctor: 1) to more effectively prescribe a drug that will address the molecular basis of the disease or condition; and 2) to better determine the appropriate dosage of a particular drug.


The ability to target populations expected to show the highest clinical benefit, based on the DME genetic profile, allows: 1) the repositioning of marketed drugs with disappointing market results; 2) the rescue of drug candidates whose clinical development has been discontinued as a result of safety or efficacy limitations, which are patient subgroup-specific; and 3) an accelerated and less costly development for drug candidates and more optimal drug labeling (e.g. since the use of DMEs as markers is useful for optimizing effective dose).


DETAILED DESCRIPTION OF THE INVENTION

Examples of genetic polymorphism data related to a DME, and useful in the detection, evaluation method and screening methods of the present invention are shown in Table 1.

TABLE 1SEQnum-ID.GENEberpositionSEQ.NoABCB215′flanking − 673agctaagagtcaaagcaccc G/C ctttttccaccagcctcgcg1ABCB225′flanking − 646ccaccagcctcgcgtgcctg T/G tcccttcacggacactctag2ABCB235′flanking − 563ttgcaagcgctggctgctac A/C ggcgacctccctgcgctccc3ABCB245′flanking − 236gctttgcgcgcggcgctaac G/T tgtgtagggcagatctgccc4ABCB25intron 3 + 408aaggaaactgaggccaagac C/T ctaaatgctgaaactgcaca5ABCB26exon 4 + 153ccctcaccatggtcaccctg A/G tcaccctgcctctgcttttc6ABCB27intron 4 + 289gtatttctttagcatccaag G/T ggcatagctgtgtctctttc7ABCB28intron 4 + 291atttctttagcatccaaggg C/G catagctgtgtctctttctc8ABCB29intron 5 − 63ttccttcaggttaatgactg C/T ggttctttgtgtcccctcca9ABCB210intron 7 − 185gtctctgcccttgtctttgc C/T gcttcttctatctctactcc10ABCB2113′flanking + 71agcgcacttttcagctgcgg G/A tgtctcctcttttatcatcc11ABCB2123′flanking + 129aactgcatcaccttttccct T/C aagctttttaattcctatga12ABCB2133′flanking + 459cattcagggaggcccaggtc G/A tgtgacgtcgacagttgctg13ABCB41exon 3 + 3aacacccttattttatagat C/T caatgactgagtcaagaatt14ABCB42intron 3 + 45cagcatctctacttatacca T/C gctctgctttaaggttctct15ABCB43intron 3 + 498actcaaataggtggtaggag C/T agagacaattcaatacagac16ABCB44intron 3 + 515gagcagagacaattcaatac A/G gacagaagtcttagatgaga17ABCB45intron 6 + 1030tagttttgccatgtagaatt G/C aaaaagtgatagatggtgtt18ABCB46intron 6 + 1437gttaagcctgcttcaatcaa G/A ttagttatattcttgttcta19ABCB47intorn 6 + 2449ttgacttagcgacactgtta G/A catacttatctttcctgtgt20ABCB48intron 7 + 451ccttgctgcacctgtgctgt A/C taagtttggcttattatagt21ABCB49intron 7 + 530agtagagacaggctggcgat C/G acaccggacagagctaactg22ABCB410intron 7 − 152aacagaatcatgaaattaag T/C tgttaatgatttgaaggcct23ABCB411exon 8 + 40aggataaattgtttatgtcg C/T ctgggtaccatcatggccat24ABCB412intron 8 + 130ctggttgactccagatatca T/C agaaggagttgtaaaattct25ABCB413intron 8 + 248aatacacaggaagcttctaa A/G taaagtaaggaagtcactct26ABCB414intron8 + 531ctaaagagtgaatggattca A/G tacgtcccttggaactcacc27ABCB415intron 8 + 4240ctgaggttccagcttatctc T/A tagagatgtttacttagtct28ABCB416intron 8 + 4343tgttagaagaaaaaaaggtt C/T atattacaagagggtctgac29ABCB417intron 8 + 4677cccaagatatcttcataact G/C tccatagtgcctagggtgcc30ABCB418intron 9 + 113tttacccagattcacctatt A/G ttatcatttttgctcccaaa31ABCB419intron 9 + 982tgtcctatacagtttttgtt T/A taagtttagtaaattgatta32ABCB420intron 11 + 457tccagcttgggtgacagagt A/G agacttcatctcaaaaaaaa33ABCB421intron 11 + 1337tactcttggggagcctatca C/G cagggtgggtcagatatagc34ABCB422axon 12 + 3tgtttcttttctgtccagat A/T ctctcggcatttagtgacaa35ABCB423intron 12 + 1288cagaccacactaaccctcag T/C tggacctcaggatgtcagtg36ABCB424intron 13 + 206tgtggataagaaaatagcat G/A tggttagaccatttgtgaaa37ABCB425intron 13 + 988cagtcggtttggaagcttgc T/C accctttcttcacttcctca38ABCB428intron 13 + (1413-1414)tttatcttcacttatgtttt (T) ctcagttaagttatgctaat39ABCB426intron 13 + (1413-1414)tttatcttcacttatgtttt     ctcagttaagttatgctaat40ABCB427intron 13 + 1931cttgcaaatgttgctcttcc A/G caaaaaaaaaaggaaaggat41ABCB428intron 23 + 784agtatctcctaaactcttgc T/C atgcaggaaaaattatttta42ABCB429intron 25 + 158qaaatattttactgtattaa T/C gtctagaacttaaatataag43ABCB430intron 25 + 2920ctgagtcttcctatacatct T/A ttccattcctcggatgctgt44ABCB431intron 29 + 411cttctcttaccttgaattct A/C ggctctcgaactttgacttt45ABCB432intron 32 + 458agaaaatgaaattgccctac T/C gagctaactctgaaagcaca46EPHX11intron 1 + 110tgcaaaatgtgtcttactag C/T ttctagtgcataaaatattg47EPHX12intron 1 + 143aaatattggtggagctcttc G/A ctgtgctgggccagtcacca48EPHX13intron 1 + 1097aatccagagagggagataga T/G tggaagttcaagggtggaca49EPHX14intron 1 + 1717ttccaagacagagcgagggg T/C gctgctggggcgtggtttgc50EPHX15intron 1 + 1772aactcgatgctttctcctcc G/T tctgggtcctaactgcagtg51EPHX16intron 1 + 2054gaaatgtaacaggcaacact A/G tggacacagaaagtagatta52EPHX17intron2 + 1414atttccaaaatctgtttggg G/T gtaactgaaacacttgggaa53EPHX18exon 3 + 174taccctcacttcaagactaa G/A attgaaggtatgtttgcaaa54EPHX19intron 3 + 6583ctgtcaataccatgaagggg G/C ggcgggggcactaagggtgg55EPHX110intron 4 + 34agaggttccataactgcccc G/A tcctcgccaagggtgggccc56EPHX111intron 4 + 63aagggtgggcccggtgttcc C/T accaggctctccttccggcg57EPHX112intron 5 + 154gcagtgcctgaggcacgttg G/A cttggatcctcctgtctgta58EPHX113intron 5 + 276tgctggaccaagctctggga T/C agccctgagcagaactcccc59EPHX114exon 6 + 130gatgtggagctgctgtaccc C/T gtcaaggagaaggtattcta60EPHX115intron 8 + 206ggtgcctggctcccgggcgg C/A cctcagtaccgctccccagt61EPHX116intron 8 + 353tggccctcccagaaaagaga A/G ggccctcagtgaggggagag62EPHX1173′flanking + 708aggtgcagactcatgcactc A/G gccctgaagaggtgagagag63EPHX215′flanking − (523-522)aaagtcactggatatgcccc (C) tcccccgccccccaacacgg64EPHX215′flanking − (523-522)aaagtcactggatatgcccc     tcccccgccccccaacacgg65EPHX225′flanking − 522aaagtcactggatatgcccc T/C cccccgccccccaacacggt66EPHX235′flanking − 521aagtcactggatatgcccct C/T ccccgccccccaacacggtc67EPHX245′flanking − 516actggatatgcccctccccc G/C ccccccaacacggtcttatg68EPHX255′flanking − 515ctggatatgcccctcccccg C/G cccccaacacggtcttatgt69EPHX26intron 1 − 74tggctgcttctcaatgaata T/C gaacagtgtctgtttccatg70EPHX27intron 3 + 72gagcattaggtcagaatcca T/C tgaagtgagctttgagatca71EPHX28intron 4 + 473gtgtgtctctactttaatct A/G caaaaggtgattgaatggag72EPHX29intron 5 + 276caagagtgggatgttcaagg C/T catcctgacctcacttttga73EPHX210intron 8 + 8tctgctcctcccggtgggtg T/C gctgtcttgcagctgtctta74EPHX211intron 9 + 1573atgtcgtgaagactgatgaa C/T gatggacggctgcactgctc75EPHX212intron 10 + 207gaacaggatggagatgagct T/C gtttatttgtcttttaatga76EPHX213intron 12 + 911tgaagagacctcgacatgtc G/T catcccacatactacaggga77EPHX214intron 12 + 2425atcttctcagctgagcaaac C/T gaggctcagagggcttaacc78EPHX215intron 12 + 2460ttaaccccaactggcccaag G/A ccaggtacatgattgggtca79EPHX216intron 12 − 281aagtcctttcaagagattat T/C ataagtagtaccttctcatt80EPHX217intron 12 − 268agattattataagtagtacc T/G tctcattataggaatattga81EPHX218exon 13 + 50cctgagtcggactttcaaaa G/T cctcttcagagcaagcgatg82EPHX219intron 13 + 1739ttgtcgtaacagggttttca G/T atgagcatatttcctttgta83EPNX220exon 14 + 33atgcataaagtctgtgaagc G/A ggtaagagacatgcttggga84EPHX221intron 14 + 314ggattgagagcttacctcta T/C gggggtcacctcgtgtatgc85EPHX222intron 14 + 878attcccttattccttcacac C/T gtctgtcactcattcattca86EPHX223intron 14 + 948gcacaggctgggtatgaagc T/C ggggctgcatgctcagctac87EPHX224intron 15 + 259agagggttttcactactttt C/T agtcatggctcctcagagaa88EPHX225intron 16 + 459tcctcatttgtcaagcagaa G/C atgagtttccaatctctggg89EPHX226intron 16 + 645gtaagtgaacacactgctac G/A tgccagacttcctgccagac90EPHX227intron 16 + 985gtcattatcatcatatgacc G/A atgaaaatgaccaaactgca91EPHX2283′flanking + 12aggtggccttacacacatct T/C gcatggatggcagcattgtt92EPHX2293′flanking + 374tgttcacggagaatgcacgg C/T atggygatgaaccctttccc93EPHX2303′flanking + 544tayccacctgcctttctccc G/A gcttccctagcagagtttgc94GAMT1intron 1 + 429ctcggaaagctgagctcagg G/A agacagctgtccccggggtg95GAMT23′flanking + 626cactgacctccttgccctga G/A agaaggccggctcctgtgct96NNMT15′flanking − 228ataattttcctgacgagctc A/T agtgctccctctggtctaca97NNMT2intron 1 + 44ccccactaatgtgagtcata T/C agatggagtctcagggcacg98NNMT3intron 1 + 149ggataaaaacgaatattggt A/G tagcgattccacagtttaca99NNMT4intron 2 + 158agataggcccatgtgtgtgc G/A tgttagtaaatttgtgtatg100NNMT5intron 2 + 433gctgtagccatccaagccta T/C agaacttggctgtgagtgtg101NNMT6intron 2 − 3064atcatctgactggtaagttc C/T agttctgtggtaactcaagt102NNMT7intron 2 − 260atttcatggagggaagtcca T/C ggtagaagcaggctgctagg103NNMT83′flanking + 71ggctcagtggttggggccca A/G tggttcatctaggacgggac104PNMT15′flanking − 390aagaggtgaatggctgcggg G/A ggctggagaagagagatggg105PEMT1exon 2 − 4agctcagcagacctcctggc C/T gtggtgggtagctcctttcc106PEMT2intron 4 + 39actgtccagacgggagtatc C/T cactgcttggtgagccccac107PEMT3intron 4 + 1317accgtccccagctggcccca G/A cctcctgacatgggcctctg108PEMT4intron 4 + 1355ctggagccaggctgcagccg A/C agtgcctggccatcctggcg109PEMT5intron 4 + 5925gtccaggcactgtggcccta C/T gtgggagtctccagtctcca110PEMT6intron 4 + 6028ggcagtggtccaaggaccag G/C atggactccctcttctcacc111PEMT7intron 4 + 6078atctgtaccctcgcggactc C/T acctggcttcgtgccatcac112PEMT8intron 4 + 6089cgcggactctacctggcttc A/G tgccatcacccccgccagat113PEMT9intron 4 + 6379tcaggtgtcccctccctcat G/A cctcctcaccctgccctctc114PEMT10intron 4 + 7339tgtaaggaatcctgccaaga C/T ggcagatgcacacggggtca115PEMT11intron 4 + 7619ctcctgcacatgtgctccag A/G gaggaaaggcatttgacagg116PEMT12intron 4 + 8858ggcatgtgtgtgtgtgtgta T/G gtgtgtgagtgtgtgcatgt117PEMT13intron 4 + 9029tttctggaccagaaagcgtc G/A tcctctgccagggcctcttg118PEMT14intron 4 + 9056gccagggcctcttgcacttg C/T gggaaagctgagctgagctg119PEMT15intron 4 + 9512ctgagctgggcagcagcatt A/G ctctgtgtgctgctggcact120PEMT16intron 4 + 9523agcagcattactctgtgtgc T/C gctggcactggcctggtggg121PEMT17intron 4 + 9622gacaaagtgtacaacaaggt G/A tctcgaactgggtcagctca122PEMT18intron 4 + 10776ccattcctgggtcttctttg G/A aggctgaatgaaattccatg123PEMT19intron 4 + 10912tctgccccactttgctcaga G/C gtgcaacaaggccttcagga124PEMT20intron 4 + 11590ggacactggcctgatgcaga G/C gtgtggtctctctcctgcag125PEMT21intron 4 + 12090ggccagggcacccctaccag G/C ctgagtcccacctgtccagc126PEMT22intron 4 + 12263tacccgccttcccagatgga G/A cgggctgctcatgggactta127PEMT23intron 4 + 12448tctggtcccctctcctgctt G/A tagtttcctgggctaaaatc128PEMT24intron 4 + 12730tgggaccagtgccgccacca C/T ggcccaaggacctggtgttc129PEMT25intron 4 + 13240gggctccaggcacacagcgg T/C cccagtacacctgtcgcttt130PEMT26intron 4 + 13494tccgtggaactcagagatgg T/C acctccctgcgaggtggggc131PEMT27intron 4 + 13817aactctcccctgctgctgag A/G cagatcttggagcctcggcc132PEMT28intron 4 + 14773ccgccctgtgcttcatgccc C/T ctatgcctctcactgcctgg133PEMT29intron 4 + 14951gtcctgaggcccctcccacc G/A gagcctggggtgccctcaca134PEMT30intron 4 + 16896gctgtgactgtcttggagac T/C gggtcttggcgggcctggtg135PEMT31intron 4 + 19439ccaggagcctctgaggcagc G/A ggggcttctcaaccacacac136PEMT32intron 4 + 19559attttgtcagcatgtcacgt C/T cctttcataatgaagcaagg137PEMT33intron 4 + 20051acagcactgcgggagccacg A/G catctgcagacgcatttgat138PEMT34intron 4 + 20816tggactctctggcgtccatc C/T agccacttcagtgcgacgtg139PEMT35intron 4 + 21196ggctggctgggccctgggat C/G atcgtgacaggctttagtgg140PEMT36intron 4 + 21528acaggtgggagccgaggctc G/T ggaggtgggccgggctgagc141PEMT37intron 4 + 21596ccgcttccccgtgctctggc C/T gtagcagaaagtgtcccact142PEMT38intron 4 + 22672agcctcccactgccttgtgg C/T tgaggggagggggccgggtc143PEMT39intron 4 + 22713tctaacgctgtcttctttgt A/T ctgaaaaccaaacaccttct144PEMT40intron 4 + 23010tgccgggcagcggggaggga G/A ggcgagtggttcccccaagt145PEMT41intron 4 + 23588gtgcaggcgccctgcatccc C/T gcagccaagttctgggcgga146PEMT42intron 4 + 23627gacactgccctgagccagga C/T ggtyaggtgggacgccttcc147PEMT43intron 4 + 23941tgaggggttgggactctaca G/A aggagagtggactcacgggg148PEMT44intron 4 + 24091gacacctcttcactgtcagc G/T ctgagacacgcccctgccct149PEMT45intron 4 + 25348caggccagttggaatcctac G/A tagagtgaaagcatctcagc150PEMT46intron 4 + 25603taagcagttaacactgatgc G/A tgatgaaaattccaacagca151PEMT47intron 4 + 31540cctccaggtggcaggaacac T/C gtgaggagcatgcaacgtgc152PEMT48intron 4 + 31637gtgggctgggacgccaggac G/A gtgaggggcttcaaggtgtg153PEMT49intron 4 + 31642ctgggacgccaggacggtga G/A gggcttcaaggtgtgtttgt154PEMT50intron 4 + 35593ggaggagctgaaagagctgg G/A gctcgggatcaggtggttca155PEMT51intron 4 + 35647actttgaggcaccaccgcac C/A tgtccgtgcgtgagggagac156PEMT52intron 4 + 35862tcccagtggtggctctgtcc C/T cgtctcagccgagcactcag157PEMT53intron 4 + 35882ccgtctcagccgagcactca T/G cggccagggtggctggactc158PEMT54intron 4 + 37141ccacaggccggatgccttga T/C acttctcagctgcagggctg159PEMT55intron 4 + 38862tggagagaccacctcagaca C/G caaggacgggcatgccatgg160PEMT56intron 4 + 38872acctcagacagcaaggacgg G/T catgccatgggtcccggcag161PEMT57intron 4 + 39140atgtctcaaatctccctccc C/T gggaaatctaggcacaggtc162PEMT58intron 4 + 39635caggcccaggagcaggtggg G/T cctcctcacaggagcagggc163PEMT59intron 4 + 39713actctgagcatgctggctcc C/T tccttctttccagggcagca164PEMT60intron 4 + 40436cctggttgtgcttcggaccc G/A gaggcagacagaggaggcct165PEMT61intron 4 + 47485acaatgactgttggagccct C/T gagcaggctgtgtcacgtgg166PEMT62intron 4 + 48131actgggggatcctgaatccc G/A cctcctgatgccagtggagc167PEMT63intron 4 + 48558cacagtgtgaactgttaggc C/G acagccacatcttgccggag168PEMT64intron 4 + 48702gagatgggggcggttcggga G/A gcaaaagcaggaaggcagaa169PEMT65intron 4 + 50302gcatgtgcatgggcagaggc T/C gttcccatctgagtgggacc170PEMT66intron 4 + 54102ggccgcgtgctcctgcagcc A/T tgggctcctctggcagttct171PEMT67intron 4 + 54220cccagggacagatcttctcc G/A ccagacgtctctttctgcct172PEMT68intron 4 + 54371gcagataatgtgcagctggg G/A tgcatgtggttgttgctccc173PEMT69exon 5 + 79tggcctgctactctctaagc G/C tcaccatcctgctcctgaac174PEMT70intron 5 − 6796ggaggaagtcagcttcttac A/C gatggtggctcccagctttc175PEMT71intron 5 − 6636ttttctcctctcaccttttg T/C gttcagaggcagaggtgtgc176PEMT72intron 5 − 6448gttgggccaggctctgacag G/A accctcgggaccagctcctg177PEMT73intron 5 − 5218ggagccctggctgaagaagc C/G ttacgaccaaggcctggagg178PEMT74intron 5 − 4824ggacaggccgggggttgagc G/A gctgcatgaaggagggaggg179PEMT75intron 5 − 4249tcaccagagtgatttcctcg C/A ggcaggtgcctggggtagcc180PEMT76intron 5 − 4230gaggcaggtgcctggggtag C/T cactgggcggggtccatgag181PEMT77intron 5 − 4182ggagagtaaggggtgggggg G/A cacttaggacagggaagctg182PEMT78intron 5 − 3369ccaggtggggccgtgtgcct G/C tggcctggtgtgtggcccag183PEMT79intron 5 − 2625cagggaagctgggccctgaa C/T gagctgggcttttgggccac184PEMT80intron 5 − 1200attattgtgagcatgggaag A/T gcacatttggtcacacatgt185PEMT81intron 6 + 606qcctggctagacgcccacca A/G tgaccctgatgatggcagca186PEMT82intron 6 + 1229tttggtccaggaagggggac G/A gcagccaggagcgtctggat187PEMT83intron 7 + 716atggagatgtgctcccccgg C/G gggtcagaggacctgcggtc188PEMT84intron 7 + 1537ctctgggggacgcataagcc G/A cctccagaggacatcagcca189PEMT85intron 7 + 1718gggcttccaggtgtctgagc T/C ccccggcatgtaggacccca190PEMT86intron 7 + 2695ggctttgggggaccctggac C/T catttctagaaaaoagcctt191PEMT87intron 8 + 140ccagggctcccaggtcagag C/T ggccatggtagcttacaatg192PEMT883′flanking + 179tacttaggaggcgtcagggg C/T tcacctggccatggccatgg193PEMT893′flanking + 394gatgacactgtcattcctaa A/G tgaatggccttgtgctgacc194GSTM315′flanking − 144ccaacgccggcattagtcgc G/T cctgcgcacggccctgtgga195ALDH515′flanking − 2808cgttgcactgtaggactctc C/T ccacgtcccctaatcccatc196ALDH525′flanking − 2575gcagttcccgcggatagaga A/G ggtccggtccttcccgctgt197ALDH535′flanking − 2537tgtgggtgaactgtaaaaaa C/T tgcctgtattcaggaggata198ALDH545′flanking − 940cttcaactaatctgggaaca C/T tacactctgtttaattttca199ALDH555′flanking − 785tgggaaagctgaaaagggat G/T ctgagacctgtggttggggg200ALDH56exon 1 + 183ccgacggtcaaccotaccac T/C ggggaggtcattgggcacgt201ALDH57exon 1 + 257cgtgaaagcagcccgggaag C/T cttccgcctggggtccccat202ALDH58exon 1 + 320gcggggccggctgctgaacc G/T cctggcagacctagtggagc203ALDH59exon 1 + 605acttgccccggcactcgcca C/T aggcaacactgtggttatga204ALDH5103′flanking + 1527aaagtgcaactgtaagaccc G/A tagagaaaactctggttcc205TGM11exon 2 + 179tgccgaaatgcggcagatga C/T gactggggacctgaacc206TGM12intron 9 − 611acttaccactzctgtcctctc C/T tgccaggcctcttcctgtca207TGM13intron 9 − 272ccgcacatctgtaccctgcc C/G ccatcctccagcagagcagc208TGM14intron 10 + 54tcagtcatgggttctctggt C/T ccaacttcaccgctgactga209TGM15intron 10 − 51aggaggccgggagtcaggcc A/G ccctcagaccctctggctca210TGM16intron 12 − 47gggagtccctgggggaagcc T/G caggataaggacatcagaggtg211TGM17intron 13 + 72ggataaggacatcagaggtt G/A gcgctaagccagcagcaggc212TGM18intron 14 + 1671atctcttacccacaccccca C/G catggtggggaggttcctca213TGM19intron 14 + 1691ccatggtggggaggttcctc G/A tcctaagggatccgcagagc214TGM110intron 14 − 1634tccctgcctccctccttcag G/A gagctcagaaacaccttcaa215TGM111intron 14 − 1459ggaaacccctcagaaccagg T/C tccaagccaaatgctttgcc216TGM112intron 14 − 801cagaatacaaaagtgggatg G/C gaggcaaggagtcccgttag217TGM113exon 15 + 233ctcgaggtggagcttagccc T/C gtgccaggagcaatgggact218TGM114exon 15 + 369ggagtcagtcttcacttgca C/A tgggggaacagatgctaata219GGT11intron 1 + 85ttatccagtaaggtggctcc G/A tcacctcitttcctggtggg220GGT12exon 3 + 68gacggccaggtccggatggt G/T gtgggagctgctgggggcac221NQO111 intron 1 80aggaggttgtaggggcttgg C/A ctgaattttgttccttgact222PIG315′flanking region − 47gggaaggaggaaaggaaaga G/A ggggagggtggttctgctta223PIG32intron 2 243taacaccggacgcccagcag A/C agtcccagcttcttagaatc224PIG333′flanking region 282agcaggccccagccctgccc G/A ctactcacctgggccccacc225NQO215′flanking region − 434tttctgttgcaccacggacc C/G tcattctgtaaccgggatac226NQO225′flanking region − 406gtaaccgggataccagccag A/G gatggggagcgggaggcgca227NQO235′untranslated region − 102tcctgcggctcctactgggg A/C gtgcgctggtcggaaggtga228NQO24intron 1 1919tcactcaaatagagctgagt T/C agtcactcagctcttggacc229NQO25intron 1 2004acaaactcacatgccaccag C/G catctgatgtaeacatgtca230NQO26intron 1 3391aaagcagagggctgtgcagg C/T gcccctgcccctaggctagg231NQO27intron 1 3456caaaggcctcatcctcaggg C/A ggccaactcttctgttttag232NQO28intron 1 3595actgcccagctttaggttca T/C tcttgtaagtgttgctggtg233NQO29intron 1 3596ctgcccagctttcggttcat T/C cttgtaagtgttgctggtgt234NQO210intron 1 3598gcccagctttaggttcattc T/C tgtaagtgttgctggtgtca235NQO211intron 1 3651ccctgcgctttgaagggatg A/G atgtgacctctcccacattc236NQO212intron 1 6036tggtgtggcggttcactgat C/T ccccagccttctgctcgatc237NQO213intron 2 14atggcaggtaatgattcact A/G ttgtggagtaagactttttt238NQO214intron 2 192gccacgtggacgtgtataaa C/T tatctggaattatcttgttt239NQO215intron 2 635caccctgtttagcacctagc A/C ccatccctggcctctgccca240NQO216intron 2 685agtagcacccctcccccacc G/A gctgtgacaaaccaaaatgt241NQO217exon 3 139ctgatttgtatgccatgaac T/C ttgagccgagggccacagac242NQO218intron 3 36aatgctctatttataaaaac T/C atctttatgtttrttacttt243NQO219intron 3 728aacgtgggcataaaccacca T/C ctagtgccaaaaagcaggtg244NQO220intron 4 1577tgcctctgcacaccccttcc C/T gacaccagccctttctttac245NQO221intron 4 1832tcggccggccacgtggagcc C/T gctttcctcctcgcacccac246NQO222intron 4 2583tggtgttacgcacagctcct C/T gtcccctccctgcctgccca247NQO223exon 5 330ctgtactggttcagcgtgcc A/G gccatcctgaagggctggat248NQO224exon 5 405atcccaggattctacgattc C/T ggtttgctccaggtatgtgc249NQO225intron 5 21gtatgtgctcttggateagg A/T tcactatggatagttggagg250NQO226intron 5 253atggcaaacaagggagtggg T/C caggtgtcaggtgacggggg251NQO227intron 6 2435ccccccttaaatcetttaac T/C gaatggtatgtaacaggtgt252SULT1A115′flanking region − 1597gcagagtaaagggactcact C/G aagaagaggaacgtgggggt253SULT1A125′flanking region − 1491gaggggtatattcatgaaga G/T tccaggaaaaggtaaagatt254SULT1A135′flanking region − 1376cggtttcatatgttactgat C/T atacaatgagatcctaggtg255SULT1A145′flanking region − 1375ggtttcatatgttactgatc A/G tacaatgagatcctaggtga256SULT1A155′flanking region − 1370catatgttactgatcataca A/G tgagatcctaggtgaeacct257SULT1A16exon 1B − 65aaccctgcattccccacaca C/A cacccacaatcagccactgc258SULT1A17intron 1B 442gagccaccctgcctaggcct C/A tgcttttgctgagtcatcag259SULT1A18axon 1A − 197gctgggggtcccagcaggaa A/G tggtgagacaaagggcgctg260SULT1A19axon 1A − 159ctggctggcagggagacagc A/C caggaaggtcctagagcttc261SULT1A110axon 1A − 95gageccttcacacaccctga T/C atctgggccttgcccgacga262SULT1A111intron 1A 60ctggttttcagccccagccc C/T gccactgactggctttgtga263SULT1A112intron 1A 69agccccagccccgccactga C/G tggctttgtgagtgcgggca264SULT1A113intron 1A 174tgtgatggtggtaagggaac G/A ggcctggctctggcccctga265SULT1A114intron 6 11catgaaggaggtgagaccac C/G tgtgaagcttccctccatgt266SULT1A115intron 6 17ggaggtgagaccacctgtga A/T gcttccctccatgtgacacc267SULT1A116intron 6 35gaagcttccctccatgtgac A/T cctgggggccggcacctcac268SULT1A117intron 6 71ctcacagggacccaccaggg T/C cacccagccccctcccttgg269SULT1A118intron 6 108ttggcagcccccacagcagg C/A ccggattccccatcctgcct270SULT1A119intron 6 111gcagcccccacagcaggccc C/A gattccccatcetgccttct271SULT1A120intron 6 270ctccctgccaaagggtgtgc C/T acccagggccacagtcatgg272SULT1A121intron 6 488ttttacttttcctgaatcag C/T aatccgagcctccactgagg273SULT1A122intron 6 509aatccgagcctccactgagg A/C gccctctgctgctcagaacc274SULT1A123axon 7 600ccctctgctgctcagaaccc C/G aaaagggagattcaaaagat275SULT1A124axon 7 645gagtttgtggggcactccct C/A ccagaggagaccgtggactt276SULT1A125axon 8 902gctgtgagaggggctcctgg C/A gtcactgcagagggagtgtg277SULT1A215′flanking region − 547tgttctttcttggttctatg G/C atccatgctctgctccaccc278SULT1A225′flanking region − 425tgtgggttgcactgggccag G/A acccctggcaccttcaagac279SULT1A235′flanking region − 358ctttccagggcctgcctatc C/T cagctttctccttcttgcct280SULT1A245′flanking region − 355tccagggcctgcctatccca G/T ctttctccttcttgcctggg281SULT1A255′untranslated region − 28actgcgggcgaggagggcac A/C aggccaggttcccaagagct282SULT1A26intron 1A 85ctgactggccttgtgagtgc G/A ggcaagtcactcagcctccc283SULT1A27exon 2 24gagctgatccaggacatctc T/C cgcccgccacrggagtacgt284SULT1A28intron 2 34gccacccaccctctcccagg T/C ggcagtccccaccttggcca285SULT1A29intron 5 77cagcaaccctgtgcggcac T/C ccctgcccgcttctccagtg286SULT1A210intron 8 684actggggtcccaggggtcga C/C gagctggctctatgggtttt287SULT1A2113′untranslated region 895gctctgagctgtgagagggg T/C tcctggagtcactgcagagg288SULT1A2123′flanking region 98cctccccgctccagctcctc A/T acttgccctgtttggagagg289SULT1A2133′flanking region 817ccactgactcggggcttgcc A/C aggctgccagggctggcaaa290SULT1A2143′flanking region 1006cctctcccctggaggctgct T/C tacccgctgtgggggcgcat291SULT1A2153′flanking region 1464tcccgtagcccaggcaagtt C/T ggtgaccagagagcagcccc292SULTX31intron 1 332cctgcttctccctttacctg G/T ctggctgtgtgaccttggac293SULTX32intron 1 1167taggaatggctaagcgtgtc C/A ttggcttctgtggccactca294SULTX33intron 1 2872cattctcactgatgcagacg G/A aagcttctgggcctgggcgt295SULTX34intron 1 6242cacccttggcttttaccagc A/G tggaaacattttacctgaat296SULTX35intron 1 6601gcgtgggcttctggagggag C/T gagaggagagtggagggccc297SULTX36intron 1 6768agcttgaaatgagccagact C/T tcctgggacctgttgacccc298SULTX37intron 1 6905agtactttgttttatcctcc C/T catcctcacaactttgccat299SULTX38intron 1 7464accaggatcccttgagagac C/A acatgaacacagccaggagc300SULTX39intron 1 7833tgcttcgggctgggcttggc C/A ggggcagctgtgctccaggc301SULTX310intron 1 8189caaactggggcccttaatgc C/T gcacaccagagcctcctttc302SULTX311intron 1 8316ctctcacacaagggcggagc C/C tcttccccttgaggcagagc303SULTX312intron 1 8617agacagaggctggggccaag C/T cagggttgccggagcttcct304SULTX313intron 1 8631gccaagccagggttgccgga C/T cttcctggactggtcaggcc305SULTX314intron 1 9493ttttcctcttagagcttccc C/A tcgtgctctgtgtcgagggc306SULTX315intron 1 10306caggcggggagcctgaatgc C/T gcagtcgtgagggtggccag307SULTX316intron 1 11987tcataaaataatgatatcag T/C acactttttggaaatttgag308SULTX317intron 1 13085ctctgtgcccggtgttgaga C/A aggccatgccctagagtcct309SULTX318intron 1 13108gccatgccctagagtcctgg C/A gagttccaccccagaacagc310SULTX319intron 2 700gaaccatctgggagtcgttc C/T gtactgccgtgccgagggcc311SULTX320intron 2 818agccatagtagctagccagc C/A atcagcgcrgggaggggagc312SULTX321intron 2 1677actccacttcccctgaaccc C/T accccttccttcctcctctg313SULTX322intron 4 4954gcgtgccgaaggcgggaggg C/T tgggatggctcaagacgtga314SULTX323intron 5 3632ccagctgactcccacaccag C/T ggtcagagaacattgtcttt315SULTX324intron 5 3662acattgtcttttaaggtttc C/T gaagtgctgcaataaagaaa316SULTX325intron 6 1874tctgatctcagagagctgac A/C atggaaagaattctaaacga317SULTX326intron 6 2133agaccggtgcctgcagttta T/C cccacagctcagccctccct318SULTX327intron 6 2524ggaagggccagggctgcctg T/C gatgcccagagcagtgcact319SULTX328intron 6 2573agatcatactcgctcctggg A/C tgtttattaaacacctgcca320SULTX3293′flanking region 12gttcccggcgttgcgtcgag C/C gtttctgcttgtgggggtag321SULTX3303′flanking region 445tccaaagcctgtcttcctga T/C ttcctgtggaaggagagtcc322TPST115′flanking region − 298acccgccaccatgcccagct A/C attttttttgtatttttttt323TPST12intron 1 3520agaaaagcagattaatgtaa C/C agtgacgcttagacaacaag324TPST13intron 1 3610ggcagaaagagaatatagca A/C ctattaaacacaaataaatt325TPST14intron 1 20828tattgctgtccacctggtca A/C tgtgtcctgctgataagtgc326TPST15intron 1 − 6761aatacaatacttattctgta T/C aattctagagggcccagaga327TPST16intron 1 − 544tagaacaagtgaatatttta c/T gttcttagtggtttatggtt328TPST17intron 1 − 526tacgttcttagtggtttatg C/T ttggcagttttcccccaaca329TPST18intron 1 − 234tcaagacatttaataatgca C/T atgtttcagctaaccctttt330TPST19intron 1 − 48ttatagtgggtttaagcatg A/G tttctaaaaaatttaaataa331TPST110intron 2 − 18944aaaacattagaactgggaag C/A ttaaaaaatctttagtcttt332TPST111intron 2 − 18687tatgtgcaccctaataacat A/C tttccttaaaactagtacta333TPST112intron 2 − 18501ttggaaggtaacttaatgta A/C gtgcctgaaaaacagggata334TPST113intron 2 − 159gaatggggatttccctcagt C/C ctgcccactggctgctcttg335TPST114intron 2 − 19acctgttgccttaaactcac C/A cctgctttgtttttccaggt336TPST115intron 3 158tgctggggaagaaagatcag C/C gtctgggacttgttgatttt337TPST116intron 3 3779agcagggcacgtcaccctcc C/T ggcacacccatgtgttcacc338TPST117intron 4 292ttgttattttcattatgaac C/T atgaaatatttcagctgaaa339TPST1183′untranslated region 1518gttgtctgtacatgttctaa T/C gttttgtagaacacgtgtgc340TPST1193′flanking region 264acggtgcttggcctgcatta C/T cattttgtagtgaagtttct341TPST21intron 2 578tcacctatcatcctcactgc C/A aggatgccaggatacctccc342TPST22intron 2 789cttaagccatcgtgcaggtc A/C ttgctgtcttctgctcactt343TPST23intron 3 2009cccaggctggagtgtagtgg T/C gtgatctcggctcactgcaa344TPST24intron 3 2017ggagtgtagtggtgtgatct C/T ggctcactgcaacctccgcc345TPST25intron 3 2035ctcggctcactgcaacctcc C/A cctcccgggttcaagcagtt346TPST26intron 4 104aatgttcagtctctcaattc C/T tggtcatctgatttgttcct347TPST27intron 4 379taaataaataaactattggt C/T cctttcttgtcttataaggt348TPST28intron 4 588tactgcagcctgatacttct C/T ggcttaagccatcctctcac349TPST29intron 4 626caccccaggctcctgagtag c/T taggactgcaggtgcacgcc350TPST210intron 4 718cccaggctggtctagaactc C/C tggccgtaagggatgcccct351TPST211intron 4 873gttgatggccttatttatac C/A tttccattacagcttctagt352TPST212intron 4 949caaatatttgaaaatgggac C/C caggcctgaggaagagcttt353TPST213intron 4 1033taagctcagcatttctgagc C/A tgtgctgattttaggaaata354TPST214intron 4 1051gcgtgtgctgattttaggaa A/C taaacagttatcgtattgaa355TPST215intron 4 1356gattcaacgtacataccagc C/T gacattgacaggtgaatggc356TPST216intron 4 1707gtctccttaaaaggtggctc G/T ctgcccctggcttgccccag357TPST217intron 5 215aagaccagcctgaccaaaac G/A gtgaaaccccgtctctacta358TPST218intron 5 341tgggaggcagaggtcgcagt G/A agctgagatcacgccgttgc359TPST219intron 6 31ggacttcactgggggttccc G/A CtgCttctgggtggccccgg360TPST220intron 6 273gtttgtctgacactggggac A/G gggcaggaagcaccactatg361TPST221intron 6 693aaagggatttttttgaactt G/C gtaattcaaagatttaagat362TPST222intron 6 1635tcctgggtacagagttggcc T/G tgaacaaacatgagtccttc363TPST2233′untranslated region 1147cttccccactttcagatctc C/T gcaaatgacttcattgccaa364SULT1A31exon 8 843cgcttcgatgcggactatgc G/A gagaagatggcaggctgcag365CST1intron 1b 6302agagctccccagagaggact A/G tgaggctgcatgatgcatga366CST2intron 2a 1004gagtgagacccccatctcta C/T aaaattttttttaaaaagta367CST3intron 2a 1395atgcctaagtttacagtagc T/C aggcaggaaaggcacaacca368CST4intron 1d 473ccagagcctgaggttggtgc T/A ggggcccctccatggctgcc369CST5intron 2b 726ctatctctccagtgcctctc T/C gtccctgtctggaccctgct370CST6intron 2b 745ctgtccctgtctggaccctg C/A tggggggccacagagcaggc371CST7exon 3 85tcactagtttcctgctgctg G/A tgtactcctatgccgtgccc372CST8intron 3 308tcgtctgaggtcaggagttc G/A agaccagcctggccaacatg373CST9intron 3 853ttttgtcctataaaatggca G/A tttcatgtggcccaagctga374CST10exon 4 198gaggcagtgatccgggccaa C/T ggctcggcgggggagtgcca375SULT1C11intron 3 2280qcaaatttttggtattttta G/T tacagtcagggttttaccat376SULT1C12intron 3 3742gcagatctcactttctggca G/A attccctgaatttgctcccc377SULT1C13intron 3 4453ttcatagggcttttccctca C/T ttgttttgtaattttgtata378SULT1C14intron 3 5234gacaagagactagaggcagg A/G gagctttgcagttcttctaa379SULT1C15intron 3 6175tggctggcaggaaggtgagg G/C agtcctctcttctctggtcc380SULT1C16intron 4 205acatgaaggcaggatccaga T/C tgaatgtttggagggaacta381SULT1C17intron 4 408ggctcacgcctgtaatccca G/C cactttgggaggccgaggcg382SULT1C18intron 4 429cactttgggaggccgaggcg G/C gtggatcacaaagtcaggag383SULT1C215′flanking region − 110tcctgttaactcacagagaa C/T ggaagggctggaacgggacc384SULT1C22exon 1 15acactaatggccttacacga C/G atggaggattttacatttga385SULT1C23intron 1 297gtagacttgtttatttattc A/C ttcccaatctaggcccttat386SULT1C24intron 1 363gagtgtgtgagctagaaagg T/G gatcctgagtctgatttggg387SULT1C25intron 1 2300gggctactatcagcagccac C/T acctcaggaaggatgacttc388SULT1C26intron 2 455aagacttggaagcaaataga T/G aaaaaaaaaatcgtagaaat389SULTlC27intron 4 55caaaatctccaaacacccta G/A aaggaaagaatcttttcttt390SULT1C28intron 4 111ctgccttctttaatggaaca T/C tctcacttctcttcaggaat391SULT1C29intron 5 1657ctttgtgtttactttgtttt T/C acttggtacaaaagtgttgt392SULT1C210intron 5 2082tctgctcctagagatggagg C/A gtcccacagccacagtgatg393SULT1C211intron 6 933agctactgaacctctcccac A/G taactgtatttcaggggcag394ST1B21intron 1 80acttgtccataaaatoatta C/T cattctaaataaagttaata395ST1B22intron 2 − 352aacatttaaatagtcattta T/C agcaatgcacaggtataata396ST1B23intron 2 − 85attacataatgctcaaaaat G/A tcttgaaaaactggttggca397ST1B24intron 4 460gtacttgacattaaaaaata T/C ctgatgtttatatatccata398ST1B25intron 4 470ttaaaaaatatctgatgttt A/G tatatccataaatagctaat399ST1B26intron 4 518tttaagattgtcctcatatt C/G ttacttcctttggttactaa400ST1B27intron 4 616aatgtttatgaaaatagact T/C ttetctggttttagtggcct401ST1B28intron 5 58ctgcatcatgctgtaaaagg G/A ttgatatttgctttccaact402ST1B29exon 6 612taatagaatccaaaggagga A/C atcaagaagatcattagatt403ST1B210intron 6 582aatacattacttccatttaa G/A tagtctgtttattgtggctt404ST1B211intron 6 3130agatgtaaaaaattattcaa A/T ttttaaaagcctgaaaaatt405ST1B2123′untranslated region 907tttaaagtgtctaaatcaca C/A atctgaagaaataagagatt406ST1B2133′flanking region 50tcagatcccagttttgttcc T/G ttgattctgagtttccaaat407ST1B2143′flanking region 328tttgacccaggacactgtgt T/G ccactgctgtctaccgagtt408ST1B2153′flanking region 446gtagttcagattttggaaat C/A ttttttctatatcataccta409CHST215′flanking region − 260agccggacagtccgccgggc G/A gtgatccgggggccgctccc410CHST225′flanking region − 56gcgctggggaccagccgccg C/T gcccgcctcggagtcgcggc411CHST233′flanking region 218aggagtgaaacacatctttg T/A attctaaaggcagaaaccaa412CHST243′flanking region 383gcagagaccaatgttttggt G/C ctgaggctggttcagaaaaa413CHST253′flanking region 952tactgaaacattctgcagaa T/C gttatactatgagaagaaat414SULT2A11intron 2 478ggactgggctctgtacacac T/C tcgtcttactgtgtgtaaat415SULT2A12intron 3 382caaaaccctcttaatattct G/A tttctatctgtctcagaact416SULT2A13intron 3 409tctgtctcagaactgattgc A/G tgactctaggatcgctatat417SULT2A14intron 5 249agctggaaattacaggcaca C/T gccaccacacccagctaatt418SULT2A15intron 5 395aggcatgagccacggcgccc G/A gccaatttatcagctttaat419SULT2A163′flanking region 33ttccttgttaaaagttacca G/C ggttggccaggcacggtggt420SULT2A173′flanking region 46gttaccagggttggccaggc A/G cggtggttcatgcctgtaat421SULT2A183′flanking region 199ttcgccaggcgcattggctc A/G tgtctgtaatccagcactt422SULT2B11intron 2 4162ttctcccctctcctcaccat C/T cgcacacaggtgatctacat423SULT2B12intron 3 879gagggcatccagctctgggg G/A ctggacctgggggtttgtgg424SULT2B13intron 4 3882ttccacgctccttccttggc C/T gagtgccctccctccgctga425SULT2B14intron 5 1780cctgcagaagggggrccctt C/T catgtccaagcagtaatggc426SULT2B15intron 5 1814taatggctgcagcatggagc G/A ttgtgggggcattgagacag427SULT2B16exon 6 789ccctcttctccaggggtctg C/T ggcgactggaagaaccactt428CHST415′flanking region − 1092atgaagccttgtgccatctc G/A ctgtgtcgtgccagcacctg429CHST425′flanking region − 941ctgccagagagaaacaggaa G/A ggaggaagagccacacaatt430CHST43intron 1 − 150caggaaatgatttggagaag G/T actggtgccattgttggcac431CHST51intron 1 − 144ggcctCttaggtttcagcca A/C gacaggtgactcttagcacc432CHST52intron 2 17caacgtaagagcgcttctca T/A tgtccagctcctttgtttct433CHST53intron 2 139aatcccagcactttgggagg C/A ggagatgtgcggatggatca434CHST54intron 3 1829gactgtatgtctgctattca T/C ataggaacaaataattcatg435CHST55intron 3 2037aaatgaaaccaacaccaaca C/G tgcagagaagcaaacaaaag436CHST56intron 3 2134aagcagctaaattgtgttcc G/A tacaggtgcaattaggcagg437CHST57intron 3 2528atggtaaagttcgcctgggt G/A cagtatgtcagcatcctgct438CHST58intron 3 2674gcacttatcctagaaaggcc A/G tttctgaagactcagcagga439CHST59intron 3 7039ctggctcccgccggccaccc T/C gggaccgcagccacgtctga440CHST510intron 3 7211gtagccccaggacaccccca T/G cctcaacatcccattctggg441CHST511intron 3 7294ggagcttccagtggcttggt T/C acccccgactcttcgtccat442CHST512intron 4 108gcagggtcctgcactctgca G/A ggggcaatcacaggtgggag443CHST513intron 4 402ageactggaaaaagtacagt T/C gcacttgtagcggaggtggg444CHST514intron 4 547ctcctgtccccgcattgagg C/G gaaggagcagaggtgagatc445CHST515intron 4 1142gccccaggtctcatagctcc C/G cattggcagtgctgggattt446CHST516intron 5 1187cactgggcagtaattggggc A/G tgggatgggcatgagggccc447HNK − 1st1intron 1 139gtgttttggcgacttgaaga C/T ctccctagttcgcgggagta448HNK − 1st2intron 1 1020acctgagcagaaaattctct T/C cttcgctgaaatgaaaattg449HNK − 1st3intron 1 1091aagaatttgtaaacatcaca G/A gcaacttgcagttatattcg450HNK − 1st4intron 1 1971ctataactatttcaaacata C/T gaaacaggcataattggatt451HNK − 1st5intron 1 2096atttagaatattcatttacc A/C agaaatccaaatataacctg452HNK − 1st65′untranslated region − 91ctatccagtgacaagaggaa C/A caagaacctcagttcagggg453HNK − 1st7intron 2 − 530agtgggcggaggcgagaagc G/A tcagtgttcattcctttgct454HNK − 1st8intron 2 − 466gctacatcttgtcagccagt C/T agaattttaaacacagccag455HNK − 1st9intron 2 − 92acggaaatatttgtgctgat A/T cttactgactgaaatcacct456HNK − 1st10intron 3 152catggcctccgttccttcat G/A ttacagaggtgtgaggggag457HNK − 1st11intron 3 312cacagtggccttatgccttg C/T agcagggcgcctctcaggct458HNK − 1st12intron 3 1948tcctttgatgtatcaagttt T/C gtgctgaatgttttcagtgt459HNK − 1st13intron 3 2140ttacacctggagaggagcac C/T gcagcggtccttaatactgc460HNK − 1st14exon 4 187agaagcacattcctgaggaa C/T tgaaggtgggcacagccagg461HNK − 1st15intron 4 581cctgatcattccctagctgg G/A atgaggggtgcactctggaa462HNK − 1st16intron 4 615tctggaaggcctctcacttc G/C taaccccccttctggatcta463HNK − 1st17intron 5 7gattgttctaaatggtgtgt G/A tgggtctactgaatgtccac464HNK − 1st18intron 5 123acctgaagggactggtggcc G/T tccagacaggcctgtttttg465HNK − 1st19intron 5 721ataattatgggctctgctta T/C gaaatttagcttcagacagg466HNK − 1st20intron 5 867tgctgcccacagagtcggtg G/A tcactcctggccactgtttg467HNK − 1st21exon 6 444ccaggagcattttcttccat T/C gaggagatccccgaaaacgt468HNK − 1st22intron 6 94ctgagttctgtacttggcag A/G ttgatcggaggaccacagag469HNK − 1st23intron 6 247catgaaggtgacatcatttt G/A ttaatagaaattagcaggca470HNK − 1st24exon 7 696aggaggaaccggacagagac C/G cgggggatccagtttgaaga471HNK − 1st25exon 7 870gagaccctggaggacgatgc C/T ccatacatcttaaaagaggc472HNK − 1st263′untranslated region 1110tcaaatatctttattagacc T/C ggggctaaccaggtgaagat473HNK − 1st273′untranslated region 1178ccacacccctcctttgagga C/T gcccggggtctcccacaggc474HNK − 1st283′untranslated region 1393ggaagcatcacacagcgtta G/A gagccgtttccttcaggtgt475HNK − 1st293′untranslated region 1452tgaggttctcctggctagtc A/G gggtggcttcacccatcact476HNK − 1st303′untranslated region 1540gcaagggggctgctgaaatc G/C cagagacttttgcagcatca477HNK − 1st313′untranslated region 1696aggtggtgtggtgtccaggg G/A tccatctttccagaatccat478HNK − 1st323′untranslated region 1829aggggaggctttttctacct G/A agaaggggagtgtctttgag479HNK − 1st333′untranslated region 2211tccagcagtgcggcttcctg G/T caacaaggtaggccctggtg480HNK − 1st343′untranslated region 2212ccagcagtgcggcttcctgg C/T aacaaggtaggccctggtgc481HNK − 1st353′flanking region 1016cacacgaaggtgtgcactca C/T ggcctgcagggcacccaggt482HNK − 1st363′flanking region 1152gcatgctttgctcatctgga A/C tctccagaagcagggaacag483HNK − 1st373′flanking region 1291gccgagaccctcagcaggat A/G gtgcagttacagggctgagc484STE15′flanking region − 605caggtttctaaaataataat C/T gaaaggtgagtgatgtttac485STE25′flanking region − 536taaaattttcaggtctgctt A/G agagttaaaggcaaagagtt486STE35′flanking region − 231ccttcttccccaacccctga C/T ggcagacttgggaatttgaa487STE45′untranslated region − 64tgcagcttaagatctgcctt G/A gtatttgaagagatataaac488STE5intron 1 69aaatatagaatgaaaattat G/A tattacaaagctcttaaaaa489STE6intron 1 311caatgagaaaataaagcaag c/G agggtagaaggaggtagaat490STE7intron 1 655tctaagaaagtagggactat G/A agaacccctatgtatctata491STE8intron 1 671ctatgagaacccctatgtat C/T tatatccaccatagtattct492STE9intron 1 772aaaaggcaggttggaagatg C/A aggaggggagtatgcagaaa493STE10intron 1 1715taaccatcttgcttaacctt A/G tcatttttagccaagtcatt494STE11intron 1 1928aaatgatacatattcaggaa A/G tcaaaaatctctgacttaga495STE12intron 1 1953aaatctctgacttagetacc C/T ggcaataataatcaaatgta496STE13intron 1 2087aattttgaaagaaattgaag T/G tctgtggtttttatttatca497STE14intron 1 2323taggtatgtaggagggtccc G/C ttatatacatagttgttaat498STE15intron 2 165tctattccatgaccacaatt T/G ttacctgtaacttgaatagt499STE16intron 2 1707cctaggacccaacatgagac A/G taatataccatcagtaaaat500STE17intron 3 850ggtgtccattccctcaagaa T/G ttatactttgtgttacacac501STE18intron 4 1653agtaacaggctagtagataa T/C ataaataactgaggccaacg502STE19intron 4 1899tacatgaacttagagaatca A/G gtagatcacacacaccaaca503STE20intron 4 1930cacaccaacaataaaattac A/G cagaatgataaaagaatttg504STE21intron 5 666ttctgatcatgtagtaacaa T/C tataaagaaaataataatgt505STE22intron 5 982aggcaaagcagaaccttttg A/C ctcacacaacattatattat506STE23intron 7 369agattttattcctctctctt T/C ttgagttgaagaaataagtt507STE24intron 7 447cacctttcaagggtaagtgg C/A aaaaaatagaaattcaaata508STE25intron 7 672aatcttgctctttgaaccat A/T ctgtcagtgagagtcaggga509STE26intron 7 856tgttacagaggacttaaaac A/G gttgtcttgcttgcaaacgg510STE273′flanking region 218cagcctcccaagtagctagg A/G ctacagacatgtgcaaccat511ADH115′flanking region − 55atcatgtgtggaactggaat C/T gggtgttattcaagcaaaaa512ADH12intron 1 268acatttgcggtaaagcgata A/G tttattccaagctaatcatg513ADH13intron 3 442aaatggaggctacatggcta C/A ggctgaatgagcatgacctt514ADH14intron 6 56tacaacttggaggatgcatt T/G aggctgcagaatatatgttt515ADH15intron 8 74gtctagcagaaaatgaaaag G/A tggaaggatgagaaaaatta516ADH21intron 2 340ctattttttaaagcgtgcat T/C cttacataagacttaaatat517ADH22intron 3 91aaggcaatgagagacgaaag T/G gcttgcacaaggtcaccgcg518ADH23intron 3 205atgtattgtacccttcaacc A/G ttatgtaccgagtatctact519ADH24intron 7 108acaattgacaaggcaagatt T/C tgaaaacaaatcaaaaataa520ADH315′flanking region − 254tgagagaagagaagcaggaa C/A ttgagagaggaggaagagag521ADH32intron 2 355tatgcattcttctatattat A/G caagacaaaaattttaggat522ADH33intron 3 32acactcagggaacatgcctt G/A gttcaccatcacaagattag523ADH34intron 4 6ctgcttgaaaaatgagtaag C/T ttctgatgctttctttgcac524ADH35exon 5 453agcaccttctcccagtacac A/A gtggtggatgagaatgcagt525ADH36exon 6 815ttcgtttgaagtcatcggtc A/G gcttgacaccatggtatgat526ADH61intron 3 249tgaaactggacttgaaagta C/A aaatgagacaaaaatttatg527ADH62intron 6 1072taacccctatactgtattgc A/A tcactttctaacaggcagct528ADH63exon 7 885gtctgtgtggttgttggggt A/A ttgcctgccagtgttcaact529ADH64intron 7 1292gttgagaaacactgcctagt C/A ccgtctgtggtcctagaatt530ADH65intron 7 1616ctatcacagaataatccgca T/C agaacactaagcagattacg531ADH715′flanking region − 528tgtgcagacacagaaagttt T/C acttaactttctacacctaa532ADH72intron 1 361tcagtagcatgtgctgcact C/T gctgcagtagttcaatggga533ADH73intron 3 183aacctcaacctttagaaggc A/G aaccttacggtgtttataaa534ADH74intron 4 76tgaattgaattaattaatac G/A tgtatttgatgtatcaaaca535ADH75intron 6 615tggcatagcgtaaagagact T/A ggaaaaatggaataaagcca536ADH76intron 8 532aagtctaaccatatcaccaa T/C ttagtatgccattgtactat537ADH77intron 8 651gctgctatttatttcaagta G/A gccacaaaatttccttattt538ADH78intron 8 760catttttagatgaagaccaa T/G gttgtgaaagcaaataaata539ADH79intron 8 1207tctccacatttggtctagcc T/C acaggatcatcatattatga540ADH710intron 8 1691tccctcatctcattgcccac A/A ctcattgctttaattcagtc541ADH7113′untranslated region 1364atttacattttgtaaggcta T/C aattgtatcttttaagaaaa542ADH7123′untranslated region 1498gatatagtaaatgcatctcc T/C agagtaatattcacttaaca543ADH7133′untranslated region 1584aaacacttgttctgagttaa C/G ttggattacattttgaaatc544ADH7143′untranslated region 1818aatataaacatagagctaga A/G tcatattatcatecttatca545ADH7153′flanking region 865tacatcaaaagaaataaatc C/T aagaaggaataaacacattt546HEP2715′flanking region − 191tcagcactctgtgtctagct A/T aaggtttgtaaatgcaccaa547HEP2725′untranslated region − 163gaacccatcaattccgtaca C/A attttggtgactttgaagag548HEP273intron 1 1941aaatttaccctaaccagcct A/C actctctgccactttctgtt549HEP274exon 3 289ttgtgtgccacgtggggaag A/A ctgaggaccgggagcagctg550HEP275intron 4 1070tgtctcagttcacaggatca T/C gactctttttctcgaaactg55lHEP2763′flanking region 362ggctttgtgtgtgctccatt A/A tctgaactgggcctgctggg552L1CAM1intron 1 + 767tttgacttccttacctgggt A/A actgtgtgagtcactctgtt553L1CAM2intron 1 + 862gcattgggtcatgtgtatgt A/C tgagtggggctgaatgtaag554L1CAM3intron 1 + 1332cagggatgaaggagcagagc C/T gctgagaggccacacaggtg555L1CAM4intron 4 + 502tttccctggggttttccctt T/C gcattccstcctccctgagc556L1CAM5intron 18 + 147agcgacgttatgaaattccc C/A acacttcacatttctatast557L1CAM6intron 24 + 221ctccttagccccccagaggg C/T cccaactttaagagcatact558AANAT15′flanking − 542aggggtgcaggatggggtgt A/T agctggagggcagggggtag559AANAT25′flanking − 263ccccccacataagaggtggg C/A ttgtccaagactccgaggga560AANAT3intron 3 39cgcccagctccagggaggcc T/A ctgaagacagaggtcagcca561AANAT4exon 4 150cagccggccgtgcgccgggc C/T gcgctcatgtgcgaggacgc562ARD11intron 1 + 317ccgtcggtctgctcggcccc C/A ctccctcggggctgggcagg563ARD12intron 6 + 322gctcctcagcatctgctcac A/A cccgggacccacacctctct564ARD13intron 6 + 1055aaggctccatcctgagacea A/C aagtccagtgtgacctgccc565ARD14intron 6 + 1179aggaggaagacctgtatccc A/A gggacaccctcctccactcc566ARD15intron 7 + 159cctccaggctgctaggcaga C/T ggcctcctctaaagcccagc567ARD16intron 7 + 295tgaccagccctgccacccgc A/T gagccttgggcagaaccctg568ARD17intron 7 + 416actaccatggaggcccccac G/A acagagcgctgccccttgac569NAT113′UTR 215aataataataataataataa A/T aaatgtattttaaagatggc570NAT21exon 2 867cgtgcccaaacctggtgatg G/A atcccttactatttagaata571NAT223′flank 521ccatccatactttgccacaa G/A agaaggaacatgagctttat572NAT233′flank 573gatttgaaatcctgtggaca C/T ggggtgaattacttttaaaa573NAT243′flank 918attttctgtttgtaaattcc A/G gtatcagggctatagtttaa574NAT253′flank 979actattctccctcttcgact C/T gtgatgactataataatctt575NAT263′flank 1958tacctattgaagtaagccta CIT gtcatatccacctatttgtt576NAT273′flank 2034ccactgattcccagagctag T/G tcattaagaagacagtgcct577NAT283′flank 2201cagattactggagggctact G/A tttgctcaccaatgcaaatg578NAT293′flank 2818gggatatttgtctcctttct C/G cccagtgcatgttggaaacc579NAT2103′flank 3237atatatattccaattaaaaa A/Δ caaaataaatttccgaaact580NAT2113′flank 3386caacaaagagattttttaaa G/A ctttttaaaacaccagacag581NAT2123′flank 3660cagcactattcgcaatagca A/G agatgtggaatcaatctaaa582NAT2133′flank 3973agcagaaaaaataaataatg C/T gtactaggcttactacctgc583NAT2143′flank 4029caaaacaaacccccatgaca T/c gagtttatctatataacaaa584NAT2153′flank 4118ataagattaatatctgcata C/A aaatctttgttiacagcttg585NAT2163′flank 4146tgtttacagcttgttatata C/T tgaattatgtctgctccccc586NAT2173′flank 4279ttaatctgataggattggtg G/C ctttataagaaaaagaaaag587NAT2183′flank 4323ttgctctctccccagtgcag T/G taccaaggaaaggccatgtg588NAT2193′flank 4446tcaattggctttatctgcga T/C tctggaatcaggcaatactc589NAT2203′flank 4462gcgattctggaatcaggcaa T/C actccatttcataaaacaga590GZMA15′− flanking − 462cctcagcttgcacttggcct A/G ctaattcttatataatccaa591GZMA25′− flanking − 172agcctgcctgctggcagtga G/C ccatcatccaccattctcac592GZMA3intron 1 1949gacataaggttctctctatc A/T gcatgtatggtttgccttgt593GZMA4intron 2 + 683gactgcgtgaccaggtggaa C/T tagcctcagcatggaagggt594GZMA5intron 2 + 1250gttggtgtagtttatactag G/A ttatgaatgatagccttaat595GZMA6exon 4 + 105tgccaagttgcagggtgggg C/G aggactcacaatagtgcatc596GZMA7intron 4 + 696atagagccttacctgaagaa A/G ggtgtgcagtatgcatggtt597GZMA8intron 4 + 1141ctgttcagggaggatcccgg G/A ttccaacatggttctttatt598GZMB15′flanking + 529gcctccgtctcacaccaaca A/G gcagatttccccaccacggc599GZMB2intron 3 + 141gagggaagattgtgcagccc C/T atcactgtgtcggggcccag600GZMB33′flanking + 448ttttcagggcctgtccctcc G/A atgggggcaggcttctccca601ESD15′− flanking − 333gtcttgggacagaggagttg G/A gggagttgaaattaggccct602ESD2intron 1 603gtcatttctgatggggtcat C/T agggaaatgggattgagcgc603ESD3intorn 1 717tgtgtggtagaagcagcatt C/T taagcactacgtgaattaac604ESD4intron 1 1864gctttcatgcaggattgatc G/C tagtgggatgtattaggaag605ESD5intron 1 2389ttttgggaacacctgtctag G/A tgttaagagccagtggaata606ESD6intron 2 21taaacttgttttattgttta T/C atgttactctgaacattgaa607ESD7intron 2 588taaaattagtatctctctct G/A taagttcattatttaagata608ESD8intron 2 1498tagaaaaatgtgtatcacac C/T gtaagtgttcagtaatgtta609ESD9intron 3 92ctttatctagatattatagt C/A cctcattttacttttaaact610ESD10intron 3 422gtaaagagattaaacacaca C/T gcacacatacatatacctat611ESD11intron 3 581agaaaacctgagaaatgaca C/T aatttatttaaagccatagt612ESD12intron 3 2270gccagtaattacatgtagcc G/A tttacatcaaattagctaar613ESD13intron 3 2951taatgaaagtaaatgtttca A/G cttccctaacaaaagttgaa614ESD14intron 3 3001aaatgtcagaaattttttgt G/A ccgtcagtcatcaacaagaa615ESD15intron 3 3096aaggagcatacagaaaactt G/C ccatgatggggcctttgtgg616ESD16intron 4 2611tctaatagtccccagtatta A/G tggtgcacatcttcatgtcc617ESD17intron 5 390tcttttttcatctctgttaa C/T atcaaccatacagttaaaca618ESD18intron 7 107ttagtattggaactaaactt T/C tctagtgttgagaactttgg619ESD19intron 8 1090aaattctaactaattaaagg G/T ttcatcctttagtaactaga620ESD20intron 8 1651tataaagttgtggttaatga A/G tatatatgaataagaatatt621ESD21intron 8 2047agaaggaaaaaggccatttt G/C ttaagaatccctgagatatg622ESD22intron 9 − 3490atagaaggagaggctatact A/G cctccttaagtctcaggacc623ESD23intron 9 − 2596actaaggataaaaatatggc A/G tactcagtcacattggaact624ESD24intron 9 − 666aggccttaatgacatatttc T/C cctcacataaagatacaaca625ESD25intron 9 − 660taatgacatatttcccctca A/C ataaagatacaacatgcttt626ESD26intron 10 799tatggtaactgaagaaaatg A/G cattaagttcctaaagttat627DDOST1intron 2 629attctgttaagaagttctta T/C attaagaaatattgtctcct628DDOST2intron 2 3125gagaatataggagcttctgc G/A tatgcctgaaagtcagtcag629DDOST3intron 2 3920attactcatttaatgaataa A/G tggattactgagcactgtct630DDOST4intron 3 189actgctgtccaggggtccat C/T tggggctgagcccagctgga631DDOST5intron 6 185ctgtcctcttgttcgggagg C/T gtggcagcttttcccttact632DDOST6exon 8 37aactatgaactagctgtggc C/T ctctcccgctgggtgttcaa633DDOST7intron 9 37tcctgcccaagaatgctgcc A/Δ aaaaacggccccaggcctca634MGST115′flanking − 5tctggaccctgaacaggagg G/C gacatcgtgacaaaagcaaat635MGST12intron 1A + 330atcagcaggcgatggttact C/G tgggcgggtaaatcaggtga636MGST13intron 1C + 1428gtaaagggaaagggcgttcc T/A caactgagaagtgaagattc637MGST14repeatattatttgctctacctcagg G/A tttttcgggtcaagcgagat638MGST15intron 1C + 2914ctcatcaggtgtgtgtcaga G/T ggcttggtgctggccagtct639MGST16intron 1C + 4274attgtaatagattaacaaag G/T tgatgaaagtagtgtacata640MGST17intron 1C + 4276tgtaatagattaacaaagtt T/G atgaaagtagtgtacataat641MGST18intron 1C + 4306gtgtacataatgtacatagt A/G tagttgaacacatagcaagc642MGST19intron 1C + 4406gatggctatatgaccaataa T/A gatacatataaatgtataga643MGST110intron 1C + 4464agaaagattgcagctgatag A/G tgtcaggctaataaggacac644NGST111intron 1C + 4683aatggcagaggactggaaat G/T tacattttaagctttaccct645MGST112intron 1C + 4767gccttcctcttcagcacatt C/T ccaattatacttccaattcc646MGST113repeatatttcaattttttttttgg G/A gggggagacagagtctcact647MGST114repeataattacctcccaaaggcctc A/T tatcccagatactatcacat648MGST115intron 2 + 2379ttctcaaatttcattataca C/G tattcttcaacccaaagttt649MGST116intron 2 + 2767tttaactatagatgccttct T/G ctcctcttgtgtttgattta650MGST117repeattcactgagcctcaacctct C/T gggctcaggtgatcctccaa651MGST118repeataaaaaaatttgtagatatgg T/G tactccctatgttgcccagg652MGST119repeatctccctatgttgcccaggct A/G atcttgaattcttgggctca653MGST120intron 3 + 1495atcagacaatggccttcagc G/A tcctctctttgcagaatatg654MGST121intron 3 + 2528ttttggagacacttttcaga G/C agagcgtttccagcatcttc655MGST122intron 3 + 2567tccctttccatttttaagtt A/Δ gacttttttttttcacctct656MGST123intron 3 + 2731atacacatatggaacaatta A/C ctaaaaacttaaggtaatat657MGST124intron 3 + 3288gggtttatagtgttcccccc C/Δ tccccgcccccaaaagaccc658MGST125intron 3 + 4288ccattctatttgtcaactgc G/A taacacaggcgtagaagtgg659MGST126intron 3 + 4378aaatgtctgtccttttggca T/C gttgtgaaggagaacactaa660MGST127intron 3 + 4429attggaggtgacgatatctc T/C gtgatgctgggggagaaatc661MGST128intron 3 + 4817attgctatagaagagagtaa C/T gcaaagcagaaatagttttc662MGST129intron 3 + 6077tttgaaattagtgtctttaa T/C agttatctttttccacagag663MGST130exon 4 + 304 (3′UTR)aagaattctgtacttccaat T/G tataatgaatactttcttag664MGST1313′flanking + 1581tctgtgtgcatgaacatgca C/T gcgtgcacgcgcacacacac665MGST1323′flanking + 1729tatgtggagcaatttgaaaa A/T agtatattctaagccattaa666MGST1333′flanking + 3407ggatcactgctaaagatccc G/A gagtcactccatgtcccagt667MGST134intron 1B + 36ggagaaggggaccgcatgca G/A agggtggcaggcagggaggg668MGST1353′flanking + 25gggtaaacccattttgaata T/C tagcattgccaatatcctgt669MGST136exon 4 + 266 (3′UTR)aaagaaaatcatacaactca G/A catccagttggctttttaag670SULT1A21intron 4 1728tcagcttcctcctttgccaa A/Δ ccaagagatgagctggcctg671SULTX31intron 4 1728tgacctctccctgttagtgt G/Δ ggggcagctctttccagtgt672SULTX32intron 5 2457gcccttaaagggaagttcat C/Δ cttctctgccttccaggctc673PIG315′untranslated region − 93cagacaatatgttagccgtg674ADH24intron 7 + 108acaattgacaaggcaagatt T/C tgaaaacaaatcaaaaataa675ADH25intron 3 + (1721-1723)actgcatagaaatttaagaa GAA/Δ cttgttttattcctctccag676ADH263′untranslated + (2305-2306)gttaatgctttcccactctc AG/Δ gggaaggatttgcattttga677ADH515′flanking − 115taactgctgtaaagttacac G/A gggaagccctttcccgacaa678ADH525′flanking − 114aactgctgtaaagttacacg G/A ggaagccctttcccgacaaa679ADH716intron 8 + 727ttcagatccctgtaagccag G/A tattatttttaccattttta680GSTM115′flanking − 694tacgaagtggctaatttaca C/T agtacttagccagatgaccg681GSTM125′flanking − 661gatgaccgaaggactcagta C/T ccgagggcccctaacagaaa682GSTM135′flanking − 658gaccgaaggactcagtaccc G/A agggcccctaacagaaaaca683GSTM145′flanking − 656ccgaaggactcagtacccga G/A ggcccctaacagaaaacaca684GSTM155′flanking − 537tagaggggagactaagccct G/C ggagtagctttcggatcaga685GSTM165′flanking − 525taagccctgggagtagcttt C/G ggatcagaggaagtcctgct686GSTM175′flanking − 465aattaaattcccaggttggg G/A ccaccactttttagtctgac687GSTM185′flanking − 383gcggagagaeggctgaggga C/T accgcgggcagggaggagaa688GSTM195′flanking − 382cggagagaaggctgagggac A/T ccgcgggcagggaggagaag689GSTM1105′flanking − 378gagaaggctgagggacaccg C/T gggcagggaggagaagggag690GSTM1115′flanking − 343agggagaagagctttgctcc G/A ttaggatctggctggtgtct691GSTM112intron 2 + 118tgctggagctgcaggctgtc T/C cttccctgagccccggtgag692GSTM113intron 3 + 233agtgagtgcccggtctcctc T/C ctgctcttgcttatgggaag693GSTM114intron 4 + 26tgtgggtggctgcaatgtgt G/A gggggaaggtggcctcctcc694GSTM115intron 5 + 140actatcagcagttattctca CIT gactccaatgtcatgtcaac695GSTM116intron 5 + 577ctgccaccccattagaagga A/G ctttctactttccctgagct696GSTM117intron 5 + 645gctggtctggatccagaggc T/A gccaggtgcttgggcgctcc697GSTM118exon 7 + 519caccgtatatttgagcccaa G/C tgcttggacgccttcccaaa698GSTM119exon 7 + 528tttgagcccaagtgcttgga C/T gccttcccaaatctgaagga699GSTM120intron 7 + 2421ccgcaccgtgtagaatcttc A/G taagtgttagctgttactgt700GSTM1213′flanking + 42atttgctcctggccatctac C/T cagactgtctgtctgtctgt701GSTM21intron 1 + 7ggaacatccgcggggtgagc C/G agggtccgctgggcggtggg702GSTM22intron 1 + 45gggacgggggtgcgtggggg C/T ggggaagtgtggagcagctg703GSTM23intron 3 + 70gactgcatctcctctcccca G/C cttagaggtgttaagatcag704GSTM24intron 3 + 224agcaggccctggtctcctct T/C tgcccttgcatatgggaagg705GSTM25intron 5 + 100ttgattccttctggtgagtt C/A ttggtcttgctgactctaag706GSTM26intron 5 + 341tcctcttggtgggttcatgg T/C ctggctggcttcaggagtga707GSTM27intron 5 + 696acctttagctagacacagag C/T gctgatttgtgcatttacaa708GSTM28intron 5 + 723ttgtgcatttacaatccttt A/G gctaggcagaaaagttctcc709GSTM293′untranslated + 1006ctcagccccgagctgtcccc G/A tgttgcatgaaggagcagca710GSTM2103′flanking + 139ttctgctgggcatagtaagg C/T gcttgagaattcttgctccc711GSTM325′flanking − 144ccaacgccggcattagtcgc G/T cctgcgcacggccctgtgga712GSTM33intron 7 + 165agcctaacttctataccttg A/G aggcactgtctacaaaaaaa713GSTM34intron 7 + 257ctgttggactgggtggggtc T/G ttataagattggtgtatttt714GSTM35exon 8 '091cccagtggggcaacaagcct A/G tatgctgagcaggaggcaga715GSTM41intron 4 + 67ttggctggattggggtgcta T/C gctcagagtgagtctgtgtt716GSTM42intron 7 + 77gatgctttcccagtcctgga T/G ctgcataaagaataacttgc717GSTM43intron 7 + 80gctttcccagtcctggatct C/A cataaagaataacttgcatt718GSTZ115′flanking − 546agcagggcccaccagccgac C/A gcctcgaagcgccgtgagcc719GSTZ125′flanking − 321tgtctgaccagccgccccgc T/C aaggagtcacaagagggcag720GSTZ13intron 1 + 2890aaaatactgcatcaaaacca C/A gccacgctctgttgggggga721GSTZ14intron 1 + 2896ctgcatcaaaaccaggccac G/A ctctgttggggggacaccaa722GSTZ15intron 2 + 255tctcccaacactgctctcca A/G agccccttggcaaccatgtt723GSTZ16intron 2 + 1560caccactgtttaaggccctg C/C gggggcagagttaaacacaa724GSTZ17exon 3 + 94ccttgaaaggcatcgactac C/A agacggtgcccatcaatctc725GSTZ18intron 4 + 297agaaggaggagtttgctggc C/T ctgtcccctctggtccaggg726GSTZ19intron 6 + 94tatctgaaccagcctcccag G/A ctgctttgggcctgacagtt727GSTPi1intron 1 + 269ctcccccgggctccagcaaa C/G ttttctttgttcgctgcagt728GSTPi2intron 2 + 134ccccgggcctccttcctgtt C/T cccgcctctcccgccatgcc729GSTPi3intron 5 + 438gtgtgtgcgcgtgcgtgtgc C/A tgtgtgtgcgtgtgtgtgtg730GSTPi4intron 6 + 162cccgctggctgagtccctag C/T ccccctgccctgcagatctc731GSTPi15′flanking − 103taaagagtgtcccaggcgtc C/T gtgccgcccaatggggcaca732MGST1L115′flanking − 105tgctgccgctgccgtggggc C/A gggcgtgggcggtgctggct733MGST1L12intron 1 + 277agtgtctgtgagagaagcag G/A ttctggagggtggagtgtgg734MGST1L13intron 2 + 8030ggggttatacagagcccctc C/C gcccccaccacacatatgca735MGST1L14intron 2 + 8499gtatggcaggagtggggtcc C/T ggcaagccatagaggtatgg736MGST1L153′untranalated + 468cgccacctgtgaccagcagc T/C gatgcctccttggccaccag737MGST215′flanking − 46ggtcagcattcaaagtcaag A/T agcgccatttatcttcccgt738MGST22intron 1 + 176ggtcacccatgccgcctgct A/C ccctccttcccaggggcaag739MGST23intron 1 + 204tcccaggggcaagcagagac T/C gagaacattccagagattag740MGST24intron 1 + 373ttacaagtgttccaaaggaa A/T cgtgcctgcttctaaacctg741MGST25intron 2 − 3245cctcgtgatttgcccacctc C/A gcctcccaaagtgctgggat742MGST26intron 2 − 1998aggccgaggtgggcggatca T/C gaggtcaggagatcgagacc743MGST27intron 2 − 1640tgtttattccttgcatagcc A/C taatataaagtatgaatttt744MGST28intron 3 + 41actgtgttctaatgatgact A/C tgatgcttaaacgattaagg745MGST29intron 3 + 453atcagagtgctatgttgcag A/C tatatgaactttggcttcat746MGST315′flanking − 520acaaaaaggccctaacagcg A/C taaatccattcacttcggga747MGST325′flanking − 355cgcctaaaaccgctacggtg C/A ctctgctggggacaaattat748MGST335′flanking − 234ctgggggagtagatatatgt T/A tttgagaatgagaggagtaa749MGST34intron 1 + 74agcctttgcgcaggcactcc C/T atatttcagcctatgcgagc750MGST35intron 1 + 682agaaaatgccccttctttat C/C tggggtggcagcacggagcc751MGST36intron 1 + 832cgagtttacaagctacataa T/C agcgtcgggggcaagtaagt752MGST37intron 1 + 1919aataaaattcctgagtttct C/C tcactcgctcttacagtacc753MGST38intron 1 + 1991tgtaattaggcaacaggaaa A/C ttgtactatctttcaaatgc754MGST39intron 1 + 4458tcttccatcctcctaacata T/C agttagcttccactctccaa755MGST310intron 1 + 4676tgaatatgcaatgcaattgt C/C gggggatagttacttttcat756MGST311intron 3 + 278cagcatgacccatctaaacc C/C atgttgactotcccaggcct757MGST312intron 4 + 423cttgcctttttgttgtgggg T/C gtggggtggtcacagagaag758MGST313intron 4 + 506gtgcagagaagaaaacaaag T/C ggggaaggtggaaaggggat759MGST314intron 4 − 162tcacagatattttattttcc C/T gactgaaactaacttaattc760MGST315intron 4 − 130acttaattctacctaatttg C/C gtggggagtagttggccaaa761MGST316intron 4 − 105ggagtagttggccaaatcat C/C aaattgttaactttttgcta762MGST317intron 4 − 65aacatattgtgtaatcaacc C/T taggtgttaaaaaaggtttg763MGST318intron 5 + 105atcccagcactttgggaggc C/C aaggcaggcagattgcttga764MGST319intron 5 + 197aaaaaatacaaaaattagcc C/A gatgtggtggtgcacacctg765MGST320intron 5 + 222tggtggtgcacacctgtagt C/T ccagctacttgggaggctga766MGST321intron 5 + 374tcttatgctactatattttt T/C ttcttgggaatttgagaaaa767MGST3223′untranslated + 517atgacttacctttatttcca C/T ttacattttttttctaaata768MGST3233′flanking + 166agtctgattgtggtgatgta C/T gtatagtcatgccacagtga769GSTA115′flanking − 266ttgcaaaaagagcaaaatct C/A ggtgaaatgtattgtgtaaa770GSTA12intron 2 + 1220gagacacaggctttcctaag A/C tatgacaacaccataactag771GSTA13intron 4 + 1813aaaggcacccactggaggtg A/C attattttgccatcacctga772GSTA14intron 5 + 732gaagagtgttgtcatgaagg T/C ggagtcactgcccaagggag773GSTA15intron 6 + 333ttatcccatatgtgcccaca A/C tgagccggtctgagcagagc774GSTA163′flanking + 412ctttcttatgcatttgcaaa A/C caatgattctgtctgctgtg775GSTA41intron 1 + 280gcattggtggaaggtgggct C/T ggatcgtccccgggcctggc776GSTA42intron 3 + 176ggaaatcacttcttattcaa T/C agttccataaaagctggccg777GSTA43intron 4 + 94acaccacatttactttatgt C/C ttacatagttagtgagatca778GSTA44intron 5 + 1062cacacttgtgcacatgcaga C/T acccatgggcatccaagagt779GSTA45exon 6 + 487cagatgtgattttactccaa A/C ccattttagctctagaagag780GSTA46intron 6 + 595tgagctctgagagcaaatga C/A agatgttagcaccctaaaca781GSTA47intron 6 + 630taaacatcaccccaaaggat T/A cctaccattctccttctgag782GSTA48intron 6 + 3943tcttcgtagtatctaatacc T/C tttttgttagccttaaagtt783GSTA493′untranslated + 1099taataacaaccgaatgtcta G/A taaatgactctcctctgagc784GSTA410intron 5 + (370-371)gttgtcgaacagctgtctca (TA) gctgacatcctccctgataa785GSTA410intron 5 + (370-371)gttgtcgaacagctgtctca     gctgacatcctccctgataa786NDUFA115′flanking − 1437agggctaaaaatcctgatta T/A acctaccttgaagcttttaa787NDUFA12intron 2 + 3071aataaaagtacatggcatat C/A tttgatgggaacagacttgt788NDUFA133′flanking + 1218aactccatgtgtataaagca A/G caccacagatgacacttcca789NDUFA143′flanking + 1411ggattgtgccatcccttgat C/T/G ggcaatgaccttttactttt790NDUFA153′flanking + 1411ggattgtgccatcccttgat C/T/G ggcaatgaccttttactttt791NDUFA21intron 2 + 1087aacatacaaaaattagccgg A/G tatggtggcgggcacctgta792NDUFA22intron 2 + 1089catacaaaaattagccggat A/G tggtggcgggcacctgtaat793NDUFA23intron 2 + 1356ttccctgaaacaacccattg T/C ggccatccagaatcagccaa794NDUFA243′flanking + 467cacagcctcatgggtcagcc C/T actccagagggtgcattccc795NDUFA253′flanking + 744ggaagcaggggccctggcca C/T agccgctggcagtaagcagg796NDUFA263′flanking + (844-845)tatagtctacaaagaatgaa (ACAC) aaagatcataacaatagcta797NDUFA263′flanking + (844-845)tatagtctacaaagaatgaa     aaagatcataacaatagcta798NDUFA31intron 2 + 2656tccctgctgccctcccctgc G/A cactttatcttccctttgcc799NDUFA32exon 4 + 241agggccccagcctggagtgg C/G tgaagaaactgtgagcacct800NDUFA333′flanking + 1019tccttacctgcactggcacc A/G gctctggagccccagtccct801NDUFA51intron 3 + 2155agactctagcatggtacctg A/C aacataaggttccttagaaa802NDUFA52intron 3 + 2493ggcatattgctagttttctc G/T gtctcaatttcatcatctat803NDUFA53intron 3 + 2712acaaattttgaactgttcac C/T taacacaggctttttctgaa804NDUFA543′flanking + 1296aggtatctaaaaggtattgc A/C atttggtcattggttctttc805NDUFA55intron 3 + (30-31)aagtcagttttgttgtcttg (GATTTGTGGTATCCAG) tgtaa806catttaaccaaaaaaNDUFA55intron 3 + (30-31)aagtcagttttgttgtcttg807tgtaacatttaaccaaaaaaNDUFA56intron 3 + (427-428)attaagtagcagttaataaa AG/Δ tctagactgctgattcatac808NDUFA57intron 3 + (4733-4734)tataggaattttaaaatata TA/Δ ggatattgaaacattcagtt809NDUFA615′flanking − 1148tttataatttatatatgtta C/T gtgctttcttttgtatagct810NDUFA625′flanking − 363actaccaaggagcgcggcgg G/A cagccggatagcaggacgct811NDUFA63exon 1 + 26ggggagcggcgtccgccaag C/T tacttctaccgccagcacct812NDUFA64intron 1 + 1318attcagcagtttgaaaacat A/G atgtttgcctggcagaatac813NDUFA65intron 2 + 562agttaaagaatctgaaaagt G/C tcagaaatgatttaccctga814NDUFA665′flanking − (861-862)ctgtaaaatggggatgctga (T) ggtacctacctgacctatga815NDUFA665′flanking − (861-862)ctgtaaaatggggatgctga     ggtacctacctgacctatga816NDUFA715′flanking − 731accaaccaaaggtctatcaa A/G ggggtgtcctctttgcaccc817NDUFA725′flanking − 434aaagggaaccatcagaaccc C/T gtgatgaaatgagaatcggc818NDUFA735′flanking − 395gctcccggattccggctggc A/G ggggttagggcagggtagag819NDUFA745′flanking − 100agaggagtcacgtgcttcgg G/A gagagcctttataggacgtt820NDUFA75intron 1 + 92tcacctccctcctaagccgg G/A acccttcgctctccccgaat821NDUFA76intron 1 + 133ctccctgggaacccccagct A/C gtcaccccttcagcccggga822NDUFA77intron 1 + 136cctgggaacccccagctagt C/G accccttcagcccgggaccc823NDUFA78intron 2 + 89tcctttagacccctgaaacg G/C agggctgacatcctgccacc824NDUFA79exon 3 + 196gccgccgggaatctgtgccc C/G□ cttccatcatcatgtcgtcg825NDUFA710intron 3 + 4203gcctccacccctggggcgcc T/G cctccatcaccccaccctcc826NDUFA711intron 3 + 4604gggccttgtgtacgctggag A/G ccaaaagtgggaagggagga827NDUFA7125′flanking − (1360-1353)agggtccagggtcccctgct (CAGAGGCT) aacactggccg828aagagaaagNDUFA7125′flanking − (1360-1353)agggtccagggtcccctgct829aacactggccgaagagaaagNDUFA7135′flanking − (1240-1239)tgatagagccctgatccacc CA/Δ ctctctgaaacttctttgct830NDUFA714intron 2 + (4142-4143)cattttgtgactgaggtgac AG/Δ gggcccacagcggggccatg831NDUFA81intron 1 − 75tttgtgttctctattctgac C/T cgcatgaggtaaagctgaga832NDUFA82intron 2 + 790caaacctagacaaagtgtgc C/T ctttatccagaagtgagcag833NDUFA83intron 2 + 900ttcaggagataaaaagctct G/A attgctcaggcctgagatgg834NDUFA84intron 2 + 3837gaagttgtcttgtaagtgag A/G taagaatatgtactcacata835NDUFA85intron 2 + 3942tcattgttttgcaaagagat G/T cccctaacccagctttcttt836 NDUFA86intron 3 − 66gaggagacaccaggaggcgc A/G ttgatggttacagattcctc837NDUFA873′untranslated + 520tttatttctggaccaagtaa A/G gatgggtccgtggcccacac838NDUFA883′flanking + 367gtcatacaaggggagcctcc A/G ggatagaagtgcagaaactt839NDUFA893′flanking + 777attcttttttcactactagg C/T tgtttcctccacatctgact840NDUFA8103′flanking + 1053aaagaaaaagcactgtgtga T/A ctgccatggccgcttctgca841NDUFA8113′flanking + 1190gattctctaatgaaaaataa G/T acttttttttgcattttttt842NDUFA812intron 2 + (449-453)ggtcattgtgcatgatacttaa (GTAAA)843aaaaaactaagctgtgtaatNUUFA812intron 2 + (449-453)ggtcattgtgcatgatacttaa844aaaaaactaagctgtgtaatNDUFA813intron 2 + (707-708)ctcattttggaaagactctc (A) accttgctgtaccaaaaatg845NDUFA813intron 2 + (707-708)ctcattttggaaagactctc     accttgctgtaccaaaaatg846NDUFAB11intron 1 + 8451cagcaccctgtagaggcctc G/A ggatgctgaagatgccatga847NDUFAB12intron 1 + 8495gacacaggcattctgcagac C/A ctagacaattttagtggcag848NDUFA915′flanking − 807gatggctctttgtagaacaa T/G gcagattctcaaaggtgacc849NDUFA925′flanking − 769accacagttaaagaaaaaat T/C acaagccattgcgctagaga850NDUFA935′flanking − 353cacaccctattttggtttct C/G ttctccacttttcccctcgt851NDUFA945′flanking − 322ttcccctcgttcttgtcccc C/T cttttctctctcctgggccc852NDUFA95intron 1 + 447attcatatgagcacaatgga A/G atgataatattacaatacca853NDUFA96intron 1 + 1039ggcttgatgttcagcctgag G/A caagaattaggagtgtttag854NDUFA97intron 1 + 4010aatgtatccaaaagagattc T/G cattcctgccatatgaagaa855NDUFA98intron 3 + 49gacaaatataaattactaag C/A tcatttttaggagtgatagg856NDUFA99intron 3 + 107aatttcttcccagaatggac C/T aaaggcatcctctgttccca857NDUFA910intron 3 + 1183atctctggtaatattcatac A/C gattatttgtaatcccttta858NDUFA911intron 3 + 1395attcctagttctttgtccct C/T aagtttgttggtcaccttgt859NDUFA912intron 3 + 2363agaaaatagtcatgaatggc C/T ccaactaacactagtcttta860NDUFA913intron 3 + 2608gtcatttgattacctgagta A/C agtgtactgttacctgtttg861NDUFA914intron 4 + 561attttataaattctttgatg A/C cttgggggtcttattcaact862NDUFA915intron 4 + 860attgtgtagagtaatgacag C/T agagctgtcaacttttttaa863NDUFA916intron 4 + 879gcagagctgtcaactttttt A/T aaaaaataattttagcttaa864NDUFA917intron 4 + 893ttttttaaaaaaataatttt A/C gcttaaaaaaattaaaaatt865NDUFA918intron 4 + 1090atcattgctgtttaaaagtt T/C aagtagtgtgaatttcagta866NDUFA919intron 4 + 1188aaccaatccttttatttttt A/T tcttccagaaactttgattt867NDUFA920intron 5 + 161gggtgtgtgtgatgttttga C/T gttttgattgattgccttct868NDUFA921intron 5 + 373ctttctcaccccttgcactg C/T agtggttttgtgccactctt869NDUFA922intron 5 + 457gccagggaagatgcctattc A/C cacagtgcttatgctccttt870NUUFA923intron 5 + 3113gatttttctccttcttcaat G/A taagcttcccttaaaataaa871NDUFA924intron 5 + 3339tctaaactcaaaacaggttt C/A tttggttattgtttaggctg872NDUFA925intron 6 + 414tatagttttgccttttccag C/C atattacatatatggttaga873NDUFA926intron 6 + 518ctttcatttcttttcatagc T/C tgatagctcatttctttata874NDUFA927intron 7 + 974ggattatgcgtacttggaaa A/C tacttggatagcggtgatta875NDUFA928intron 8 + 368acattaattttgatggagta T/C cacaatgcctccagaggctg876NDUFA929intron 8 + 954gcatgcaatcagttatatag T/C ctagataagaattacaattc877NDUFA930intron 8 + 1253tcctcttgaaattgtagata C/T gtatctacacatttctcatc878NDUFA931intron 8 + 11608gaaaagatagatgtataaat C/A accaaaaattcgtgaagaaa879NDUFA932intron 8 + 11930ctacaaatatattctaaatg C/T gtaatcatggataagtacaa880NDUFA933intron 9 + 1998tgtttttcaagcctttaaac C/A gctgtggaaccctgtgctca881NDUFA934intron 9 + 2238ccagctacttgggaggctga A/C gtgggaggatcacttgagcc882NDUFA935intron 9 + 2885acagcggtctgtcttcctgc A/C gttctcataggctagcttac883NDUFA936intron 10 + 801tacactaaagtgtctcttac C/A tttatacttgagaaagtgtt884NDUFA937intron 10 + 910tgcagactttcaggtgggta C/C gatgagggattgctgctgct885NDUFA938intron 10 + 1180aaaactgagtcagaacgccc C/A tgctcagaaaacaggggcgt886NDUFA9393′flanking + 554gtgccagcacttaggaatta T/C gaccttctaatgaagttctt887NDUFA9405′flanking − (1129-1128)taaacagtaggggcaagata (TC) gagtggaaacagccaagatt888NDUFA9405′flanking − (1129-1128)taaacagtaggggcaagata     gagtggaaacagccaagatt889NDUFA9415′flanking − 341tggtttctcttctccacttt T/Δ cccctcgttcttgtcccccc890NDUF5115′flanking − 3tcctagggggtcgtcgtggt C/C cagacagtttagcagaacag891NDUFS12intron 1 + 445gtgttagcaatggctcacgc T/C tctgtttgttgtccttgttt892NDUFS13intron 1 + 470tttgttgtccttgtttgttt C/T gtccattgaccacgttggac893NDUFS14intron 1 + 502acgttggacagcattttttt A/C ttcctttaactaacgggaaa894NDUFS15intron 1 + 557ttttgaaaagttagcccagg A/C ttgcattgcaaataacaaaa895NDUFS16intron 1 + 5218tatctcagaatatctcagga A/C catttagtagacagctatgc896NDUFS17intron 3 + 1371aagccctaaaatagatagtg T/C caatgggaatgaaaacaaga897NDUFS18intron 5 + 414ttttgaaacgaggtctcact A/C tgttgtccaggctgggcttg898NDUFS19intron 10 + 812gagtgcggtggcgcgatctc C/A atctcgggtcactgcagcct899NDUFS110intron 11 + 233ggaggccaaggcaggcagat C/T gcctaagtgcaggagtttga900NDUFS111intron 11 + 283ggccaacatggcgaaacccc C/A tctctactaaaaatacaaaa901NDUFS112intron 11 + 585ctgtatgtcttaartttaaa C/T taaatttgcattttatatat902NDUFS113exon 12 + 1251gcaccactgtttaatgctag A/C attcgaaagaggttggtaat903NDUFS114intron 13 + 5159attacttttagaaaacgtgt T/C ttagctgatactcaggcata904NDUFS115intron 14 + 250aaaaattgttatattagtta C/T accttggttcaaaaattgca905NDUFS116intron 14 + 55Ogataaagtctcactatgttg C/T ccaggttgatctcaaactcc906NDUFS117intron 14 + 2429ctgaaaatacaaaaattagc C/T gggtgtggtggcatgtgcct907NDUFS118intron 14 + 2530ttacagtgagccgagatcac C/T ccactgcgctccagcctggg908NDUFS119intron 14 + 2659acacatttaattttttacat T/C gaaaatactgcagttatggt909NDUFS120intron 16 + 150agaaaacatgtattcagaaa C/T aggaattcaaggttacagtg910NDUFS121intron 18 + 279cactgtgtagcaatttatgg T/C gaattttccaaagtggcaaa911NDUFS1223′flanking + 182tctaggataattataattaa T/A aataatcatagtaacaatgg912NDUFS123intron 11 + 3226aaatgtattgtctgtgcttt T/Δ aacattttgtaatagtaaat913NDUFS315′flanking − 194tctgccacaaggagctagga C/T cacgctcacctcacgatttc914NDUFS32intron 1 + 46cggggtcaggcgcagcggcg T/C gcccagtgcagagagctcct915NDUFS33intron 6 − 439aaagctgtgtcaaatgtact C/A ctttagatctggactgtgaa916NDUFS34intron 6 − 280ggtgggtgagcagtcagttc G/A gagctcctgatgtgggagtg917NDUFS415′flanking − 439aactgaatacagccctgtcc T/A gagggcttgcaaagtgaatc918NDUFS42intron 1 + 1829gaaaaaaaatcttaatgcca G/T ggaagacgttttttaaatac919NDUFS43intron 1 + 2057attaatgggaaaatctacat C/G taaaattcattttattgtaa920NDUFS44intron 1 − 521ttcattttaactaattttat T/G tctcccattttgtgaatggg921NDUFS45intron 3 − 1259ataaaattatgatattatta G/A tactaatatagccagccata922NDUFS46intron 3 − 1174aatatatataattataggaa T/C Ctcagagtagcaaccatggt923NDUFS47intron 4 + 10682cacaatataggcacaaactt A/C ctaccaaagcactaacaagt924NDUFS48intron 4 + 12299tttactatatagatatatgg A/T atagactatagagtatctct925NDUFS49intron 4 + 12560accaaataaggtattatgca G/A gctcatctttttatataaga926NDUFS410intron 4 + 18801ggaaagacttgctttgccag T/C gtatccgaaacctctgttat927NDUFS411intron 4 + 19888tcgcacagctgagaagagca A/G ggggctggttttcagraccc928NDUFS412intron 4 + 20178agaaaagatgagtataattc G/A tctaacttacccattcttaa929NDUFS413intron 4 + 23016ctactctgtgaaagtaaggt T/A atgttgaacaagtaaattaa930NDUFS414intron 4 + 23124actttctttggagatggagt T/A ccagcagttgggaatgtaat931NDUFS415intron 1 + 766tgtgatgatttttttttttt T/Δ ggctgtattaaccttccatt932NDUFS416intron 1 + 1261tttctttctctttttttttt T/Δ gagatacattctcactctga933NDUFS51intron 1 + 388ccaaacatagccagcacttc C/T ggctgtaactccgggctgtt934NDUFS52intron 1 − 13082agtgagccgagattgcacca G/A tgcattccagcctgggcaac935NDUFS53intron 1 − 12905gttttcaacaaaggactcca G/T agtagtagagaagtttctgt936NDUFS54intron 1 − 12564attttcatcacacctcaact T/G aaggtataacagccttaaga937NDUFS55intron 1 − 12561ttcatcacacctcaacttaa G/A gtataacagccttaagaatg938NDUFS56intron 1 − 10561aacaatgtggtatagtgggg C/G gggtggtgagcaggtgtcat939NDUFS57intron 1 − 9065cctgatgctcctggctccag G/A gtagaccttttccctttaga940NDUFS58intron 1 − 8871tcaccacgtgtctgtagara T/C aggaccgcagaccttcgctt941NDUFS59intron 1 − 7312aaatccttggcttctagaat G/T ggtcactgatggtatataat942NDUFS510intron 1 − 6827aacctctgcctccccgattc A/G cgccattctcctgcctcagc943NDUFS511intron 1 − 6725agtagagacggggtttcacc G/A tgttagccagcatggtctcg944NDUFS512intron 1 − 6631aggcgtgagccactgcgccc G/A gcctagaccttcttcttata945NDUFS513intron 1 − 6531cccaacagctcccaatgtaa A/G acagatctattaatattctg946NDUFS514intron 1 − 6346gcaacagatcttgacctata T/C cccatagggtacagcrgagg947NDUFS515intron 1 − 6327atcccatagggtacagctga G/C gactttaatcagaaaaggag948NDUFS516intron 1 − 6122tagccttgcttttactctac T/C gttcctcccaaatcacaccc949NDUFS517intron 1 − 2512acaaactcttaatgcgaatt T/C tgcagatcaaagtgggctta950NDUFS518intron 1 − 1945tttaatctcctttaaatttc G/A caatttcacaacctagggta951NDUFS519intron 2 + 75tttttttttttttttgagac G/A aagtctcactcttgtcccct952NDUFS520intron 2 + 148ctgtagcctctgcctcccag G/A ttcaggcgattcgcgtacct953NDUFS5213′flanking + 150cagattcaagtggttcrcct G/C cctcagcctcccaagtagct954NDUFS522intron 1 − (10682-10681)attataaacactaaacaaac AT/Δ gtgtggtctctttagagggg955NDUFS523intron 1 − 10272aggaacaagtgactaccctg A/Δ aaaaagaagagatgaaacaa956NDUFS524intron 1 − 2069accagacagagttcccttta C/Δ ttgttttcctgtggcaaaga957NDUFS61intron 1 + 26ggccgctgggtacaggatgc A/C ccttcctccagccgcacctc958NDUFS62intron 2 + 1076ggatcatggtggtggagagg G/A gcttgtgtctggtgggtttg959NDUFS63intron 2 + 1260cagttgtcgagtaagtggtg T/C atagggtaagtgctctttct980NDUFS64intron 2 + 1413caaaggagctcatggcattg C/T gaatgggacatttcttccgt961NDUFS65intron 2 + 1568tggagaaggggaggtttctc T/C tagtgtggatgcggtatggt962NDUFS66intron 2 + 1692gaccgtggtgacggaggttt C/T ctgggcatcgatgggtggtt963NDUFS67intron 2 + 6488tagcttaaataattattggc A/G ttcatgttcagaatgcctga964NDUFS68intron 2 + 6563tttaaacttttattttaaat G/A tccatgaatggggtcggtat965NDUFS69intron 2 + 6740aaagatttaaacctacatar C/T tttatgcccaatcatttgat966NDUFS610intron 2 + 6832gcgagggactcattttacag A/T ggttggacacttcactgtgt967NDUFS611intron 2 + 7054ttcactgccggagcttggcc G/A tgtgaacccggagccgggct968NDUFS612intron 2 + 7186ggtcagggtcacccttgagc T/C gcgcacactaaatgacggga969NDUFS613intron 2 + 7225qagggcatcccgcgtcagtc G/A ccagtgtcgaggcgtcagca970NDUFS614intron 2 + 7810cttccactctggggcgggga C/T gctgtagaaggagcacaaag971NDUFS615intron 2 + 11080gtaactgttcagtgctttct C/T ctttggatttcatgtaaatc972NDUFS616intron 2 + 11657gggacagaacgatgtggtgg G/A gagaagagggcgtggcagag973NDUFS617intron 3 + 208cgaaaaccccctttcaactg T/C gaagtggtgggcggcatgtt974NDUFS618intron 3 + 1031ctagagtgggactgggcacc C/T ggcatgtcccctcctgggct975NDUFS6193′flanking + 270gcttcagagagccaaggtgg G/C tcttgaggtgcatagtgaag976NDUFS815′untranslated − 45agtgtagcctccgcctcccg A/C ttgactggcctgcttggcaa977NDUFS82intron 1 + 163aggtgcagcggggagccggc T/C ctcagggcgcatgcgccgcc978NDUFS83intron 3 + 123tctctgagcctgtttccact T/C ttaaaatgattatggtgatg979NDUFS84intron 6 − 505aggcaaggcaggccgggcac G/A gtggctcacgcttgtaatcc980NDUFS853′flanking + 491ggccctgagctggcctgcgt C/A cagccacatcctctttcctg981NDUFS863′flanking + 693ttcacttcatttgcagtgag G/A aaaccagctccgagaggtga982NDUFS873′flanking + 1267ttttcccagacgtaaccgcc G/A tcagagcgtggcatggagcc983NDUFS883′flanking + 1362cgctgggttctttcccttac C/T gtggtctcccaggcacttac984NDUFS893′flanking + 1449tgtcagaacaggcctatggc G/A cccaaccacaagtcccccaa985NDUFS8103′flanking + 1572cagccccacaggcctgtgct C/A gctgtgtggggcttagggat986NDUFS8113′flanking + (783-784)cagagaccttgacccccccc (C) atctaccatcatttccaaaa987NDUFS81133′flanking + (783-784)cagagaccttgacccccccc     atctaccatcatttccaaaa988NDUFB315′flanking − 1439ttaaaagttgacttttttct G/A ccgggcacggtggctcacgc989NDUFB325′flanking − 1436aaagttgacttttttctgcc G/A ggcacggtggctcacgcctg990NDUFB515 flanking − 213ggcggatgaaactctcctac A/C aagaagggccaaaccggccg991NDUFB52intron 1 + 6288ggggatgttgattacctagg T/C cagtaaagtaaagaaggcat992NDUFB53intron 1 − 1581cttctgggccactgtatcct A/G tttctttcccttgttaccct993NDUFB54intron 1 − 1487ccctcttagaccgtatatag T/G tctagcataggatctgcaca994NDUFB55intron 2 + 556ttgtctggaccatctgccac G/A gtagataaagctctgaatca995NDUFB56intron 3 + 467ggcgccatcgcactccagcc C/T gggcaacagagtgagactct996NDUFB57intron 3 + 497agtgagactctgtccccccc C/G caaaaaaaaactataatcct997NDUFH58exon 5 + 397atgatagtcctgaaaagata T/c atgaaagaacaatggccgtc998NDUFH59intrion 1 + (231-215)attagcatttctaaaacgtt GTT/Δ attcaccatcccaattaatg999NDUFB71intron 1 + 68cctgaacacctggcacccca G/A ggctggcaccccagggctgg1000NDUFB72intron 2 + 266gggctctctaggggcctgtt T/C gatggggacagggcaggtgg1001ABCA115′flanking − 278gggcccgggcgggggaaggg G/C acgcagaccgcggaccctaa1002ABCA125 flanking − 99acataaacagaggccgggaa G/C ggggcggggaggagggagag1003ABCA13intron 1 + 159gcggtgttaaatggggagac G/T atgtcctagtacgagctctg1004ABCA14intron 1 + 506gaattggctatatgctcccc G/c ggactggagcggcacagtcc1005ABCA15intron 1 + 5897gtacaaaaccctttagcttt T/G gcaaacctcctttaagaccc1006ABCA16intron 1 + 5929ttaagacccgatttaaatgc C/T tccctcctcatgaagctctt1007ABCA17intron 1 + 5962aagctcttctggatccactc T/C ttcccatcactaagttgaaa1008ABCA18intron 1 + 5985cccatcactaagttgaaagt A/C agatccccttctctttactt1009ABCA19intron 1 + 11416ttacagtgccctttatagga G/A agaaagaagaaattgtgtct1010ABCA110intron 1 + 11935tctctgtggagcaaatagag G/A gctgtctgacacttggttcc1011ABCA111intron 1 + 12281gaatgtttgatttgtgaaaa T/A cttaataacagtagtttttt1012ABCA112intron 1 + 12924gtgctgacaatcttatactc T/C aggttgaacctccggggaag1013ABCA113intron 1 + 13002gagcctcaatcacagattct C/G tctagctcacatgaagttaa1014ABCA114intron 1 + 17715ggagcatgactttgtggaag C/T ctctcctcttccacccagag1015ABCA115intron 1 + 17848gagggctgactgtcaccctt T/C gataggagcccagcactaaa1016ABCA116intron 1 + 21384gtgggtgggaggaattggag G/C aggaagcttgcctaagtgtg1017ABCA117intron 1 + 22145gtagcttctaaatcaacgaa C/G tgattcctggagagcagctt1018ABCA118intron 1 + 23063ggaggcacctgtgacaccca G/A cggagtaggggggcggtgtg1019ABCA119intron 1 + 23131agtgtgcatatgtgctgacc G/A tgggagcttgtttgtcggtt1020ABCA120intron 2 + 156ggacacaggactgtgtggtc T/C ggatatggcatgtggcttat1021ABCA121intron 2 + 384gctgtgggtgaagtgagtta A/G tggccccactcttagagatc1022ABCA122intron 2 + 1081agtgcagccaaaattgcaaa G/A tcataccattcaaattaata1023ABCA123intron 2 + 2801aagaaaagtgatttatttca A/G gttgctgatgcttagattgt1024ABCA124intron 2 + 2830tgcttagattgttagagttg C/G aaagatctggcttgcatctt1025ABCA125intron 2 + 2856tctggcttgcatcttgtaca A/G ctgacagaactggggctcag1026ABCA126intron 2 + 3187tgatagctgttgcctgcagc A/G tacggacgttcattgcgcag1027ABCA127intron 2 + 3190tagctgttgcctgcagcata C/T ggacgttcattgcgcagttc1028ABCA128intron 2 + 3194tgttgcctgcagcatacgga C/T gttcattgcgcagttcctgt1029ABCA129intron 2 + 3204agcatacggacgttcattgc G/A cagttcctgtctcctgagat1030ABCA130intron 2 + 3401acataaagcctgtgtgctgc T/C gccaggaagactagaaacgc1031ABCA131intron 2 + 13927gtcaccacatacctggcact A/G tgctaaggctgggaatgcag1032ABCA132intron 3 + 4163ccagcccacttcatcttacc G/A tagttacctccttagagtat1033ABCA133intron 3 + 4262tgtcaaagaggaactaagga T/C gccagggactttctgcttag1034ABCA134intron 3 + 4306ccctctcatcacttctccaa C/T gctggtatcatgaaccccat1035ABCA135intron 5 + 240gacagaagaaaagtccccag G/A gaagaatactacagacttgg1036ABCA136intron 5 + 490gatggycatttgaacttgtt G/A tctttaaaaagtgaaatctt1037ABCA137intron 5 + 583tatctggggagtgggcattt T/G ctgactgaggcattggctgc1038ABCA138intron 5 + 1051ggctacaaaactgtgctttc C/T ttgggcagtaaaagaggcaa1039ABCA139intron 5 + 3051tagagaacaagtctaattct G/A ttttccttgaaatagtcgaa1040ABCA140intron 5 + 3127aagtccatgattttttaggc A/G aaatggcctcctttcctctt1041ABCA141intron 5 + 5924ctttctttcacaaaattgcc C/T cccagagctttctggaaggg1042ABCA142intron 5 + 6831ccagtccctcagccttgcca T/C tgcttatgctggtctggaaa1043ABCA143intron 5 + 12678gctcaccgctctgctcaccc G/C accctctggccatctcctct1044ABCA144intron 5 + 14214cagcttggtcccagaggcct G/A gacctgggtcccagaggtcc1045ABCA145intron 5 + 14257gctggttccccggcttggtc C/T cagaggcctggatgtgtggc1046ABCA146intron 5 + 18078cctaccacaccatgcacgtg C/T acagccaagggttgttgact1047ABCA147intron 5 + 18795ctgggctcttcctggacctg G/A ccagctaaaaggaaatctcc1048ABCA148intron 5 + 18948gcattggtggtactaagaac G/A catattccctatcctatagg1049ABCA149intron 5 + 19053ctcccccaacattaaaagtg T/C aagggatgcttattcaaatg1050ABCA150intron 5 + 19148ggcccaagaaactgcatttt C/A gcatgctccctaaatgaagc1051ABCA151intron 5 + 19229atgctaacagtgtagagtca C/T atgtgatgggaagcatcagg1052ABCA152intron 5 + 19405cttgctcaatttattctgtc T/C atataactcaatattactga1053ABCA153intron 5 + 19534catgtgaccctcttagctcc G/A cggattaactcctgtcctca1054ABCA154exon 6 + 474gaaaccttctctgggttcct G/A tatcacaacctctctctccc1055ABCA155intron 6 + 210gcaacctggcgtcatgggcc A/C gctggttaaaataaaattga1056ABCA156intron 6 + 334acagttctgaggcaataacc G/A tggttaagggttattgatct1057ABCA157intron 6 + 2288cttctttcaaagcttgtggt C/T cactggaccacgtatgaagt1058ABCA158intron 6 + 2322atgaagtagaatagtttagg T/C ccagaaaggcaattaagtaa1059ABCA159intron 6 + 2820gtgctttgatacattctgag T/G ttcagtaaagagacctgatg1060ABCA160exon 7 + 656tgagctttgtggcctaccaa G/A ggagaaactggctgcagcag1061ABCA161intron 7 + 416catcataaagatgacattgt G/A ggctgtcacagttggaaggc1062ABCA162intron 7 + 471agaccacactatttagctta C/T ttagtaataacattgcaaag1063ABCA163intron 7 + 504ttgcaaagaaaaattccgac G/A aagttttttcagcctaggaa1064ABCA164intron 7 + 679gctctggtgaaattcctctc G/C ctaccccaaacatcatcatt1065ABCA165intron 7 + 1740acaaatgctcaccctttcag C/T tggaatgattgaaattttgg1066ABCA166intron 7 + 2122tgattaaggtggctactacc A/G ggtgctttctgcatatctcg1067ABCA167intron 7 + 7753taggaattccaagctgtgaa T/C tttttactgaagctctttgg1068ABCA168intron 78973atggaaatttgtttatattg A/T ctacagattgccaatattat1069ABCA169intron 7 + 8976gaaatttgtttatattgact A/G cagattgccaatattattag1070ABCA170intron 7 + 11327ctaacaatcttatttccatt G/C agtccttataaaagaagtgg1071ABCA171intron 7 + 11738ctgacgtttaagggagaccg C/T gtaggtccctttgaggactg1072ABCA172intron 7 + 12295agtctgtaaattattgttct T/A ttttttctttagcttatgct1073ABCA173intron 8 + 387tagcaaggccaatcatttta C/G caacacacatgcttgctaac1074ABCA174intron 8 + 697ggaactgtctggtgtccccc A/T gcataggaagctgagccagg1075ABCA175intron 8 + 1312attgctctgcagatcccctc G/A cagccctctgtcccttgttc1076ABCA176intron 8 + 3036ctttatgtgggaagaaattt T/G tttttttgattggggagtgg1077ABCA177intron 8 + 3176aaatggcctggttctctgtc C/A cctttctgtctgtatgcctc1078ABCA178intron 8 + 3364ggcagaaggcaaagcttagg A/T cctagagagtgctggaccac1079ABCA179intron 8 + 3373caaagcttaggacctagaga G/A tgctggaccacgccactcac1080ABCA180intron 8 + 3561cagggatttattaatgattt C/A ttgtgaaatgtttggaaata1081ABCA181intron 8 + 3654agtgccggaatacatttgca T/C gtaagacagaacgctgcctg1082ABCA182intron 8 + 4715ggcagaggggtctcagaatc C/T gcatttccaacaatgtctcc1083ABCA183exon 9 + 936cgtattgtctgcgggcatcc C/T gagggaggggggctgaagat1084ABCA184intron 9 + 2309cccctcaagagtcagtttaa A/G tgttggtcatgttagttgtc1085ABCA185intron 9 + 2392atgggagggcttgtgcttca T/C gaaaacatttttccagatca1086ABCA186intron 10 + 228tggggatggggaggactggc A/G cagggctgctgtgatggggt1087ABCA187intron 10 + 319ttctgcggtccctggctccc C/T acctgactccaggtgaacaa1088ABCA188intron 11 + 377gaaagaagtgtgggagcaaa A/C gcatgatgttacatgtagac1089ABCA189intron 11 + 521agtgctctagagacaattgg G/A ttcaaatgtggagcaggctg1090ABCA190intron 11 + 2850ctctatacaatcattatgct G/C ccattgaaataataaataca1091ABCA191intron 11 + 2976ctccaattcggtagaaccag A/G gcttcatcttctctgtcgaa1092ABCA192intron 11 + 3056gtttgcagctgctgtttttc C/T ggcageacatctgtgcaggc1093ABCA193intron 12 + 340ggcattatttgtgaaactta T/C ctaaaatcgaattcgggtcc1094ABCA194intron 12 + 381aattaaatttttgaaatttt A/G tattaaaaattatattagta1095ABCA195intron 14 + 1728caggctcagaggccttggcc C/T atcaccctggctcacgtgtg1096ABCA196exon 15 + 2040atgggcctggacaacagcat C/A ctctggtttagctggttcat1097ABCA197intron 15 + 1382cttttagacagaaaagttac G/A tgggatattatctcccacag1098ABCA198intron 15 + 1453tatataaggagaaaccagtt G/A aaattacctattgaagaaac1099ABCA199intron 15 + 1567ttctgcgtagttttgggtaa G/A tcacttatcttctttaggat1100ABCA1100intron 15 + 1617cagttgcctcatcagaaaga T/A gaacagcattacgcctctgc1101ABCA1101intron 16 + 95agttgagaacagaagatgat T/A gtcttttccaatgggacatg1102ABCA1102intron 16 + 452tggtgttttgcttgagtaat G/A ttttctgaactaagcacaac1103ABCA1103intron 16 + 657ctgttgcctcagtctgggct T/C cataggcatcagcagcccca1104ABCA1104exon 17 + 2473gcttcaatctcaccacttcg G/A tctccatgatgctgtttgac1105ABCA1105exon 18 + 2649ggttccaaccagaagagaat A/G tcagaaagtaagtgctgttg1106ABCA1106intron 18 + 1730tgaaagttcaagcgcagtgc C/G ctgtgtccttacactccact1107ABCA1107intron 19 + 426aggaccttacagtgggtagt A/G tcaggaggggtcaggggctg1108ABCA1108intron 19 + 468aaagcaccagcgttagcctc A/G gtggcttccagcacgattcc1109ABCA1109intron 20 + 876ccctcctcatctaaagtgaa C/T acatggggctcatgtgcagg1110ABCA1110intron 22 + 118catgggatactcttctgtta T/G cacagaagagataaagggca1111ABCA1111intron 22 + 560aaagctttgccattctaggg G/A tcatagccatacagggtgaa1112ABCA1112intron 23 + 102accccttttgccatgttgaa A/G ccaccatctccctgctctgt1113ABCA1113intron 23 + 287gtcaaagaaaagagacttgt C/T aagaggtaagagccttggct1114ABCA1114intron 23 + 1063acctttcaccctcaggaagc G/A aggctgttcacacggcacac1115ABCA1115intron 25 + 321ctctttacttaagtacagtg T/G gaggaacagcggcatcagga1116ABCA1116intron 25 + 376gttagaaattcagcaacttg G/C gcccagctcagacctactga1117ABCA1117intron 25 + 478catacataggaaatgacaaa C/T gtttatggatggatagtcta1118ABCA1118intron 25 + 579tcatttaattctcaaaaaaa G/T atgaaaaaatgaacactcag1119ABCA1119intron 27 + 153aatggtaaaagccacttgtt C/T tttgcagcatcgtgcatgtg1120ABCA1120intron 28 + 1058actatcatgggagataatga C/T tatggttgtccatgattgga1121ABCA1121intron 28 + 1317caggacccagtgttctcagt C/T accctgaatgtgagcactat1122ABCA1122intron 30 + 372tatatgatttttaggttttg T/C ttatcagcttcttcgctttt1123ABCA1123intron 30 + 506ccttttaaaaagtaagcagt A/G gataaataaattcagtgaag1124ABCA1124intron 30 + 1033ctggatttcatggtgccttt G/C attttccacatgaaggttgt1125ABCA1125exon 31 + 4281tcttccctttgcagagacac G/A ccctgccaggcaggggagga1126ABCA1126intron 33 + 6269gctccttgttactgatttc C/T gtcttttctctctgcctttt1127ABCA1127intron 33 + 719taatagccctcatgctagaa G/A ggagccggagcctgtgtata1128ABCA1128intron 33 + 726cctcatgctagaagggagcc G/A gagcctgtgtataaggccag1129ABCA1129intron 33 + 889ctttcctcaatgtctcagct A/G tctaactgtgtgtgtaatca1130ABCA1130intron 33 + 1097ctgtgcaccccactgtctgg G/C ttttaatgtcaggctgttct1131ABCA1131exon 35 + 4760tatgacaggactggacacca G/A aaataatgtcaaggtaaacc1132ABCA1132intron 35 + 234aacctatctaaacctcagtt T/C cctcatctgtgaaatggaga1133ABCA1133intron 37 + 411aactctgtacattttatcag C/T agcttatccatccattgcaa1134ABCA1134intron 37 + 1224caggcataggtgattcagag A/G tgaaaggtcaagtccctgaa1135ABCA1135intron 37 + 1720aaattaaaattactctgact G/T ggaatccatcgttcagtaag1136ABCA1136intron 40 + 251tgaaggtaaggaaaatagtg T/G tatttgcttggatccactgg1137ABCA1137intron 40 + 252gaaggtaaggaaaatagtgt T/C atttgcttggatccactggc1138ABCA1138intron 40 + 319agcactggaaaagtcaaacc A/G taactttgagaattaggtga1139ABCA1139intron 40 + 957cttgttactcttttttcctt G/C tcatgggtgatagccatttg1140ABCA1140intron 41 + 146tgatgtgggcatcccgcagc C/T ccctccctgcccatcctgga1141ABCA1141intron 42 + 239cattggttttatatgcttac A/C tttatgtgttagttattaaa1142ABCA1142intron 42 + 321aataaatggttgattttgag T/A ttgagtttcatagtccaaaa1143ABCA1143intron 42 + 322ataaatggttgattttgagt T/C tgagtttcatagtccaaaaa1144ABCA1144intron 42 + 533agatgaaaaattatgtagat G/A ataatgaatgatacggttct1145ABCA1145intron 42 + 546tgtagatgataatgaatgat A/G cggttctaaaaagacaggtt1146ABCA1146intron 43 + 739tacagccacacttaaaatgg T/A cccattatgaaatacatatt1147ABCA1147intron 44 + 18taggtgagaaaagaagtggc T/C tgtattttgctgcaaagact1148ABCA1148intron 44 + 264acaatataatttgcttgttt T/C ttaagagtataatttagtga1149ABCA1149intron 44 + 279tgttttttaagagtataatt T/C agtgatttttggtaaattga1150ABCA1150intron 44 + 508tttacattgctacataaaat C/T cccctatgtacatgtaccta1151ABCA1151intron 44 + 1477aatctcctctcctgtctctt A/T catttttgcagtagcaatgt1152ABCA1152intron 44 + 1665tggttgtaagaactgatttg G/A ttggtatagctgtgagggcc1153ABCA1153intron 44 + 1956gtgttgctcacactcaaaat T/G tctgggccttctcatttggt1154ABCA1154intron 45 + 68aatatataccttatggcttt T/C ccacacgcattgacttcagg1155ABCA1155intron 46 + 608ttatactgacttcaatagag G/C tttcagacaaaaagttgttt1156ABCA1156intron 47 + 336ttcacaattgtaaacaccac T/C acactgaacagcatcatccc1157ABCA1157intron 49 + 55agggtgtggattcctgcccc G/C acactcccgcccataggtcc1158ABCA11583′UTR (exon 50) + 7949aacaaaaatgtgggtgtctc C/T aggcacgggaaacttggttc1159ABCA11593′UTR (exon 50) + 8226aggagcccactgtaacaata C/T tgggcagccttttttttttt1160ABCA11603′UTR (exon 50)+ 8682aacttcttccactttttcca 0/A aatttgaatattaacgctaa1181ABCA11613′UTR (exon 50) + 8697ttccagaatttgaatattaa C/T gctaaaggtgtaagacttca1162ABCA11623′UTR (exon 50)+ 9097aactattttgaagaaaacac A/G acattttaatacagattgaa1163ABCA11635′flanking − (1033-1032)tgacttaaatatttagacat (AT) ggtgtgtaggcctgcattcc1164ABCA11635′flanking − (1033-1032)tgacttaaatatttagacat     ggtgtgtaggcctgcattcc1165ABCA1164intron 5 + 6368ttctgatggggttgttgctg C/Δ tgagaatcatgactgggtgg1166ABCA1165intron 5 + 9709cattttctgtctgaaccccc T/Δ cacccattcaggcagctgct1167ABCA1166intron 5 + 13816tccctacttctccttttttt T/Δ catttgcctcctccacccac1168ABCA1167intron 10 + (270-271)cttttcagggaggagccaaa (G) cgctcattgtctgtgcttct1169ABCA1167intron 10 + (270-271)cttttcagggaggagccaaa     cgctcattgtctgtgcttct1170ABCA1168intron 20 + (611-612)tttagcccatcctctccccc (C) gccaccctccttattgaggc1171ABCA1168intron 20 + (611-612)tttagcccatcctctccccc     gccaccctccttattgaggc1172ABCA1169intron 32 + (391-392)gagtgccttgggtactctct (T) gatgggggactccatgataa1173ABCA1169intron 32 + (391-392)qagtgccttgggtactctct     gatgggggactccatgataa1174ABCA1170intron 37 + 847gctgtatattgtgaatgtcc C/Δ gttttcaaaagcaaagccaa1175COMT15′flanking − 1287cgtatgatattccccattct G/A agtccagaatacctagaaat1176COMT25′flanking − 1217tgtgagtatgggaaggggaa G/A cttttctgtctgttgtcccc1177COMT35′flanking − 503caggggctccaggaggacga G/A tgtgtatcctcccattgctc1178COMT45′flanking − 425gagaagttgggaagtctggc C/T agtggggccggtgcctggtg1179COMT55′flanking − 277cccagccccagtttccccac C/T tgggaagggggctacttgtg1180COMT6intron 1 + 12058ctggcccatggaagggaggg G/A agggggccccgacggggcca1181COMT7intron 1 + 12070agggaggggagggggccccg A/G cggggccacagtaaaggagt1182COMT8intron 1 + 18831tgtgtatgttcttggtaaac C/T agcccttggtcttacacatc1183COMT9intron 2 + 832cctctcctttggccacccgt G/C actacccccaactccgggcc1184COMT10intron 3 + 90ggagaagctgttatcacccc A/G tttccagggggctgggaacc1185COMT11intron 3 + 425ccccaaggtgggcggttcgg T/G gattcagagagggcagctct1186COMT12intron 3 + 671ggctcctgctctttgggaga G/A gtggggggccgtgcctgggg1187COMT13intron 3 + 676ctgctctttgggagaggtgg G/T gggccgtgcctggggatcca1188COMT14intron 5 + 75tcagcctcagcctctccaaa G/C agccaggcattccagtagag1189COMT15intron 5 + 310accagacaccagggcagaaa C/T ggcacaggaccaaggagatg1190COMT16intron 5 + 346agatggggtggggaagggcc G/A ctctgggcccagcctgctct1191COMT17intron 5 + 3023aaggcagccgccctgctcaa G/A gcctaggccattgtcctcct1192HNMT15′flanking − 211cagaggcagatgacagtctt C/T cgttaaagatttcactgctg1193HNMT2intron 1 + 5409aatataactgatataattgg A/G acatttcatgttggcctagt1194HNMT3intron 2 + 2561cacttgtgcttggacaagaa A/G agaaggcctacaagaaaaag1195HNMT4intron 2 + 2895caatcagaaatgtaagaaaa A/C ctccaagaaaaatttaagtt1196HNMT5intron 2 + 3977accaaacttggaagtgtaaa C/A ttatgcatgtatgttcatgt1197HNMT6intron 2 + 5296ttaacatagtgagtttggag T/C cccaggattttattttcctt1198HNMT7intron 2 + 13317caaccctcatgaattcttag C/T tgggatgggtccctataaca1199HNMT8intron 2 + 14682gtagatgagcaaatgagttc A/Δ ggagagatttaaatacccta1200HNMT9intron 2 + 15406gtctatgcattcatgcatcc C/A tctaaccagctgtctaccta1201HNMT10intron 2 + 28943atgtgacttaaacttcaggt A/C tatcaatatcccttgaatgt1202HNMT11intron 4 + 49cagaaagaagacttttcaga A/G tatatatataatgaatatct1203HNMT12intron 4 + (1942-1943)tttgagaaaaatttaaggta (A) tcttctatggcccacttcca1204HNMT12intron 4 + (1942-1943)tttgagaaaaatttaaggta     tcttctatggcccacttcca1205HNMT13intron 4 + 2405ccctgtgaccaagcagataa C/A ctcatgctttatttagtcca1206HNMT14intron 5 + (80-81)cctgtgtttgaaagaagctt (TT) atatattttgtcttcattat1207HNMT14intron 5 + (80-81)cctgtgtttgaaagaagctt     atatattttgtcttcattat1208HNMT15intron 5 + 235ctttcttttgggaaaatatg T/C ctttgtcttctatatatgaa1209HNMT16intron 5 + (702-703)tacttacaggttgattttag (AT) acacagcagactctgtcttc1210HNMT16intron 5 + (702-703)tacttacaggttgattttag     acacagcagactctgtcttc1211HNMT17intron 5 + 749ttacaccagaccccatactt T/C aacaccatatgtcacaaaat1212HNMT18intron 5 + 1101gtaggcagcctattcttgat T/C atattcatcaatcatacaga1213HNMT19intron 5 + 1137acagaaaaagtattgtagac G/A gaaataacaattcattgaga1214HNMT20intron 5 + 1348aagggagcatgaatagtcca C/C aagtaactgagaactgatta1215HNMT21intron 5 + 1673caaaagaaagggagtaaaga C/G tcaacaatcagttagctttt1216HNMT22intron 5 + 2022attttatttggggctttcta C/T gtctctctctcctaagccta1217HNMT23intron 5 + 2285tgtcatacttaactcttaaa G/C atccagagtaaatgatggag1218HNMT24intron 5 + 4159taccagttgacccagcaacc C/T tcttatagagtagtttaaat1219HNMT25intron 5 + 4501aatgatccacaaaattacta C/C tcattgttttctttcaatga1220HNMT26intron 5 + 5251cacacacacacacacacaca C/C caaatggaagcagccagaca1221HNMT27intron 5 + 5802gaaaaagaaaatctggctta C/T atcatgttgaaaacaaaagt1222HNMT28intron 5 + 6189tccaattccaccttctccta C/c agcatatcctgcagttacct1223HNMT29intron 5 + 6297gtcttggttcatctcttgag T/A taaattagatctgggaactt1224HNMT303′flanking + 458tatgtcactctcaagaactc C/T tataagaccaagaqtcatct1225HNMT313′flanking + 993ctgaaaatgaacactgaacc C/A ttaatcatactgatatgtac1226HNMT323′flanking + 1793gtggagcacagcattttagg C/A cttgatatttgcttattata1227GAMT3intron 5 + 1411ggtgacctggtgccatcccc C/A accaggagacgcaggtgccc1228PNMT2intron 1 + 35ctgaggcacgagggacaaga C/T gtcgtcggggagtgaaagca1229CYP1A11intron 1 + 1590ccactcttcaaaaggaggta C/T atgtgacagcagctggaaat1230CYP1A12exon 2 + 160gaatccaccagggccatggg C/A ctggcctctgattgggcaca1231CYP1A215′flanking − 731gcctgggctaggtgtagggg T/C cctgagttccgggctttgct1232CYP1A22intron 1 + 371cttccctgtgttcacactaa C/T cttttccttctttgaaattg1233CYP1A23intron 3 + 44atagccaggagaagccttga C/A acccaggttgtttgttcagt1234CYP1A24intron 3 + 44tccctgctaggaactgttta T/C ataatgaaaggaggggacct1235CYP1A25exon 6 + 181ctggccatcctgctacagca A/T ctggagttcagcgtgccgcc1236CYP1A26exon 6 + 295cggctgcgcttctccatcaa C/T tgaagaagacaccaccattc1237CYP1A115′flanking − 3669tgtatcctgtgaagcatcac C/A gttatccttctctgcacatg1238CYP1B125′flanking − 3149tgacagcacttaccaaccta G/C ttcctctgatttttgagtca1239CYP1B135′flanking − 1222gggggaagccacccccgccc C/A agcgcctccggcttccctta1240CYP1B145′flanking − 376ttccgggaagcaagctcaag T/C cgcggagagggaagggaggt1241CYP1B155′flanking − 265ctggggacaccgtgcggcct C/T gattggaggtggctgtgatg1242CYP1B16intron 1 + 129tgcccgcagcgttgtcccca C/A attgcaggaaccgttacgcg1243CYP1B17intron1 + 379tgagtgtcacgccttctcct C/T tctgtccccagcatgggcac1244CYP1B18exon 3 + (799-800)agcttctgggagattttttt (T) gagtcaaagacttaaagggc1245CYP1B18exon 3 + (799-800)agcttctgggagattttttt     gagtcaaagacttaaagggc1246CYP1B19exon 3 + 1284agtatagtggggttccatga C/T ttatcatgaattttaaagta1247CYP1B1103′flanking + 2226tttctttttctttttttttt T/Δ aaaatttattcctatttcct1248CYP1B1113′flanking + (2226-2227)ttctttttcttttttttttt (T) aaaatttattcctatttcct1249CYP1B1113′flanking + (2226-2227)ttctttttcttttttttttt     aaaatttattcctatttcct1250CYP1B1123′flanking + 2230tttttctttttttttttaaa A/Δ tttattcctatttccttaca1251PEMT90intron 1 + (297-299)attgtgtgagactcaqaggt TGT/Δ ccgtgttagtctttgggatt1252PEMT91intron 1 + 817tcatgaagcctgtaaggcac A/C tctctgccccaagcagcttc1253PEMT92intron 1 + 830aaggcacatctctgccccaa C/A cagcttctaatccagttctt1254PEMT93intron 1 + 1035gagttctctgaaggagctaa T/C accagttagtgttttgaaga1255PEMT94intron 1 + 1573agtgggcaggggagactaac C/T gggtgtytgaggggtgggct1256PEMT95intron 1 + 1759gatttttcttaaagaaagaa A/C gaaagaaacatacaacatac1257PEMT96intron 1 + 2768gcatcttgctgtccacaggc C/A ggggcacctccaggattcag1258PEMT97intron 1 + 2785ggccggggcacctccaggat T/C cagaagatgactccagtagg1259PEMT98intron 2 + 4598ccgtgggttttttttttttt T/Δ cttcatttctttggttgctg1260NAT221exon 2 + 288atgttaggagggtattttta C/T atccctccagttaacaaata1261NAT2225′flank − 2053ctggattgcaacattttaat T/C ccaggtgtcaggtttccaac1262NAT2235′flank − 1299gaatcaccagtgcgggaggt A/C taacagtgaacccaagacac1263NAT2245′flank − 1145ctgtagaacacaaggatatt C/T ggaggcagtttgtacatgcc1264NAT2255′flank − 1036ccttcccacagagtcccgag T/A tcatgtggcagcatgccaga1265NAT2265′flank − 94aaagatttgctaagagattc C/A cagaggcaacctgaggccct1266NAT2275′flank − 643atgtttatattttatattaa T/C attaatgtaaataaaaattt1267AADA15′UTR + 29attaaagtacactattcagg C/T atatcatgtaggtttacttt1268AADA2intron 1 + 138gctgtggcctttgacaatgt C/A ttacttagaaatgttgtttg1269AADA3intron 1 + 142tggcctttgacaatgtgtta C/T ttagaaatgttgtttgtttt1270AADA4intron 1 + 1033ttccagcagagacaccaaca A/C gtaaaaacaccccagctaca1271AADA5intron 1 + 1253tttttttccctcatatttgc T/C gtctgtgctacaatatgtga1272AADA6intron 1 + 1366ctctggtagccttttaatta A/G ttaattcattcatttactta1273AADA7intron 1 + 1369tggtagccttttaattaatt A/C attcattcatttacttacat1274AADA8intron 1 + 2501ggttacagaaagaatggtgg C/A ttggccaaaaaatgatatgg1275AADA9intron 2 + 1971aaatgagagttaagtaggag A/C attttcttttatttttgtgc1276AADA10intron 2 + 1988gagaattttcttttattttt A/G tgcaggagaaatataaacaa1277AADA11intron 2 + 2341aggtgccttttctattgtcc C/T atgcagacttaggtgatcct1278AADA12intron 2 + 2546gtctgacacagaaggatcaa T/A ggcaaaatgtgcaagacaaa1279AADA13intron 2 + 2609taggaggttcactgggaaac T/C tgaattccactgagtcatga1280AADA14intron 2 + 2663tataaatacagtgttaaatt T/C gtctctcgtattttaaggta1281AADA15intron 4 + 605tgtgtcagtaaaatattata T/C taagtaggtgaatgagatca1282AADA18intron 4 + 621tatattaagtaggtgaatga G/T atcatgtaattgtgagacta1283AADA17intron 4 + 679ttagagattcagacgaattc A/G tataatcttcgatggtgtat1284AADA18intron 4 + 1680gttaaaatgtggataaatac C/T acaatttgcaaaatatttgg1285AADA19intron 4 + 1748atttagaagttctatacatc T/C tttatagtatattacacact1286AADA20intron 4 + 1771tatagtatattacacacttc G/A aaaacacaaaattatttttt1287AADA21exon 5 + 238caagtcatctcttcaaattt A/G ttaattggagttccctgctc1288AADA223′UTR + 121ttagaaattggtctttctta A/G aatggtctagttaagttcca1289NTE15′flanking − 535cacgatctgtcctccgattc C/T tgttaactctagactttctg1290NTE25′flanking − 15gtaaatccccggcaaaaacc A/G gcagcgccttgcaagcccac1291NTE35′flanking − 748agcatggcgcggggaggagg G/T gtgggagggtcgggagggac1292NTE45′flanking − 690tgaataatttaaaggggccg T/C gcctgcggagccgggcggaa1293NTE5intron 6 + 605tcttgccatatacttagtgg A/G ggggtctacatcaggggttt1294NTE6intron 6 + 748agcctccagcctctcttctc C/T gggggttatctcaggcatct1295NTE7intron 6 + 987ggtgctggctctgggatccc C/T gtgcgtcatgtagtctacct1296NTE8intron 6 + 1882tggcctcaagcaatcctccc G/A cctcggcctcccaaagtgct1297NTE9intron 6 + 2222gaatgtttatgtagaacaga G/A agactgtatctgcggtcttc1298NTE10intron 12 + 166tatctggtaccgaggaagct C/G tggcctcgtccccaagggcc1299NTE11intron 13 + 69atccaggtccaccgcctgcc C/T gtcttgattgttttaatctg1300NTE12intron 14 + 8agcccccgctcgggtaaggc C/T tgggaccctgcccggtggtg1301NTE13intron 16 − 113gccaccgcgccctgcgcctt T/C atatttttcttaacccttcc1302NTE14intron 21 + 34agagccggccggcccagagc A/G tgctgggagatgtagtccgg1303NTE15intron 21 + 128gaagaaatcgtgcccctgag G/A gtttcaaaccctaagtagga1304NTE16intron 21 + 151ttcaaaccctaagtaggacc C/G aggtgcagagcattctgggg1305NTE17intron 21 + 651ccactgtactccagccggga C/T gacagagctagaacctgttt1306NTE18intron 21 + 737tggaaaatagtctgtggatt G/T ttgtttaggactctgggcac1307NTE19intron 21 + 1752acagctggtctaggctgtta G/C tggagaaactgggaagcaac1308NTE20intron 21 + 1788gaagcaacagctgggtcaaa A/Δ gtagcttttcttttcttggc1309NTE21intron 21 + 1907cactgcaacctctgcctccc A/G ggttcaagtgattctcctgc1310NTE22intron 21 + 2065ctgcctcgttttatgttcag G/T tcccccattagacagaggaa1311NTE23intron 21 + 2336agtctgggagcacaggagca G/A gaatttcagataaggaggaa1312NTE24intron 23 + 41tggggagggtggtgggtggg G/C ctggagcctcaaattctttc1313NTE25intron 23 + 71caaattctttcagacctgag T/C tcaagttctcggcttccaac1314NTE26intron 23 + 81cagacctgagttcaagttct C/T ggcttccaaccacggagcct1315NTE27intron 24 + 150gtggggcggctggtgacctc A/C gccgtccgtattccgcagct1316NTE28intron 29 + 37gcctgcagcaaccgctgacg T/C cacgtggggttggggggatg1317NTE29intron 29 + 370cgtcccaggtcagcgagccc G/A tcgggccggctgggcctccg1318NTE30intron 30 + 56acctcccgcaccacacacac G/A cacacgcgtgggcacacaca1319NTE31intron 30 + 358aaaaatacaaaaaattaacc A/G ggctggtggggtgtgcctgt1320NTE32intron 30 + 372ttaaccaggctggtggggtg T/C gcctgtaatcccagctactc1321NTE33intron 30 + 430aaatcacttgaacctgggag G/T tggaggttgcagtgagctga1322NTE34intron 30 + 655gtgtgcacaccagctatata T/C gcaaatgctttctctcaggg1323NTE35intron 30 + 659gcacaccagctatatatgca A/C atgctttctctcaggggcag1324NTE36intron 30 + 760tgaaatagggcatttgccaa C/T gcatgccagtctgtcccgtt1325NTE37intron 30 + 835gcacacacgtagataggatg T/C ggcacctctgaccgagttaa1326NTE38intron 31 + 40tggtgcctgcataggtggtc T/C ggctaagctttgctacttaa1327NTE39intron 31 + 41ggtgcctgcataggtggtct G/A gctaagctttgctacttaaa1328NTE40intron 31 + 1329gtctgtcaagggcaggacag G/A ggatgtgtaggcgagtgtgc1329NTE41intron 35 + 31aatggcttcctgtcgttttc G/A gactggggacccaccttctg1330DDOST8intron 2 + 1299atcttctgatgactgggctt C/T ggtgcagtaactggtgtttg1331DDOST9intron 2 + 1581gatactgttggtgggagaaa T/C gacagagagtgtaaaacagt1332DDOST10intron 2 + 2822gtttctcaacaggtgcattc T/G tgacgtttcagactggataa1333DDOST11intron 2 + 3392cagaaggcgtggaggcctgc C/T gcgcctccctctgttgctgc1334DDOST12intron 5 + 495attgcttgaacccaggaggc G/A gaggttgcagtgagccaagg1335DDOST13intron 6 + 226ggaactgcttgggtcacagc C/T tcgttttgttcccagtatcc1336DDOST14intron 8 + 303aagagaaataggtcattagg A/T tgaatttgttaggcaagaga1337DOOST153′flanking + 40cacagcgtggagacggggca G/A ggaggggggttattaggatt1338MRP21exon 1 + 77catattaatagaagagtctt C/T gttccagacgcagtccagga1339MRP22intron 2 + 192atcaaagtggctttgatttt T/G gcataagaatggtgactctt1340MRP23intron 1 + 413gataagttctagaactggca A/C ctaatgatatggactagaag1341MRP24intron 2 + 3639gtcatatcccacccccaaat C/A gacccaataggtacaatgaa1342MRP25intron 2 + 3989agttatgaaaccgatttttc C/T gggactggttgttctagtct1343MRP26intron 2 + 4078aggtttccagatgtgttccc T/C aggcattcctggtggtagga1344MRP27intron 2 + 4171cttattctttggtcagttgg C/T tttctaccacctcttagctt1345MRP28intron 2 + 5373gttaaggatatgtgaactca A/G aatttttatacacagtgcaa1346MRP29intron 2 + 4436ggactagtggaagaattaga C/G ctttcctgaataaatagatc1347MRP210intron 2 + 3930aaaactggcaggagaatttc A/G ctggagctgcatgcaggact1348MRP211intron 2 + 4257qggtattggaaagttcttgc G/A gctgctggaggctgcggtgt1349MRP212intron 3 + 772ggtataaggcaagatttttt A/T aaaaaattaattgcttaatc1350MRP213intron 7 + 1658ggactcttaccagcttagtt G/T cctggttttctaatctaaaa1351MRP214exon 10 + 40tggccaggaaggagtacacc G/A ttggagaaacagtyaacctg1352MRP215intron 11 + 1672aactttttaagtcttaagac T/A ggaaggcctgtgtcctaggc1353MRP216intron 12 + 148ccctctcaccgccccatgcc A/G cttttcctcctttgtaccat1354MRP217intron 2 + 1020agtgctgcgattacaagcct G/C agccacctgcacagcctctg1355MRP218intron 2 + 5227taccataatttatgtgtcct A/G tatgacatgaatttcattgg1356MRP219intron 2 + 5373gttaaggatatgtgaactca A/G aatttttatacacagtgcaa1357MRP220intron 2 + 5538ttaatgaggttaagcacatg G/T tcatatgtttaaaagccttt1358MRP221intron 13 + 180catgagttttctgagcccca G/C tttatctaactataaaatga1359MRP222intron 13 + 1497gtgcagggtccccctgatgc T/C atagccagttcctctttaga1360MRP223intron 15 + 169atgagctgaaagcaaaggtt T/C tcagccccttcccctgataa1361MRP224intron 15 + 949ttccaggtgacacatttagt A/G cctaatttgggaaatgttaa1362MRP225intron 15 + 984tgttaatctagtccaatccc A/C ttagtaagaaagyaggggtc1363MRP226intron 16 + 4059catcctgatgcacagttatt C/T aaatttaagctccatttgtt1364MRP227intron 19 + 10899atgtatggagtatttatgga G/A taaagtattccatgctgtat1365MRP228exon 22 + 51caagcaataggattgttttc G/A atattcttcatcatccttgc1366MRP229intron 23 + 56tatactgaggatctttctga C/T agggaggaattattatgtcc1367MRP230intron 23 + 734tgagccaactactgtactag G/A cactggggcactcaatgaat1368MRP231intron 23 + 801atgggccagacccaactcac T/G gattttttagtgtatctgag1369MRP232intron 27 + 124gggtccctaaagtttccttt C/G ctctaactcaaaggacctaa1370MRP233exon 28 + 52cagattggcccagcaaaggc A/C agatccagtttaacaactac1371MRP234exon 28 + 84aacaactaccaagtgcggta C/T cgacctgagctggatctggt1372MRP235exon 28 + 129agagggatcacttgtgacat C/T ggtagcatggagaaggtagg1373MRP236intron 29 + 154ttccctaggatggacacgtc A/G tttccagaactttgaaatgt1374MRP237intron 30 + 91gtgttaggtgatgcctggca T/C agaattttcatccaggtctg1375MRP238intron 31 + 170gccaaaattttacatcacgc A/G aatgaaaacgaacaaggtta1376MRP239intron 26 + 154ctggctccatcttttaccca T/C ggacgtattccttactcttc1377MRP2403− flanking + 739gtgaatttttattataagct C/T gttctccttaaaactttatc1378MRP241intron 3 + 1145acatccttctcccctcagtc C/T tcggttagtggcagtattct1379MRP242intron 23 + 432tggcagtagagcagggtgag G/A aggattattctgcagaggaa1380ABCB115′flanking − 196gctttggagccatagtcatg T/C actcaaaatttattttatct1381ABCB125′flanking − 16tactctttacctgtgaagag T/C agaacatgaagaaatctact1382ABCB13intron 1 + 71660cttgctggaggaagggtgct A/C gaaaatataccaaatccaag1383ABCB14intron 1 + 80091gaaataatattcaagttctg A/C aataatatcatgacctatag1384ABCB15intron 1 + 103126gatatgaatcagaattcatc T/C gtgtctcaagaaaaggtcat1385ABCB16intron 1 + 103148tgtctcaagaaaaggtcatg C/T gataaattaagttctgctag1386ABCB17intron 1 + 108428aattaatttatcatcatctg A/G tcaccatttcacacaactca1387ABCB18intron 1 + 112042cataagttgaaatgtcccca A/G tgattcagctgatgcgcgtt1388ABCB19intron 2 + 491cctctctggcttcgacgggg G/Δ actagagqttagtctcacct1389ABCB110intron 4 + 36attaactattcaaaatactt C/T ggaaatttgacatctcctta1390ABCB111intron 5 + 1596ttagctctcttactgcttca T/C agtggaagaatcaaatactt1391ABCB112intron 8 + 1789aaacactctgaatattaaac C/T gctcctggaaccacagctca1392ABCB113intron 14 + 24agttgtccttgccctttgcc T/C ttctagaggtgcaaaaaata1393ABCB114intron 14 + 81tgcaggaagttaggaaacta C/T tataaatcggaagaagggaa1394ABCB115intron 15 + 38caaaccaacctgatttataa A/G cataagaacattctactact1395ABCB116intron 17 + 73gtttggtgggctagggctac A/G gtaggagtgggaacaagaga1396ABCB117intron 18 + 564caacagtaaagttacaatct G/A aaaggaatgetctctgttta1397ABCB118intron 18 + 2062tttccctgaggaatggttat C/T ctctgtgttccttgagtcca1398ABCB119 intron 18 + 2293ccacatcaggttttccccag A/G caccttgggacagtttgaaa1399ABCB120intron 20 + 557aaaaccctaaccattgacac G/A tgtgaatgttttcctgggga1400ABCB121intron 21 + 24cgtgcctcctttctactggt G/A tttgtcttaattggccattt1401ABCB122intron 21 + 2725ctgacctgtttttggctgac A/G ggttttagttcctcccctca1402ABCB123intron 21 + 4725tcttggtattaaaagatcca A/G agagataggaatatgtaatt1403ABCB124intron 22 + 8507tgcacttaggaaaaaaacaa T/C atggaaatgtgtaaaatata1404ABCB125intron 22 + 8537tgtaaaatatactttttttt T/A aaaaaaaaggacacatttat1405ABCB126intron 22 + 8565aggacacatttattcagcat T/C atgatcagactattacattt1406ABCB127intron 22 + 8952caccttggtttcatggtttg G/A caaagtactggcctgtacca1407ABCB128intron 22 + 9520caccaacaaatatctttttc A/G cagttgggtgggcatctggt1408ABCB129intron 22 + 9836agactctgacttagacatga C/T ggcaggggaaagagagactt1409ABCB130intron 24 + 377taaaatacagatgtgttgta C/A taagttctgcaagcctttgg1410ABCB131intron 24 + 1493ggggaggtgtccaggcacga A/Δ catggagagctggacttgat1411ABCB132intron 24 + 1495ggaggtgtccaggcacgaac A/T tggagagctggacttgatac1412ABCB133intron 25 + 342tgcagccttgatcttctggg C/T tcaagcgatcctcctgcctc1413ABCB134intron 28 + 134cttggataaagtctgagagc C/G taaatatggtctccaagtgg1414ABCB135intron 26 + 1272gtccttcaattttgtggtga A/G cttaaaaacaggactctaaa1415ABCB136intron 26 + 1394tattaagtggtgtgttaaag A/G ttgtgctataatgaattgta1416ABCB137intron 26 + (1987-1988)aagggctggaagagtgaaag (AAAG) gaggctatttgctcccagac1417ABCB137intron 26 + (1987-1988)aagggctggaagagtgaaag     gaggctatttgctcccagac1418ABCB138intron 27 + 59gcagcctctctggcctatag G/T ttgatttataaggggctggt1419ABCB139intron 27 + 80ttgatttataaggggctggt T/C tcccagaagtgaagagaaat1420ABCB31intron 3 + 8tctcctttggcaggtaggtg G/A tgggcagctgggtccatttg1421ADCB32intron 4 + 104cttcacccgtatyccaggac C/T tggggatgcttttctcttgt1422ABCB33intron 10 + 219gcagcagtggtgctccctcc A/G tgggcagccccgtcaggtcc1423ABCB34intron 11 + (317-319)atggtgcccaggtggatgtg GTG/Δ tccatctcattcctgtcttt1424ABCB35exon 12 + 19agctgcaggactggaattcc T/C gtggggatcgcacagtgctg1425ABCB36exon 12 + (356-357)aggtggggtggggtggggtg GG/TGGTGGGGTGGA ggctg1426tctgtgtccaggaaaABCB71intron 1 + 220acggggcaggaggttctggg C/A agaggacacctggagcgctg1427ABCB72intron 1 + 480agttaactcccttgctgaca G/A gcgtgcttcttgataggcca1428ABCB73intron 1 + (512-513)gataggccaaaaccgtaact AT/Δ ctttccaaaacatagaccgc1429ABCB74intron 1 + 1690agttctccaataaggcagat G/A aagttaagataaaatttgta1430ABCB75intron 1 + 5309aattaatatcatttattgct G/A tattgttgtcagtgttatct1431ABCB76intron 1 − 11274tgcttcttttcaagccagcc A/G gctttaaaaaaaagttagct1432ABCB77intron 1 − 11085caggttttcagggctcatgt A/G gacctgaagaaaaatgagag1433AHCB78intron 1 − 10037attctactttctcaacttct T/C ttattacattatctcatcat1434ABCB79intron 1 − 21ccactctgaaacttccccct G/A ctttttttccttgtcagcag1435ABCB710intron 3 + (135-136)ttctctaatgaaaaaaaaaa (A) catattaattgaccatagtt1436ABCB710intron 3 + (135-136)ttctctaatgaaaaaaaaaa     catattaattgaccatagtt1437ABCB711intron 3 + 333aaaacaatttgtgtgtgtgc G/A tgtgcttcaaggttaatgtt1438ABCB712intron 12 + 524taaccactctgccctcagta C/T gaaacacagtgccgaaccca1439ABCB713intron 13 + 1543atcctgtgaggtggggaagc G/A tatggctagcataaatataa1440ABCB714intron 13 + 2400tgttaccttactgcctcatt C/G tcattcttcccacctgctat1441ABCB715intron 15 + 2201ctccttcctaaccttagcaa G/C agtctggagatttacttatc1442ABCB815′flanking − 2272ggcttaggcctaagggctga T/C gttggggccagtacccctga1443ABCB825′flanking − 2070agctatgaaaacaagaccct G/A tccttctagaggtagcaaaa1444ABCB83intron 1 + 25aaacggaaaaacctactcag A/C gcgggccattgaccgcccgg1445ABCB84exon 2 + 308tgctggtcctgggggtagcc G/A tcgtggtgaggctttcccca1446ABCB85intron 2 + 334cccccacttaaaacacttgt C/G ccctctgtctccccattcca1447ABCB86intron 4 + 12cctgctccggtactgccagc C/T gcagggtgcagagttggggt1448ABCB87intron 5 + 547agttcatagcattctcgctc G/A gccccctcaggcctgctgct1449ABCB88exon 7 + 57agcaatgtgcggactgtgcg A/T gccttcgccatggagcaacg1450ABCB89intron 9 + 1231tttccgcagctgcatggaca C/T cctcgcgtgccccgtttctg1451ABCB810intron 9 + 2164cctcttggaggtccitctag C/T gctgcctatgtggagattct1452ABCB811intron 9 + 2645ttcctgcctggtgcctcccc C/Δ ggctgcctttagcaagtgct1453ABCB812intron 9 + 2646tcctgcctggtgcctccccc G/A gctgcctttagcaagtgctg1454ABCB813intron 9 + 3229cagggccgagcagggagtcc G/A tgggtcagctgggctccctt1455ABCB814intron 12 + (113-114)tcctccactgccacaagggg (GG) ccttctttcctgggacaatc1456ABCB814intron 12 + (113-114)tcctccactgccacaagggg     ccttctttcctgggacaatc1457ABCB815intron 13 + 128tgctctcgggagaccctggc C/T gtcttcacatgtcctcagct1458ABCB816intron 13 + 305atccaggtctagagaagcct A/G tagtggaggtgctgagctgc1459ABCB817intron 14 + 135acagttgtgtcagggaagac C/G agaaccacagccaaagggga1460ABCB818intron 14 + 159accacagccaaaggggacag A/T gtcgttgtgtggggacaggg1461ABCB819intron 15 + 747gttggagccttggyctctgt A/G agggggacagagggaatcat1462ABCB8203′flanking + 333cctatcccctggctcacccc G/A ggacccacagtccccatctt1463ABCB8213′flanking + 1168ccctctttcaggggtgtgat G/A cagtgcattgatggagcagc1464ABCB8223′flanking + (1719-1721)tagaccgcaggagccgcgcc GTC/Δ ttcctaacctcgcctcgqcc1465ABCB91intron 1 + 69agggtgccaggccaggcacg G/C gttggggggcgtctgggcac1466ABCB92intron 1 + 8873tgggcccagcacgtggggcc T/C ggaactacctcaaaggcttc1467ABCB93intron 1 + 8940accagctcagcctgcccagc G/A tgcacacggcaccaagctgg1468ABCB94intron 1 + 11410agatccaagggatccagagg T/C tggaatgtgaccctccgtgc1469ABCB95intron 1 + 12863gggaagccagatgcccacaa G/A gctctgtgacttcacttcca1470ABCB96intron 1 + 19731gccaagtgtcaagatcgagc G/A aggggagggcctgacgaggg1471ABCB97intron 1 + 29649cagaatccagatgcccgtaa T/C gttgttaagaagcctgcaca1472ABCB98intron 1 + 31793ggccaggcggggaggggtac C/T ggccagaccggtgggcaaaa1473ABCB99intron 1 + 37537agagtcacagggttggggtg C/A ccccgggaaggtggcatcta1474ABCB910intron 1 + 38293taccagccctgtgctttcag G/A gaccatgtgacctgtcaact1475ABCB911intron 1 + 44661cccgaggtgcctggcttcac A/G gcaggattgccgtcctgcag1476ABCB912intron 1 + 49576aaagtggccccgtggcttgt C/T ccctgaagccctaaagcacc1477ABCB913intron 1 + 64669ccacagacaagccgggtagc C/A cacctcgcagctcaacacac1478ABCB914exon 2 + 448cctggttttgggccctgttc G/A tgtggacgtacatttcactc1479ABCB915intron 7 + 3364ggtaccaggagtcgggtatc A/G gtgggacaggaacgcgtgtc1480ABCB916intron 11 + 113gggccccaggagctctccca G/T actatcagcctcctgggctg1481ABCB917exon 12 + 370cccaggcctgcagcactgaa A/G gacgacctgccatgtcccat1482ABCB1015′flanking − 424tcgcgtctgcgcgctccgcc C/T ggtctgccggcgtgagaaag1483ABCB102exon 1 + 491acaaggggcggttgcgcccc G/T cagcggccggactcccggag1484ABCB103intron 1 + 37ccacttccctccgccgggcc T/G ctccttctccacacgcgggg1485ABCB104intron 1 + 217actcgtttgcagattttaca C/T ttgttttcttgttgacacac1486ABCB105intron 1 + 405gcgtttatactttttttttt T/A aaccaaaaacacattatttg1487ABCB106exon 3 + 185agggccggggcccaggcttc C/T gtaggcatcagtatgatggt1488ABCB107intron 6 + 1269caaattcacaactgtgcctt C/G cacagaatgggttggaaaac1489ABCB108intron 9 + 632ccccactccacttgggtgag G/A gcaggtggatggtgatgggt1490ABCB109intron 11 + 2373tacctcagggcactcagaca G/C cctcaccaatcagaggctca1491ABCB1010intron 11 + 108tccttttcctgttt~ttgtt T/G ttttttttttcttggagtgg1492ABCB1011intron 11 + 2379cattggtttttagtgtattc T/A gtgttgtgcatccatcatca1493ABCB1115′flanking − (2596-2595)tgtggtttagagctttctct (TT) gagacatttttgctaaggtt1494ABCB1115′flanking − (2596-2595)tgtggtttagagctttctct     gagacatttttgctaaggtt1495ABCB1125′flanking − 1746agctgaagtgaattaagcac G/A atcaactcagtactcacact1496ABCB1135′flanking − (326-314)agggggaaagtttaaaggta (T) 9-12 gtcttgttatgtttttaagt1497ABCB1145′flanking − 135agagggtttcccaagcacac T/C ctgtgtttqgggttattgct1498ABCB115intron 1 + 511aaatatagatgcaaaaaaaa A/A tgagctgtggatgcatgttt1499ABCB116intron 1 + 581aatttcagttttiaggtcac C/T caagccagtgggagtcacat1500ABCB117intron 1 + (1938-1951)gaaagaaaagaaaactgtag1501ABCB118intron 1 + 4517ggtttcccaacatctcatct G/A ataaaaaaaataatttgcca1502ABCB119intron 1 + 5651aaagagaataggtcagtgga T/C tagtattcctgtgcttaatg1503ABCB1110intron 1 + (12200-12201)aagagatggtctctaqcccc CT/Δ gtttgatttggggcacttac1504ABCB1111intron 1 + 13023gtttggctactttgattaaa G/A aagaaagaagagataataat1505ABCB1112intron 2 + 739cctgcatctattctgaccta C/T actggggaaaacagtatgtg1506ABCB1113intron 2 + (921-922)tattttgtagttcaaaaagt (CAGATCTTCTTCAGCT1507AATTTAGAAATGT) tgctgtccatttgatattcaABCB1113intron 2 + (921-922)tattttgtagttcaaaaagt1508tgctgtccatttgatattcaABCB1114intron 3 + 644agccacacgtttcttattgc G/A tgggaagtttaaaaaatggg1509ABCB1115intron 3 + 2231agtgaacctgagattgagct A/G tactgaaatctctagaagag1510ABCB1116intron 3 + 2406aaagggtggtctttaaatcc T/C tatgtttttctcatcaggtt1511ABCB1117exon 4 + 10tttctcatcaggttacaaga T/C gagaagaaaggtgatggcgt1512ABCB1118intron 4 + 434acaatttatagtatttctca A/G tgccccacacagtttatcta1513ABCB1119intron 4 + 518gtagatgagtagctaaaaac G/T aaagtcagctcctgaaataa1514ABCB1120exon 5 + 120ggcacaatgacagatgtttt T/C attgactacgacgttgagtt1515ABCB1121intron 5 + 320gggaggtgacccatgaattt T/C acttgagtatcatctccaag1516ABCB1122intron 5 + 16076agaagaggtaacagtaagcc T/G cctgatttacagcacacatc1517ABCB1123intron 6 + 303atttgcaggtgtgtttgtag G/C gggcagttgagtagcttgaa1518ABCB1124intron 7 + 1141aaagqattcagcaggcatga A/G gaaagaaaagctttgcaaga1519ABCB1125intron 8 + 2463ccattggctaatagcaatga A/C ctatgacatggtctaactta1520ABCB1126intron 8 + 2677tcaatgatgttacagtqaga A/C tctaatattgtattaaaccc1521ABCB1127intron 8 + 2699ctaatattgtattaaaccca T/A gccacatgttaaatgaatct1522ABCB1128exon 9 + 24gtgtccaagtttacggacta T/C gagctgaaggcctatgccaa1523ABCB1129intron 9 + 108caccttggtctgtggcctcc A/G gaggaagtacttgttcaaga1524ABCB1130intron 10 + 2475taatcattccaaaccacgga C/A tttatttcattaagaacatg1525ABCB1131intron 10 + 2478tcattccaaaccacggactt T/A atttcattaagaacatgata1526ABCB1132intron 10 + 2711tttacagattggaaaagcca C/T tgaagtattgcaggtccaga1527ABCB1133intron 10 + 3539agtgactgtaattagiatca C/G ttgtgcacagagaaaaaatg1528ABCB1134intron 10 + 3623tgcagaaggttgttctttca T/C gaccttcctgagtttcagaa1529ABCB1135intron 10 + 3661gaattcattaataaaaataa A/T cacataatggagcgtgacat1530ABCB1136intron 10 + 5100gggccactctttggcttggc A/G atagactgtggccaatgaaa1531ABCB1137intron 10 + 5292gctatttggtaggaacatct G/A ggcatgatcaggtagccttc1532ABCB1138intron 10 + 5912qagtaatattcagtaaaaaa A/A taaagtggtattttaaatca1533ABCB1139intron 12 + 116tgtttccagtaatagggaat G/A gaggtgtctttctctgaaag1534ABCB1140intron 12 + 326gataaatgacaaggcaatta GIC aacaatcaggaagcacaggt1535ABCB1141intron 12 + 335caaggcaattacaacaatca A/G gaagcacaggttcttcccaa1536ABCB1142intron 12 + 2572cctcatccttgccaatgttt C/T cttttactggtttttgatgg1537ABCB1143exon 13 + 23tctaaatgacctcaacatgg T/C cattaaaccaggggaaatga1538ABCB1144intron 13 + 70atggcagtatactgatcaaa C/T agaaaggtgtagcatacatt1539ABCB1145intron 13 + (1578-1579)ttattggcctctattttttc (C) tgcccattggtcaagtatga1540ABCB1145intron 13 + (1578-1579)ttattggcctctatgttttc     tgcccattggtcaagtatga1541ABCB1146intron 14 + 32catacattcctgggagaaac C/T aagaggtcatagaaggaaaa1542ABCB1147intron 14 + 80cacaattatacacatttctt C/T tcgtatgattcccaagtcat1543ABCB1148intron 14 + 439tattgtgtcaaaaacaattc A/G ttgtatatctccattctaag1544ABCB1149intron 14 + (1262-1263)cagcctttgcattatatttt (T) gctgtgttgtctaacaggag1545ABCB1149intron 14 + (1262-1263)cagcctttgcattatatttt     gctgtgttgtctaacaggag1546ABCB1150intron 14 + 1283gctgtgttgtctaacaggag A/C aaagagacacggatttgctc1547ABCB1151intron 14 + 1339tgagatagatatttaggacc G/A tgaccaatttttattttggt1548ABCB1152intron 14 + 1359qtgaccaatttttattttgg T/C tgaaaaatcttatttgaagt1549ABCB1153intron 14 + 1480tattgattagacaataaccc G/A tctggggaagggatatttct1550ABCB1154intron 15 + 370ccttttctaatgtctgcaca G/A cctatttaagaatattccca1551ABCB1155intron 16 + (550-559)aaagtttagtgtttctatca (T) 9-12 gctacttctgatggacttct1552ABCB1156intron 17 + 188tttctctccccaattcatgg T/G tttttggttagcttctcatc1553ABCB1157intron 17 + 194tccccaattcatgggttttt T/G gttagcttctcatcttcttg1554ABCB1158intron 17 + (197-198)caattcatgggtttttggtt (T) agcttctcatcttcttgggg1555ABCB1158intron 17 + (197-198)caattcatgggtttttggtt     agcttctcatcttcttgggg1556ABCB1159intron 17 + (289-296)ttagaaaggggacttctttt (A) 7G (A) 41557tctgtgtttagtgttcctctABCB1159intron 17 + (289-296)ttagaaaggggacttctttt (A) 12 tctgtgtttagtgttcctct1558ABCB1159intron 17 + (289-296)ttagaaaggggacttctttt (A) 10 tctgtgtttagtgttcctct1559ABCB1160intron 17 + 1070tcagacttgggttttcctat C/T tttcttcttgagaacaagtt1560ABCB1161intron 17 + 1651tgttaaaatatctcattgta T/C atgctgacggatttttcttg1561ABCB1162intron 17 + 2226ccttaagtctcctcctatca T/A gcaccttgttctcaccagct1562ABCB1163intron 17 + 2979ctctctcttcctttctcagc T/Δ ctactatttcactgttggct1563ABCB1164intron 17 + 3288aatccccatatcctacctta T/G ccatctcatccatgaatctt1564ABCB1165intron 17 + 3289atccccatatcctaccttag C/T catctcatccatgaatcttg1565ABCB1166intron 18 + 97aaiatgagttttctaggtat A/G tatciagcagtgtttcaagt1566ABCB1167intron 18 + 98atatgagttttctaggtata T/C atctagcagtgtttcaagtc1567ABCB1168intron 18 + 892ctctgaaagttagtgataca C/T cttatttgtgtttgaatcaa1568ABCB1169intron 18 + 2681atgtatgagatcaagtcagg A/G tcaaatattagacacccata1569ABCB1170intron 18 + 3780ggaccatcctgtggggcaat C/G gttccagaaaatgctggtat1570ABCB1171intron 18 + 5741ctcaccggtataaatacaac C/T gtagcaaaggttttcttttt1571ABCB1172intron 18 + (5882-5883)tgcgtattccctcagttcag (C) tttttattcaagccacagca1572ABCB1172intron 18 + (5882-5883)tgcgtattccctcagttcag     tttttattcaagccacagca1573ABCB1173intron 19 + 10022tggctaagttaaaaaaaaaa A/Δ gagattcaactataattgct1574ABCB1174intron 21 + 322caagattcaatactgccccc C/≢ agggggtgggtgaacagggc1575ABCB1175intron 22 + 257ctgttcaatttcctctcgca T/C agtgattcattccacattcc1576ABCB1176intron 22 + 552taattaatatcttgtccttg G/C ggggtaaatgagggatggta1577ABCB1177intron 22 + 569ttggggggtaaatgagggat G/A gtagcataaacacttctcaa1578ABCB11783′flanking + 243aaacaccacagaatgacata G/A aactaaaggcggcaggaatc1579CYP4B115′flanking − 333gaaacattcacagtgcttgt A/T tgagaagacagtggttatta1580CYP4B125′flanking − 18gagcagctgaaggcaggtca G/T atgaaggciaggtggctgga1581CYP4B13intron 1 + 341tccaaaacctctggatagta C/T atagaagtaggcaatccatt1582CYP4B14intron 1 + 542cctatgggtggctcaggagc C/T gtgacaccttcccaggttca1583CYP4B15intron 1 + 2856gaggactttgcacatagtag G/A tgctcagctatattgttggc1584CYP4B16intron 1 + 6086tttggaatctaaagactggg G/T cacgatgctagttgtgtgac1585CYP4B17intron 1 + 6598ttttggggtgtggggagagg G/A cccatagtagggagacagct1586CYP4B18intron 1 + 6660acctaagggtgtccatcctg A/G aggagagcagtcctaggggg1587CYP4B19intron 1 + 7242ccctggtctcccttaactca T/C gctggactgttccctttggt1588CYP4B110intron 2 + 107gcctgtgtactaagtctgcg C/G agctgaggttcccaccctac1589CYP4B111intron 3 + 361atggtgtggtggtaggacca C/T ggctggtcaccagaggctgt1590CYP4B112intron 4 − 492aaaggctttcacatctaaaa C/A gtgtctcctcattttctgtc1591CYP4B113intron 4 − 315ggattacttacatatacacc A/G tgcgggggagctcaccacct1592CYP4B114intron 4 − 157ctacccaccctaicctgata T/C tccagcaggatggagggcag1593CYP4B115exon 5 + 22acaagtgggaagagaaagct C/T gggagggtaagtcctttgac1594CYP4B116intron 5 + 125cccagggagccttagcttgc G/A gggagacaggacctgctcat1595CYP4B117intron 5 + (287-289)tgtctaagccaatccctcct CCT/Δ accctctgcttagcagggac1596CYP4B118intron 6 + 54gcctgggttcctcctcctgg C/T ccctctatgccccctcccat1597CYP4B119intron 7 + (99-100)agctcttaagcatttccccc (TC) tttcctcagcaaatataacc1598CYP4B119intron 7 + (99-100)agctcttaagcatttccccc     tttcctcagcaaatataacc1599CYP4B120exon 8 + 114tcctggtttctctactgcat G/A gccctgtaccctgagcacca1600CYP4B121exon 8 + 139tgtaccctgagcaccagcat C/T gttgtagagaggaggtccgc1601CYP4B122intron 8 + 247agaaagttgtcaacaagagg C/T tgatattttgtgtgctaact1602CYP4B123intron 8 + 366tgtgggggtgaacagagctg A/G gacagctgggagagccagtt1603CYP4B124intron 8 + 650cctttgcttgtggtcagaca C/A cctgcctttctctctgggct1604CYP4B125intron 8 + 844tcatatgtgagaatcccccc C/A ccacggggtatccagacaca1605CYP4B126intron 8 + 1767tcccattccaagaatgttct G/T gttgtgttgctggcagggaat1606CYP4B127exon 9 + 53tgtgcatcaaggagagcttc C/T gcctctacccacctgtgccc1607CYP4B128intron 9 + 652agtcggatgtggtcatgaac G/T ctctgtcactggcagtggtc1608CYP4B129intron 9 + 774cctggtcaccaacctctgtt C/T tgcccacaggaagcctgatc1609CYP4B130intron 10 + 33tgggctgggagatcagacag G/T gtgggqgactgggagggtca1610CYP4B131exon 12 + 224ccagatggctcaggctgtga C/A ctccctgggcaccaccctcc1611CYP4B132exon 12 + 270ctgggtgtggaggagttggg G/A ccccctgccttcaggaggct1612CYP4B1333′flanking + 129tctgtgtctcacagtcacgt G/A gtgctccaggcattcagggt1613CYP27A11intron 1 + 295aggagggagctgtcttggga A/G gagagtggcagaggcaaatg1614CYP27A12intron 1 + 17503cagtgcataaagcctctgat C/T ctccttagagaaggagggac1615CYP4F21intron 1 + (145-146)ccaagcccctggcaacctca CA/Δ gtgattcagqctgqgccttt1616CYP4F22intron 1 + 193tttaatcagtctctctctct C/T tttcccattctaagtgctta1617CYP4F23intron 1 + 324ccctgctctacctccggcac T/C gcccgtccctgcctctccac1618CYP4F24intron 1 + 367tccctggaggtccctgggcc G/C ttctctgggcctcaggatct1619CYP4F25intron 1 + 402ggatctcaccgtccatcccg T/C ctgccctgcaggatgtccca1620CYP4F26exon 2 + 35gcctgtcctggctgggcctc T/G ggccagtggcagcatcccct1621CYP4F27exon 2 + 166cggtgtttcccacaaccccc A/G agacggaactggttttgggg1622CYP4F28intron 2 + 125ggcagagaagcagaggaggc A/G tcttactcattcctctgctt1623CYP4F29intron 2 + 440gggccgtctcccacttccac T/C acacccgaaggcacctttct1624CYP4F210exon 3 + 48gttctgactcagctggtggc C/T acctacccccagggctttaa1625CYP4F211intron 3 + 701agactccaccccagcttggg T/A ccctttccttgacccctgtg1626CYP4F212intron 3 + 742cttcccatcgttggacgggc G/A aggctgagcagggggaatgg1627CYP4F213intron 3 + 1020gctttagctttctccatgtc G/A cttttcctatcaaggtggcc1628CYP4F214intron 3 + 1039cgcttttcctatcaaggtgg C/A cttttcctcatgatgtcaac1629CYP4F215intron 3 + 1040gcttttcctatcaaggtggc C/G ttttcctcatgatgtcaacg1630CYP4F216intron 3 + 1920ccacctgtctaacctctgtt G/C ctgtttgctcatgtctgggg1631CYP4F217intron 3 + 1945ttgctcatgtctggggcgtg T/A ctctacaatggctgttatat1632CYP4F218intron 3 + 2621agcattctgtagaatgctga G/A ctgtgctcaggggttgcgga1633CYP4F219intron 3 + 2665tgttggatcgtgtaggaggc A/G tgtcaaggcatgctggaacc1634CYP4F220intron 6 + 194gggtttgaactggtgggtgt G/T gtcagagctctgtaggggac1635CYP4F221intron 7 + 67tgtgaaatgtcagatgaaag G/A atttgaacttgattaagagg1636CYP4F222intron 7 + 2811ttccaagggaaattgccatt T/G aattctcctgtaactcaggt1637CYP4F223intron 7 + (3096-3097)gaggtgggggttgggggggg (G) ttactgccttctctccagga1638CYP4F223intron 7 + (3096-3097)ggggtgggggttgggggggg     ttactgccttctctccagga1639CYP4F224intron 8 + 145ggtgctgtctaccttcgggt G/A ctgaagcagcccagagaccc1640CYP4F225exon 9 + 44ctctcctgggtcctgtacca C/T cttgcaaagcacccagaata1641CYP4F226exon 11 + 48gaacccatcacaacccagct G/A tgtggccggaccctgaggtg1642CYP4F227intron 12 + 108tggtccaagttccagctctc C/T ttccctcacctcctctggag1643CYP4F228intron 12 + 285gcatggggatccaggcacgg A/T tacccccttctctattcctc1644CYP4F229exon 13 + 238aagtgaagcctagaattacc C/A taagaccctgttccacagtc1645CYP4F230exon 13 + 342tgtgcgtgaatgttcatggc G/A gccctattcacagtagccaa1646CYP4F231exon 13 + 563tagtgiactgtccttttata T/C gaaatttccagaacaggcca1647CYP4F232exon 13 + 707aaatgttccygacctagata G/C tgacgaaggtagcacgacac1648CYP4F31intron 2 + 258cattaatgcacctctgcggg G/T ctcttgggcagqgggttggg1649CYP4F32intron 2 + 916ttagggacatgtcctgagtc C/T acactgctccccacaaacct1650CYP4F33intron 2 + 3417atccaggtctcacacagtgt C/T acttcctctcttggctttag1651CYP4F34intron 2 + 4090gagagcatgaattgggtcct G/A tgtctttctctccagattca1652CYP4F35intron 3 + 89tgtgctgcctccagcgggtc G/A cgtgcccatgtgcagacagg1653CYP4F36intron 3 + 243tcaagtctgctgtacggcta C/T gtcttgtcacctgtatattt1654CYP4F37intron 3 + 502aggtctgggacccagggtcc G/C taagtgaactgtctgagaca1655CYP4F38intron 3 + 755ttttgtggccatgtcaggac A/T tgtgaacacatgtcagtgtc1656CYP4F39intron 3 + 855Qggacagacagggtgtccta G/A gtccttgtgaaggcattctg1657CYP4F310intron 3 + 970cctgacatagctcctacgtg C/T catgttaggcagtgtcattg1658CYP4F311intron 6 + 122aaggagttgttatacctgat C/T gttgaaggactggtatgaat1659CYP4F312exon 7 + 159ggtgcacgacttcacagatg C/A cgtcatccaggagcggcgcc1660CYP4F313intron 7 + 2107caggttgccaqtgatttttt T/Δ ctcagaaagttttcatcaag1661CYP4F314intron 7 + 2255gaccaagaagggtctaggag T/A gcaagatgggcttgggtttc1662CYP4F315intron 8 + 132cctcaatgcaaggttgctgt A/C caccctcgggtgctgaagca1663CYP4F316exon 9 + 59taccaccttgcaaagcaccc G/A gaataccaggagcgctgtcg1664CYP4F317intron 9 + 13attgaatggtgagtgcaggt G/A ctggtgccctgttcctgagc1665CYP4F318intron 9 + 36ggtgccctgttcctgagcct G/C tctcattggctctgttcccc1666CYP4F319intron 9 + 167acccatcctgactgtctggg C/G aaaggttataggcccttagg1667CYP4F320intron 9 + 369tccctaattcctacccttcc G/A tccagtccagggatttataa1668CYP4F321intron 9 + 458tcattcatccatccagtcct T/C gttcagcaaatactctcata1669CYP4F322intron 10 + 46ctcctgggtaggaagagggg A/C ccctcaggcagggagcattg1670CYP4F323intron 10 + 63gggcccctcaggcagggagc C/A ttgtcctgactgcccccttc1671CYP4F324intron 11 + 14ccctgaggtgcgggcccccc C/G tctctgtttttgtccattcc1672CYP4F325intron 11 + 84gatcaggagaatccaacatc G/A cctccctccaagacacacac1673CYP4F326intron 11 + 113caagacacacaccactgtct T/C tccaaggctggcggactggg1674CYP4F327intron 11 + 164cggcaacccttcttggtctc T/G cctccaggtctatgacccct1675CYP4F328intron 11 + 165ggcaacccttcttggtctcg T/C ctccaggtctatgacccctt1676CYP4F329intron 12 + 156gaaaaggcccacagagtagg G/A ttgggttggtcctagaagga1677CYP4F330intron 12 + 253gagctcggctaggctcgcag G/T atatgcaagcccacatgggg1678CYP4F331intron 12 + 346tgggtgtcccaggccaggtt A/C ccggcttgatggggccagga1679CYP4F815′flanking − 61accatgtttacccatcattg G/T tcctggayctccccagcccc1680CYP4F82exon 1 + 67gtggcagcatccccgtggct G/T ctcctgciggtggtcggggc1681CYP4F83intron 1 + 707tacgcagcaggtattcacca T/G tatttccacattatccactg1682CYP4F84intron 1 + 857acaccccctaccctcacatc G/A tgacacagctgggccagaag1683CYP4F85intron 1 + 907tgccatctccaccctccccc G/A tgcaggggcatcttctttat1684CYP4F86intron 2 + 668tgtggcacttccaccatatg T/C tcattgccctcttgctccag1685CYP4F87intron 2 + 818gccacagagaccatggctca G/A gccccaaaatgctgagtgac1686CYP4F88intron 2 + 1079tatgcttgggtgttgcagaa C/T atgttggaccatgtaggagc1687CYP4F89intron 2 + 1194ccggtcccctttatgccccc C/A accctcctttcttcttctgc1688CYP4F810intron 5 + 45aacatgggatggagtggggg G/T gtgggtgtggggagagcaaa1689CYP4F811exon 8 + (19-20)ggccatgacaccacggccag (GCCAG) tggcctctcctgggtcttgt1690CYP4F811exon 8 + (19-20)ggccatgacaccacggccag     tggcctctcctgggtcttgt1691CYP4P812intron 8 + 222tttatttccccactaacttg C/G tatgcaagcttagtaaaatc1692CYP4F813intron 8 + 334cttggagaattaacggcaaa A/T accgcaatgacttttggacc1693CYP4F814intron 8 + 1999ttctaagtacatttattctc T/C tgcttttagctatgatctag1694CYP4F815intron 8 + 4184caggagggccgtgtatgctc C/T ctggataattgttgggtgtt1695CYP4F816exon 9 + 119acgtggtgctcccagacagc C/T gagtcatccccaaaggtgcc1696CYP4F817intron 11 + 282gggttgggggttccgggcct G/C gttcctggcgcagtggggcc1697CYP4F818intron 11 + 340tgcagtcagaccttccacct C/T ggcccccaggaactgcatcg1698CYP4F8193′flanking + 35atcacctacctttgcaccaa T/C taccttttcagatttccggt1699CYP4F8203′flanking + 83ctgtgttggcccctgtgcct G/C agtcccgcggatggccagta1700CYP4P8213′flanking + 90ggcccctgtgcctcagtccc A/G cggatggccagtagggggcg1701ALDH11intron 1 + 564cattatttcttcagccaagt T/C tgttgccattggagcagatg1702ALDH12intron 1 + 710gttctgagagtaactctgaa C/T tttgcctgtttcacactgct1703ALDH13intron 1 − 3868ccctttttatatccagaata C/G agcctaaacttctttctctg1704ALDH14intron 2 + 2933taagtatgctatactatatt T/C gatagatatactatactata1705ALDH15intron 2 − 1646caatgtgattaactgaatgc C/T gcaaatatgcactgtatatg1706ALDH16exon3 + 54caggcttttcagattggatc C/T ccgtggcgtactatggatgc1707ALDH17intron 3 + 157taggccccttaacattgaac T/G attctcaaatagtaatctgc1708ALDH18intron 3 + 339tgagtctcctagaatgatat G/A ttaggtttattcaagcattt1709ALDH19intron 3 + 655agcagttagatgagtcagag C/A ataatatagttgggggaggg1710ALDH110intron 3 + 735gaagccaatttaacataaac C/A aataccaagatcaggtttca1711ALDH111intron 3 + 863gcaagtatggttaatcaaag G/A accatttattactcaaatat1712ALDH112intron 3 + 1757agatgacaagatttcttcta T/A ttcaaaaattccctagcaca1713ALDH113intron 5 + 90ttctctaaaacagatggatg C/A ttatgtatttgttaaatgtg1714ALDH114intron 6 + 213caggaagccaaacacaaagg T/C ttggtgtcaaacagtcaact1715ALDH115intron 6 + 1323ttttgaattaaattcttata C/T tgtaacttttaaacttttta1716ALDH116intron 7 + 638gcaaaagaaagtggtggaag C/A atactgtaccatgcaaaaaa1717ALDH117intron 9 + (1462-1463)aatggaattctatgtttttt (T) gttgtgattatttatctatc1718ALDH117intron 9 + (1462-1463)aatggaattctatgtttttt     gttgtgattatttatctatc1719ALDH118intron 9 + 1757tgatctagaatttagtttct A/G taaatgaatagaatccagtg1720ALDH119intron 12 − 1383aatcccacttattactctcc T/G gagagcttcaagtgcctata1721ALDH1203′flanking + 40ttttaagtacaagttttggt T/C acagtgatttcttcttgtca1722ALDH21intron 3 + 1766aaatttgtggctcatcctgc C/Δ tggcccccttcctcctcctc1723ALDH22intron 8 + 52gaaggtagccctggccacct G/C tgttgtggctccagccgatc1724ALDH23intron 8 + 69cctgtgttgtggctccagcc G/A atcctgtcgcccccccagtg1725ALDH24intron 9 + 5197gctttcttatgaccttggtc C/A atttcccagttgtcttgttg1726ALDH25intron 11 + 114gagctgggctcagtctctcc T/C gggtcagggtgtgatgtcga1727ALDH263′flanking + 411ggatatgatttctgcccctc T/C tctgctgtgggtaaacagct1728ALDH273′flanking + (432-433)tctgctgtgggtaaacagct TC/Δ tgtttcatgcatttactttt1729ALDH283′flanking + 488ccaataagaatgtgcttgaa G/T gtttcatgcatttaatttgt1730ALDH715′flanking − 1455ctgcctgtccacacccacag C/T agcttgcacatcatccccac1731ALDH72intron 1 + 464catgaatgactctgggaaag A/G atcattcttagcaatggact1732ALDH73intron 1 + 2269aaatggaatccaaacagcaa G/C agacctcccctcaccggtca1733ALDH74intron 2 + 1349actgagcttctgccaccggc C/T gcctgccggccttcatgaga1734ALDH75intron 2 + 1820tccgtgtggaaggcaccttc C/G cccagcctcagtggctagga1735ALDH76intron 2 + 2046aacctcaggcgctgcctcag C/G cagggagccagcctggcccc1736ALDH77intron 2 + 2939aagcacgcactgaacatgga G/A tgagtgagtgaacgaatgaa1737ALDH78intron 3 + 7tgcccaagaacctggtgagc C/T ggccgggctgaggcgggcag1738ALDH79intron 4 + 36gccccttccggtcacccttc T/C ccgctcgaggcctcagggcc1739ALDH710intron 6 + (116-117)attctcctctctctctctct CT/Δ ggaccaggctqggagcagtc1740ALDH711intron 6 + 263cagaccctcatacgtgaccc T/C gctgccccccaggctcttag1741ALDH712intron 6 + 1298gtagacagagctggactcca T/G ccttgggtgataagggatcc1742ALDH713intron 6 + 1411gccagggtcacaagcagagg C/T gggaggagccaaggggtttg1743ALDH714exon 7 + 185acctgcgtggcccccgacta C/T gtcctatgcagccctgagat1744ALDH715exon 7 + 339tgcgggcattgctgggctgc G/A gcgtgtggccattgggggcc1745ALDH716intron 7 + 249ccagggctccagggctcagc G/A tgctaagatgaactcccatc1746ALDH717intron 7 + 277atgaactcccatcccaccac C/T ggctatcctgaaaggctgta1747ALDH718intron 7 + 498gaccaaggtcgggggattct C/T tgtgtcccacaggccctgag1748ALDH719intron 8 + 14cagccaggtgggggtgcggc C/T gggctgggcagggtcaggag1749ALDH720intron 8 + 49caggagcccgcagtgggcag C/T acaagtggtggcagcagggg1750ALDH721intron 8 + 111tcaggactttgggatggtgg A/T cctcttggctctgtctctgc1751ALDH722intron 8 + 3219atcctgatggggctcaaggc A/G gcctcacgcacatcctgttc1752ALDH723exon 9 + 33gtgctgacccagaccagcag C/T gggggcttctgtgggaacga1753ALDH724intron 9 + 946tcccaggcccccgagctgac C/A cttcttggtggccgtggccc1754ALDH725intron 9 + 1067aggctccccaagcctgggtc C/T ctcttgcccccacccactct1755ALDH726exon 10 + 137ccgcaatcgccgcgccgcct G/A aggatgctgctggtggccat1756ALDH727exon 10 + 397cgctcccaaccatgagagcc G/A aggtgggaggcatgggaaac1757ALDH728exon 10 + 1198ctcttccccatgctgctcat C/T ctcctgggccccatccactc1758ALDH729exon 10 + 1475caggggtggacctgagtttc G/A tctcctgtctctctggctga1759ALDH7303′flanking + 15cctggcaatacttacatctc A/G gtgatttgctttctgtgcat1760ALDH7313′flanking + 60caacaggactctggaccaag G/C ccctggcgttgggtaacaat1761ALDH81intron 1 + 98agggaaggggatgtgtgccc G/A tggcccgtgggtcagggggc1762ALDH82intron 1 + 157atggctgcaggggccatggg T/C acggggcttgctcaggagag1763ALDH83intron 1 + 354tctgtggacagacaaggatt C/G ggtCgggggcaccagggctg1764ALDH84intron 1 + 851tatgacaggtccatcaggcc T/G caccttcctgtgtgtcttat1765ALDH85intron 1 + 894ctcagcatctgcccccacag T/G gcttttgcacacgttggttc1766ALDH86intron 1 − 463aaagaaccctccgagtccct C/G gtttagtcccagaagggagg1767ALDH87exon 2 + 61gccttcaactgagggcgcac G/A cggccggccgagttccgggc1768ALDH88intron 2 + 8ggacctgcataaggtgggcc A/G tggagagtgggccccggcag1769ALDH89intron 2 + 23gggccgtggagagtgggccc G/C ggcaggggctggagcagcgt1770ALDH810intron 2 + (180-181)ttcactcctgaacactcaca (A) gccaccctgtgatgcaggct1771ALDH810intron 2 + (180-181)ttcactcctgaacactcaca     gccaccctgtgatgcaggct1772ALDH811intron 3 + 72gactacgctctcaagaacct T/G caggcctggatgaaggatga1773ALDH812intron 8 + 375ctgcagcatcctaacctcac C/T gtcgcgactcaaggctgccg1774ALDH813intron 8 + 463aatcacccccatggcacccc G/A accgtcactgagagggtgct1775ALDH814exon 9 + 33atgctggagcggaccagcag C/A ggcagctttggaggcaatga1776ALDH815exon 10 + 428aggtgtcctcactcacccca C/T cctccccaattccagccctt1777ALDH91exon 1 + 121actgtgtggggtatggcggg G/A tggtggggagaatgtggtgt1778ALDH92intron 1 + 67cgcggatttcccggccagcc C/G ccgtttcctgtgttctgcag1779ALDH93intron 1 + 103tgcagcgttgacttgagcac A/G agacagtgacagtggagagt1780ALDH94intron 1 + 1818gaatttttgagaaaaaaaaa A/Δ tgttcctttagggttgcctt1781ALDH95intron 2 + 5891tcaggaacaggaagtaaaga G/A gtttacatttctaaatttct1782ALDH96intron 2 + 6398atcaaaaacacttgtctgat T/G atcgtgctctgaacctgcct1783ALDH97intron 2 + 9677atgacgctgagtttggtgct A/G ttcttttgtttttcttgcct1784ALDH98intron 2 + 9991gggagaagtgagggacctac C/T cttggcttctaatctttcat1785ALDH99intron 2 + 10198ttgtcagagacatctttgat A/G atccttacgtactatatcag1786ALDH910intron 2 + 10256ttagtagataactttttttt T/Δ gtaaqgatggagaataatag1787ALDH911intron 2 + 11382catattcaattcttttatgt T/C ctttagaccaaagaaaggca1788ALDH912intron 2 + 11455taaacctttaagctcatcat C/T ggaccatctattgaatttct1789ALDH913intron 2 + 12044atttaaagtgaaagctattt C/T tagttttaaaaattgagcag1790ALDH914intron 3 + 334ctatttagcaaacttttttt T/Δ gacagtqtataaagttttca1791ALDH915intron 3 + 368gttttcaacaattgatattg G/A aaggttggtagqgcctagga1792ALDH916intron 4 + 191ccctcaaggagcttatagtt T/A aggttgtacacaatcatgtc1793ALDH917intron 4 + 557tagaaaaaattgtaatgtia A/G aaagcattactgttaggaca1794ALDH918intron 5 + 830agttcaagatgattttgtag G/C ttcagggcctagttgactta1795ALDH919intron 5 + 838atgattttgtaggttcaggg C/T ctagttgacttagcatgcaa1796ALDH920intron 6 + 120agaaaagttgcacaaatagt A/C caaagaattcccatgtacct1797ALDH921intron 6 + 2569attaaaatctgctttaaata T/C ttttttgggggagaggacac1798ALDH922intron 8 + 1414ccgatcttcaaaaaattagc T/C gggggtggtggtgcacactg1799ALDH923intron 9 + 664aaagttcacatttttttttt T/Δ ataacttcatggtcaagagc1800ALDH924intron 9 + 2170taatgcacacattttttttt T/Δ cttcataggqacatccaacg1801ALDH925exon 11 + 587aaaacaaaaaacaaaaaaaa A/Δ ccttgttcctttataggttc1802ALDH101intron 1 + 39gggtgtggggaaactggccc C/T cgccgcgcacttgtggactg1803ALDH102intron 3 + 2491tgccgcgaagaaattggcac T/A gctgagttctacatgcagtt1804ALDH103intron 3 + 2595ttctgtacatcaacttgtga T/A ggattgaggccagttctggt1805ALDH104intron 3 + 2775taccgctttgcccctgacca G/A gggtaaattcttcaataact1806ALDH105intron 3 + 3424aggcacttctgcacacaccc G/A cgtctcatgcattttccctg1807ALDH106intron 3 + 3676atgttgaagagattgctgat G/A ttagacgttaggatttattt1808ALDH107intron 4 + 481tagaaaataagaggtttcag G/T ttctctctgctaaatccggt1809ALDH108intron 4 + 769atcctgctttatacctgaac G/A tcttgcaggcagagccaaaa1810ALDH109intron 4 + 796aggcagagccaaaagccaca A/G ccaggagagtctgtaccgaa1811ALDH1010intron 5 + 254attagttgtggcatatactt T/G ttttaaaaaagttaaataat1812ALDH1011intron 6 + 137aatcctgctttctggtatac T/C gtacctgtagcttttgttat1813ALDH1012intron 6 + 923aggctaatgaatggtaagag G/A aaggggctatcctgattagc1814ALDH1013intron 7 + 331tgcttttctgatgttaatcc A/Δ cagggcattgctgaataaca1815ALDH1014lntron 8 + 643tttagaacatgacctgcctg C/T ctctcccacatgtgagatga1816ALDH1015intron 8 + 666ctcccacatgtgagatgact G/A actcagctttttatttctcc1817ALDH1016intron 9 + 2129tgttttcatttttaaaaaaa G/T gtttgactttggaattcatg1818ALDH1017exon 10 + (1894-1895)ttggcttgtctactaataca CA/Δ tctgcttcaaaatgaacata1819ALDH10183′flanking + 31gtatttgtcaactttttttt T/Δ ctcattttaaaattcttagc1820ALDH10193′flanking + 106gtgtgttgggggtggtggtt G/A gtagctatagtaaataggtt1821ALDH10203′flanking + 1630aaaagcacgtgggaaacaca A/G ttaatcatgtcttaccgtat1822ABCC715′flanking − 834gctaaaacactccaaagcct T/G ccttaaaaatgcgcactggg1823ABCC725′flanking − 729cctccttgcagatttttttt T/Δ ctctttcagtacgtgtccta1824ABCC73exon 1 + 125tagcagggaccccagcgccc G/C agagaccatgcagaggtcgc1825A8CC74intron 1 + 6200ctatgtgagacgttaagaag G/A tagaggtggccaagaaggaa1826ADCC75intron 1 + 7538agttctctttcttagcatgg C/A ctacagaggtgcaactacct1827ABCC76intron 1 + 13519gaaacttaaatcttgagtca T/C acaattgtgtctacatactg1828ABCC77intron 1 + 14110attacacagtattttttttt T/Δ aattttggggaaagtcgatt1829ABCC78intron 1 + 14293gccaggcagattcctgactc C/Δ tataacccagagcttatcag1830ABCC79intron 1 + 14316taacccagagcttatcagag C/G atttatgtccccaaagagaa1831ABCC710intron 1 + 14433cagaataacaatgatggctc G/A gaaaaatatgggtatttctg1832ABCC711intron 1 + 14824acgttttgacagttgcacaa G/C tttctttctttaagctttaa1833ABCC712intron 1 + 23401aatatttttgaaaatcacta C/G ggtatcctgcatagtgattt1834ABCC713intron 3 + 879gaaaaatttcagttcataca C/A ccccatgaaaaatacattta1835ABCC714intron 3 + 922acttatcttaacaaagatga G/C tacacttaggcccagaatgt1836ABCC715intron 3 + 933caaagatgagtacacttagg C/T ccagaatgttctctaatgct1837ABCC716intron 3 + 13704tttttccaaataaaaaaaaa A/Δ tcaggtgatatctgtaaatg1838ABCC717intron 3 + 13758tattaaagaacatgatgctt A/G aaacagattagggaaaacta1839ABCC718intron 4 + 240ctctgttqtagttttttttt T/Δ ctcctaatcatgttatcatt1840ABCC719intron 4 + 376ttatgttcagcaagaagagt A/G taatatatgattgttaatga1841ABCC720intron 4 + 586tgtccagacaagagaccaaa T/C tgccgaggcatcatttaggt1842ABCC721intron 4 + 1089tttcaatctgaacattttac G/A taagtgaagactttgttaga1843ABCC722intron 4 + 1615aaagttaggtggtattgtat C/T tgtcttcctttctcaatgtt1844A8CC723intron 4 + 1946aatacaaacaaacttgagct T/C tgcctatacttttcaagaat1845ABCC724intron 6 + 783tatctaagttttggagtcaa A/G tagcactttgtttgaatccc1846ABCC725intron 6 + (1128-1131)gattgattgattgattgatt GATT/Δ tacagagatcagagagctgg1847ABCC726intron 7 + (731-732)gtagcaatgagaccattttt (T) cttcagttgagctccatgtt1848ABCC726intron 7 + (731-732)gtagcaatgagaccattttt     cttcagttgagctccatgtt1849ABCC727intron 7 + 1434gaatgtttggttgtaacctg T/C ataatctggcatgaaatttt1850AHCC728intron 8 + 752catgctctcttctcagtccc A/G ttccttcattatatcaccta1851ABCC729intron 8 + 1109tatggccaagacttcagtat G/A cgtggacttaattcttcctt1852ABCC730intron 8 + 1312atgaagacattcattttttt T/Δ ctccgtccaatgttggatta1853ABCC731intron 9 + (6521-6522)gtgtgtgtgtgtgtgtgtgt (GT) ttttttaacagggatttggg1854ABCC731intron 9 + (6521-6522)gtgtgtgtgtgtgtgtgtgt     ttttttaacagggatttggg1855ABCC732intron 10 + 2119gaacactttatagttttttt T/G ggacaaaagatctagctaaa1856ABCC733intron 11 + 3867tttttcttcaagaaattaga A/Δ gaggggagaaattggtttaa1857ABCC734intron 11 + 11844tgaatcaaaatcatctaaaa A/Δ gctttcaqaaaccagacttt1858ABCC735intron 11 + 12144atattaaacagagttacata T/C acttacaacttcatacatat1859A8CC736intron 11 + 20975gtgtggatagtaaatgccag G/A gtaaatcacatagcatctaa1860ABCC737intron 11 + 27057atggaagagaaqttttagta G/A aggggaggaaygaggaggtg1861ABCC738intron 11 + 27131gagagagacttttttttttt T/Δ aaggcgagagtttactacct1862ABCC739intron 13 + 152gtattaactcaaatctgatc T/A gccctactgggccaggattc1863ABCC740intron 13 + 287tttgcagtatcattgccttg T/C gatatatattactttaatta1864ABCC741intron 15 + (85-86)atacatatatatgcacacac AT/Δ aaatatgtatatatacacat1865ABCC742intron 15 + 106taaatatgtatatatacaca T/A gtatacatgtataagtatgc1866ABCC743intron 15 + 3341ggaagtataaatttgtaaat A/C actgagacccaaacttacaa1867ABCC744intron 15 + 5556tgctattgactaatagtaat A/T attttagggcagctttatga1868ABCC745intron 15 + 5919tggtagttctatgtggaaac C/A gtgaggaaataattttatat1869ABCC746intron 17 + 2479caaaaaggtatggaagtcag A/C ggagaaggagacccctatgt1870ABCC747intron 18 − 81aagtatgcaaaaaaaaaaaa A/Δ gaaataaatcactgacacac1871ABCC748intron 19 + 751cattaataaaataacaaatc A/G tatctattcaaagaatggca1872ABCC749intron 19 + 820tgacatttgtgatatgatta T/C tctaatttagtctttttcag1873ABCC750intron 21 + 1532ttacctttaacttttttttt T/Δ agtttgatcagctctcttta1874ABCC751intron 21 + 1607atgcttttggagttgggtct C/T ataaatgtatagaaatgttt1875ABCC752intron 21 + 11260atgtggaacaatcatgacta T/C atgccttttactttctctat1876ABCC753intron 22 + (130-131)agaatcaatattaaacacac AT/Δ gttttattatatggagtcat1877ABCC754intron 23 + 1828ctgtcctaaagtttaaaaag A/Δ aaaaaaaaaggaagaaggaa1878ABCC755intron 24 + (7100-7112)agtttaacatgttacaaaac1879ABCC756intron 25 + 237actcttcccccttgtcaaca C/T atgatgaagcttttaaatac1880ABCC757exon 27 + 115gggtgaagctctttccccac C/T ggaactcaagcaagtgcaag1881ABCC758exon 27 + 334ggatgaattaagtttttttt T/Δ aaaaaagaaacatttggtaa1882ABCC815′flanking − 1099aaaggggctgaaggggtctt T/C cttttgtgttcccctgactg1883ABCC825′flanking − (424-422)caccccaccaccaccaccac CAC/Δ aaggtaacgttctgccccac1884ABCC83intron 1 + 1212agcctgggcaacatagtgag A/G ccccccccgccctttctaca1885ABCC84intron 2 + 1003aggagtactgtgaatcccag C/A ctgcatgtttgggtcggatt1886ABCC85intron 2 + 1253catctcactaaggaagaatc C/T agtaaccagcaaggatgaga1887ABCC86intron 2 + 1382cccagactgcactcctgcag T/C gctgcctggctcctgtagtt1888ABCC87intron 2 + 2371tttcagagctgtctggaaat T/A tagggggcaggtgggagggg1889ABCC88intron 3 + 1957ccctacccctaycccagggg C/T ccccacatgagtatgaatgg1890ABCC89intron 3 + (2088-2089)agagaacccttcattaacca (CCA) gggcgtggctgaccagtgtc1891ABCC89intron 3 + (2088-2089)agagaacccttcattaacca     gggcgtggctgaccagtgtc1892ABCC810intron 3 + 2204taaagcacaagttatcaccc G/A tggatggatttgtccttttc1893ABCC811intron 3 + 2286ttatctccccttgaaaggac A/G ctccacagagccagaaattc1894ABCC812intron 3 + 2312cagagccagaaattctagaa C/G agggaaaagtggaggggagg1895ABCC813intron 3 + 2356ctgtgaactgcagggacaga A/G ggaaatgggtattgggagaa1896ABCC814intron 3 + 2359tgaactgcagggacagaagg A/C aatgggtattgggagaatgg1897ABCC815intron 3 + 2370gacagaaggaaatgggtatt G/A ggagaatggccagccctcca1898ABCC816intron 3 + 2382tgggtattgggagaatggcc A/G gccctccaaggygctgatgt1899ABCC817intron 3 + 4910ggggacagccttcagctgtg G/A aattcctccagtcctagaga1900ABCC818intron 3 + 4969cattattccagtcctgaggc A/G tgagagcagaaggccgatgc1901ABCC819intron 3 + 5003ccgatgcttctgccctccat C/G ctaatgtcctcctgcaggga1902ABCC820intron 3 + 5019ccatcctaatgtcctcctgc A/C gggacccaaggtggatggca1903ABCC821intron 4 + 14ggtgagggtaagcaggccac C/T tgggccagggtggggtggga1904ABCC822intron 4 + 187agacactgcatctggcccac G/A tgtgctctaccccagggtcc1905ABCC823intron 4 + 204cacgtgtgctctaccccagg G/C tcccagagggagaggggggt1906ABCC824intron 4 + 254gttcgctgaggttggcggat G/A actttccgtagaaagggaag1907ABCC825intron 4 + 357tgtattcatatcgtcacgct G/C gtaaatgaatgagtaagtgt1908ABCC826intron 5 + 92ggcattaggtcaaaatcctg G/A tgggacaaaaggggaaactg1909ABCC827intron 6 + 4205tctgtagaaagtacatgggg G/A catgaagatcattggcttga1910ABCC828intron 6 + 5519gattcccagggaatgttaaa A/C aggaccgggtcttcctaaac1911ABCC829intron 6 + 5575tctgacccagtaccagccag G/C ggggcaagtttccatccccc1912ABCC830intron 6 + 6587gttgccatctgagatcttgc C/T ggaagtacacaagagaccct1913ABCC831intron 6 + 6747ttccactggccttttctgct C/T agtaattgctacattacagg1914ABCC832intron 9 + 191gaggaagctgcctcccggtg A/G ggacaggaagcgggcatggc1915ABCC833intron 10 + 1963cccaggagtccaacctccct T/G tgtccagctagaccatggtg1916ABCC834intron 10 + 2724cctgggacatgttttcttat A/G taaacagcatcaaaagatgt1917ABCC835intron 10 + 29389cccgcccaggactcctcac G/C tgtccaagtcacctagggag1918ABCC836intron 10 + 3094tccgaggatgtgtttttttt T/Δ ccctccgttagtcagcagtg1919ABCC837intron 10 + 3368tcctgctcatatgcggcacc A/G tcagacttctgggcaggcaa1920ABCC838intron 10 + 8897ggtattgattaaaagcctca C/T gggcagagaaattcgccatc1921ABCC839intron 11 + 308tgtgtattgtagaagtgatg G/A gaaatccagaacagaaagct1922ABCC840intron 11 + 1171gccctctcatttcccttcca G/A tgctgagcgtttccagtgtg1923ABCC841exon 12 + 7gcctctgtccacagactttc G/A tgggccacgtcagcttcttc1924AHCC842intron 12 + 356accaagaatgaggccatccc G/T tccccacgtggctgccccat1925ABCCB43intron 12 + 934tgggttcaaagatggaatgg G/T gcataactcagcaaaattat1926ABCC844intron 12 + 1370gggagggaggctggacaggg C/G atgaaggcagagcctggtgg1927ABCC845intron 15 + 412ggaggtgggacccaggatgg C/T gtttcttgggaccacaagga1928ABCC846intron 15 + 688actcccccggccccactcac A/G tctgccaccttccctccctg1929ABCC847intron 16 + 4464actcattccaagtattgatc G/A agaagagaggtaggtactgg1930ABCC848intron 16 + 4574ttgaagatcttaagttgttt T/C tggttcactcatttcgcaaa1931ABCC849intron 16 + 5011agctaaaagcaaaacagcct C/T tgacctggcaagcattccca1932ABCC850intron 16 + 7608tgtcctacttttcttttyac C/G cttataacttcctgacttcg1933ABCC851intron 16 + 7730ccagctcctagtgggctgga G/A ggaaggacatgcggttgggg1934ABCC852intron 16 + 8369ttgcaaactgagttagggcc T/C ggagagcttactgtgtgctg1935ABCC853intron 16 + 9708tgcacttgccgcctacttat T/G ccagacccaatgattgggtc1936ABCC854intron 17 + 651tatagattaatgaggctctg A/G gtccctcaaaaccttccctc1937ABCC855intron 17 + 692cccttacctctccaaaaaac A/G cttgagataccctagaggtg1938ABCC856intron 17 + 1541ctcaggatcttcctggagga C/T atggttcactcccatgagag1939ABCC857intron 18 + 580actaagcagatttctaccaa C/T tgcacctccccatccccttg1940ABCC858intron 18 + 658gaacaagcccctgagaatgc C/T ttccgcaccccctactcccg1941ABCC859intron 18 + 660acaagcccctgagaatgcct T/C ccgcaccccctactcccgcc1942ABCC860intron 19 + 93gcccttccatcgatcaccca T/C acccagccatctcactcccc1943ABCC861intron 19 + 123tctcactccccaggtgctta T/C ctgcactccagcctctccat1944ABCC862intron 19 + 219cataggggagagggcaggaa C/T ggagggaagggagagagccc1945ABCC863intron 19 + 845tagtatttaacctgcccaaa C/T gctgtgtgaagtgctgacct1946ABCC864intron 20 + 338tcccctccacaagcttagac A/G aacaggattctcctgtgact1947ABCC865exon 21 + 10tttggtgacagggcatcaac C/T tgtctggtggtcaacgccag1948ABCC866intron 21 + 192caaggatagcacaaatgacc C/Δ attgcagacttcagatggag1949ABCC867intron 23 + 17gaaggtgggtatatccaggg A/G tggccaagcagccacccctg1950ABCC868intron 23 + 67ctttctgctagaacctgaact C/T ataaaggtcttcctgtcctt1951ABCC869intron 26 + 268gtgagcgtctgcacatccaa G/C taaagattgttttctcctcc1952ABCC870intron 26 + 308cgataagtgggtgtaatttg C/T ccatccccacccatgagttc1953ABCC871intron 26 + 348cagctccctgccctcccctc A/G ctctctctccctcagccagc1954ABCC872intron 26 + 807gacagctgctgagtcaggcc G/A agccggcagctgagaaaggc1955ABCC873intron 26 + 834cagctgagaaaggcggcagt G/C gtcagatgggcttgagaaac1956ABCC874intron 28 + (118-121)cctccaaaaaataaaaacaa AAAA/Δ cagaaatgaaggaaatagaa1957ABCC875intron 28 + 1348tggggtaagcggaagacggg G/A ttgaacgctttgagtttggt1958ABCC876intron 29 + 1253ctcttagggatcttgtctaa G/T taaagaagagcagagcaaag1959ABCCB77intron 29 + 1589cagatcccagcttcctgtaa A/G cagcctcagatcaggccaaa1960ABCC878intron 29 + 2322gcgcctcacactcctataac G/A cgcacatgccctgatgcaca1961ABCC879intron 29 + 2348atgccctgatgcacacacat T/C ttcaacacgcacttactcta1962ABCC880intron 29 + 2418agacacgtcaccctcccaca C/T gtctccaccctgggggtgtg1963ABCC881intron 29 + 2494tcagtcccctcagacacatg C/A cctctctccacgcagagaca1964ABCC882intron 29 + 2735gcggccaaggagagtgatga C/T ggcagcccaggttgatcaga1965ABCC883intron 30 + 366gctcctggggctccagcctt C/T gcagcccttgtgtgtgtctg1966ABCC884intron 33 + 93ggcttcgcagtcacctcgtg G/T ccctcCagggccgaggcctc1967ABCC885intron 33 + 358agggacctgggggcagacag C/T gaggccacccttgtattgag1968ABCC886intron 38 + 54cccagggacaggactggcct G/C ttgtggccgtcatcagtgca1969ABCC887intron 38 + 466aggacattctggccacatgc C/Δ tcatcctcctcctccaagcc1970ABCC888intron 38 + 529tggcccccaccgcgggtggt A/G ttcccaccatcctgacccgc1971ABCC91intron 3 + 38tgttgtttctccttaaagag C/A tatttgtttttccccccaaa1972ABCC92intron 3 + 305gctggccttctggcttgcag T/A agttgtattttaagaatcag1973ABCC93intron 3 + 320tgcagaagttgtattttaag A/G atcagagctcttgtgaggag1974ABCC94intron 3 + 631ttctgtggaaatcagaggct G/C tctaaaatattcctaatttt1975ABCC95intron 3 + 8644tggacgcactcaacattttc A/G agttattactccttcaactc19ThABCC96intron 4 + 757aggatatcatgaaacactga A/c tcttagtaaaaactatcttt1977ABCC97intron 4 + 1022tactgtggaatttttcttgc A/c acagagatatgtatttttca1978ABCC98intron 5 − 1217cagtggtagatgtgttttct A/G ttgccatcatctacaaatat1979ABCC99intron 6 + (106-107)tatgagttgttcaaataggc (T) 7-9 cagagaattgaatgctttct1980ABCC910intron 6 + 1347tcagtcgtattcctactaaa A/Δ caaaattttgtaagttatgt1981ABCC911intron 6 + 1618ctttttatttgctgcttacc G/A ttttactaaggttggatata1982ABCC912intron 6 + 1835cttttaataaatgcaaactg C/T acacctggtctataaaaaga1983ABCC913intron 7 + 407cctatagaatttttcttttc T/G tttttctcaaaaaaattaaa1984ABCC914intron 7 + 423tttcttttttctcaaaaaaa C/T taaatgtttgttatttattt1985ABCC915intron 8 + 743ttctgtagatgaagcttaag A/T gctagatcttatttgaaaaa1986ABCC916intron 8 + 850tttttaacttattgtttgcc T/G tttcattttttaatagaaaa1987ABCC917intron 9 + 585cgaatttgctgcttttagag A/T aatctttgcaaataataaaa1988ABCC918intron 9 + 1394atttttcttcttgtaagtat G/C agtgatagagctgactgcag1989ABCC919intron 12 + 1167atttgtaagacttttaaaat G/A agataattgtgctggtgtct1990ABCC920intron 12 + 1195tgtgctggtgtctatatctt A/G ctgagaaaactagaatttat1991ABCC921intron 12 + 2123ataagtgctctcccagtgtt G/A attggacttagagcattttc1992ABCC922intron 12 + (2653-2656)caaaacagaataatgaaaag TAAC/Δ tattatctaaaataataaaa1993ABCC923intron 13 + (3043-3044)aagtcaaaatatattagtat1994ABCC923intron 13 + (3043-3044)aagtcaaaatatattagtat1995ABCC923intron 13 + (3043-3044)aagtcaaaatatattagtat1996ABCC924intron 14 + 85ttctgtgaaagtgtcccaaa T/A tgtgcctttaaattgttttt1997ABCC925intron 14 + 275agtgtcacatgtattttttc T/C ggtattcctatgtttatcaa1998ABCC926intron 14 + 453ctcatttcaaacttggctat T/C tggactctccccaggcattg1999ABCC927intron 14 + 3709atcccctagtgatgtacact G/A agcttgcctccatctttcct2000ABCC928intron 14 + 3813ctgatttatatattagctga C/T tttccaagttcagacatcta2001ABCC929intron 14 + 4000ttcttttacttcaatgtagc A/Δ ccaaatcagaaggtgacatt2002ABCC930intron 16 + 1466atcccactggatttaattac A/C ttgtgtagcttgtacaacca2003ABCC931intron 16 + 5357attttggaagagaaattata T/G aaccttccacaactgaattt2004ABCC932intron 17 + 1368aatcctggtgtttttttttt T/Δ ctttttcatttttcagtagg2005ABCC933intron 20 + 98aagtaactcaaggaaagatg G/A tttaacttgtgaaatcgtaa2006ABCC934intron 22 + 28ctcatagttcagaagagttc A/C gagcccaattcagaagagtt2007ABCC935intron 22 + 194tgaacctataaaattctaat G/Δ ccatctttggatgaggtgca2008ABCC936intron 22 + 1370ccagggacaaaagaagatga C/T gtaaacttaaggattgggac2009ABCC937intron 22 + 1487agcaagccaggaagaaagtc C/G attaagttgtatttagaaat2010ABCC938intron 23 + (455-462)atagccatgaaggataagaa AATTAGAA/Δ tgccatttgt2011tatgtttcagABCC939intron 24 + (460-465)aactctttctcttcatctgc TTTTAAAA/TTTTAA gcaagccttg2012aaggagagtgABCC940intron 24 + 595gcatgcaaaataatgaagaa A/G acaatcttgtctgacattga2013ABCC941intron 28 − 926aaatatttcagaatttgggg G/A tgtagagcatttgccgtcat2014ABCC942intron 29 + 2692cttgtaagtctttttttttt T/Δ aaagtaatgaaaatttctaa2015ABCC943intron 29 + 5464agacaacactgcttttttgt G/A tgttcacaattcaacgacag2016ABCC944intron 29 − 1830aactggctgaaaggaaaaaa A/T tcatattgctgtaaatattt2017ABCC945intron 31 + 102tgcttttgctttccacttca G/A tatccagaaaactctctcat2018ABCC946intron 33 + 877aacatggaactatagtaaat A/G tagtttttttggggttcaga2019ABCC947intron 36 + 1281aatttacacttttttttttt T/Δ gcaggagaatattttgcaaa2020ABCC9483′flanking + 197aatggagctcatgcatgtgt T/G ttcaaatatatacatgcaaa2021CES115′flanking − 983tatttccttagccagcggta T/C cacagtgtgtttagtgaatt2022CES125′flanking − 814tcacattgccttgacatcac A/C cctactgctcctccacccta2023CES135′flanking − 248agtcctgcaagggtgacacc G/Δ ttatgccacaagcagttggg2024CES14intron 1 + 22tgagtccttctgaagtcaaa T/Δ atgcggggcactttttgaaa2025CES15intron 1 + 30tctgaagtcaaatatgcggg G/T cactttttgaaatccttgtt2026CES16intron 1 + 1682aagggaatccctgagctgag C/A atgaccagcccagtggtttc2027CES17intron 1 + 1726cctccctgaagtcctcagca A/C tcttagctggttcctcgccc2028CES18intron 1 + 2716tgcttccaaggaagttcatc T/G cagtattatttgtaattagc2029CES19intron 1 + (2747-2749)tgtaattagcaacaacaaca AAA/Δ gaaaagaagctaaatattga2030CES110intron 1 + 3288ttatttgtccattaaagaaa A/Δ ctcaagcgcttagcctggca2031CES111intron 1 + 3691gagaatatgggacacccctt T/G ttcatcctctcatccagcat2032CES112intron 1 + 3819tccttcttgcatttattttt A/G gctggatgtttttatgcctc2033CES113intron 1 + 3880aaccagctcaatgggttagg G/A aggacattgatcgtcatccc2034CES114intron 2 + 74gagtcaaggcagtcccctga T/C gggctgatcctttgctctgg2035CES115intron 2 + 552atggaaggtgtgtccattca C/A cctggccaagctgggaagaa2036CES116intron 2 + 885cagtattttagatggtaaag T/C attatgatgtaatatattgt2037CES117intron 2 + 2001ttggcatgtcagggctgcaa G/A actcatgtagaaatcactcc2038CES118intron 3 + 2119cgctgagtgcatgaatagtc T/C aggcttgagggtgatgggag2039CES119intron 4 + 127taaggcatccaagccccttc G/A taattggacactacctaccc2040CES120intron 4 + 347tctgtcatgacacttagcag t/G cagcccagcaggtgaaggtt2041CES121intron 4 + (1984-1985)tgtggtcctgaaggtcctgc (C) tgacatctctgctccccacc2042CES121intron 4 + (1984-1985)tgtggtcctgaaggtcctgc     tgacatctctgctccccacc2043CES122introns + 766gaggtgggcagagggtcagc T/C cactactggattcctcagtc2044CES123intron 5 + 825ggagtagatctagcctggaa T/G agcgagtgagtcactgaccc2045CES124intron 5 + 828gtagatctagcctggaatag C/T gagtgagtcactgaccccac2046CES125intron 5 + 868ctcctagcatgaactctcc T/A cccctccactctgctgtcag2047CES126intron 7 + 68acttcttcatttcagctgtc C/G tcttgcccagggacagtttc2048CES127intron 7 + 681cctccaaaatcaacaatcca A/G ttatcgcctgtctgctagtt2049CES128intron 1 + 885aggaactatccaaagagaaa T/C acattcatatacttcgcagg2050CES129intron 7 + 2151gtcgtgtaaactgaaaatct C/G aggagttgatggcttcaggc2051CES130intron 7 + 2470atatagatatacgaattcac G/A gagtgatgcgggaagaacct2052CES131intron 8 + 128cgtgtttgtttctgaggccc A/C gagaggggtagtgactcacc2053CES132intron 8 + 2618cctgatggcaacacatgagt T/C gggctctctctaatctgtga2054CES133intron 8 + 2665aaaaattattcatcaaaggt G/A aaacctaaaattaagacatg2055CES134intron 8 + 3785ccatggcgcatggccatgcc G/A gtctatggtactggtctcac2056CES135intron 8 + 3791cgcatggccatgccggtcta T/C ggtactggtctcaccctcag2057CES136intron 10 + 222gtgggctggagaagctgcat C/T gctcacccggggctggtggt2058CES137intron 10 + 230gagaagctgcatcgctcacc A/C ggggctggtggtcacttttt2059CES138intron 11 + 1177ctagcaggtgccctgacaca C/G ctttgcacaggaaggggcag2060CES139intron 11 + 1311gccctatgctctgcgtctga A/G ctatatatagagttcccatc2061CES140intron 11 + 2025ttctcatttgggatgctaag A/G ttaaaaattagcataacact2062CES141intron 11 + 2029catttgggatgctaagatta A/C aaattagcatzaacacttcca2063CES142intron 11 + 2317cattcacaaaagctctttct T/C ctatggttggctctyagttt2064CES143intron 11 + 3887caaatatttggctctaattc C/T gcttccacctcagacagcta2065CES144intron 12 + 2311gcgcctctgggcatctcact G/A tgcatgcttaggcgccttgc2066CES145intron 12 + 2331gtgcatgcttaggcgccttg C/G ggctctgttgtttttcagaa2067CES1463′flanking + 71aacggtgatgaaagaggcga T/C gtgagaaggaaggtggcttt2068CES1473′flanking + 362ttgcatggcacttactgacc G/A ttgcacaggcctgcaacacc2069CES1483′flanking + 581atttctggattctgttagta C/T gtagaaagctctaaagcatg2070CES1493′flanking + 1348aaatctgctgctgggagaga G/C agcaaagcatgcagatcaac2071ABCB433intron 22 + 767acagtgggctgatgcataga A/Δ cctgtagcaatccaccagca2072AADA23intron 2 + 46tgtcactgaggtagttcgca A/G acattttactaagtcttcag2073AADA243′flanking + 208aatgctaaaaaaaaaaaaaa A/Δ tcactgtggtactttgggga2074A8CA415′flanking − 1005tgccatcataagcagaaact A/C tctctctcttcttggaagct2075ABCA425′flanking − 819gtctagagtctttcaaagag A/T acacattctgagatttgagg2076ABCA435′flanking − 680agcaccaccccattgcaggg C/A tggaatgacagtaatgggcc2077ABCA44intron 1 + 208tgcccttcccaggaagatgt G/A tttctctgtcctcagccaca2078ABCA45intron 1 + 234ctgtcctcagccacatgaaa A/G tcttttgcctaccgtgcctg2079ABCA46intron 1 + 510agctcacgatcaagtcacag T/C ttaactggacacattatttt2080ABCA47intron 1 + 1527gcttaacaaccagcataaaa G/A agagcagcatgggacacgct2081ABCA48intron 1 + 2077caggactgtagctgctggcc T/C aaaatgagcccattcctgtg2082ABCA49intron 1 + 2174ccctctcaatctggcctttc G/C ctggcatgggtgggcgactc2083ABCA410intron 1 + 2246gctcccagggagatggagcc A/G ctcgggctgagggccttggc2084ABCA411intron 1 + 2364ttctgtctggcacgcctccc G/A atggctccccacctgctacc2085ABCA412intron 1 + 4243ctccctggggtatgcctgta C/G gcagttaagcgtcaaggaca2086ABCA413intron 1 + 4287atgccgctctggggagggga A/C gctgagcatgattttggaag2087ABCA414intron 1 + 4309ctgagcatgattttggaagc C/T ggcagaagaggctattgtga2088ABCA415intron 1 + 4416tgcagcaaccgcccccgccc C/T ccgccaaaaacaaacacact2089ABCA416intron 1 + 4996tttacccctggaacaggcag G/A ccaagctggctggtcccctc2090ABCA417intron 1 + 5007aacaggcaggccaagctggc T/C ggtcccctccctgatacaca2091ABCA418intron 1 + 5080gtgtgtggctggtttcttag C/G aagcaccatggttccaagtt2092ABCA419intron 1 + 5152gggagatgaacgtaagtgga G/A ggcaggcctacaaggttgca2093ABCA420intron 1 + 7110ccactggatctgcttttgga A/G tcaagagtccttaagctcca2094ABCA421intron 1 + 7290gatttttgttggctttgcaa T/A ggatcacagtcatttattca2095ABCA422intron 1 + 7483tctgagcctctttccttaac T/C gcagagtgagtggctacaga2096ABCA423intron 1 + 7497cttaactgcagagtgagtgg C/T tacagagaaatctttactac2097ABCA424intron 2 + 1067tcaagcagcagcagcaactg C/A gtggagtcttcttgaactaa2098ABCA425intron 2 + 1106aacactcctatgcccctctc G/A gcacaaaatgacgtgtcccc2099ABCA426intron 2 + 1119ccctctcggcacaaaatgac G/A tgtccccccttgcttcccct2100ABCA427intron 2 + 1243cacccagcacagggactggc A/T cacatgagatgctcctgctt2101ABCA428intron 3 + 26tgttgagatccctaccatgc A/G ggggaggaagttgcacaccc2102ABCA429intron 3 + 101agcatggagcactgagtgtt C/T ttgtggctttgctgagcccc2103ABCA430intron 3 + 330tgcttgggtggagtgaatca T/C tgtaggagaaaaactcagtt2104ABCA431intron 3 + 470tgaagtcaggtttacaaagt C/G aagtttacttcttgggagaa2105ABCA432intron 3 + 634tgaaaaccaatgacccctct T/C ccaagaaaaatggccacata2106ABCA433intron 3 + 1016ccttgggggagctcagtatg A/G ttcttccaggagaagcctgc2107ABCA434intron 3 + 1554gaaagttgggtttcatgttt T/C gcactcacattatgagtgaa2108ABCA435intron 3 + 1686ctagacattctcacagagcc A/C agggcagcaaggcggggctc2109ABCA436intron 3 + 1823ttcacctctctccatggacc A/C gtctcccctgctcctcaatg2110ABCA437intron 3 + 1938caaattcctgggaacaaatc G/A ggttgacccagctttattct2111ABCA438intron 3 + 1951acaaatcgggttgacccagc T/G ttattctccctgtcccatca2112ABCA439intron 3 + 2063ggctgtcagagcctacctgc G/T tgaatgggtggaagggcagg2113ABCA440intron 3 + 2079ctgcgtgaatgggtggaagg G/A caggtctcagagaattgggt2114ABCA441intron 3 + 2186agacacacagagcatgggac C/T gagaggcgagcagaccctgc2115ABCA442intron 3 + 2214gagcagaccctgccaaaact G/A ggagactgaatagatcgctc2116ABCA443intron 4 + 2717cgtgcttctgcacagccacc T/C gggaaggtatgccgatggtt2117ABCA444intron 4 + 2802attctcagcagggaggatta A/G tggtaaaagcccaggaatgg2118ABCA445intron 4 + 3182cccccagagccacagcagcc C/G tgtctcctgggtggtcttgt2119ABCA446intron 4 + 3515agtataataaaagcaggagc C/T atagcccccaactctcaaga2120ABCA447intron 4 + 3907aggggagtgacagtgggcac C/A actctcagggaacccattac2121ABCA448intron 4 + 3923gcaccactctcagggaaccc A/G ttactgtgagagaagccact2122ABCA449intron 4 + 3952agagaagccactgtgccact G/C tgtggtcgaacttcaagacc2123ABCA450intron 4 + 4125ggctgtccagcacacagggg C/A aggcctcttggccactgggg2124ABCA451intron 4 + 4637aatcacttgccccaaggtca C/T cttaactgttaggtgtictt2125ABCA452intron 4 + 5319acctctaggggctcccagag A/G ccccaagaacagaaccttcc2126ABCA453intron 6 + 2266cacccttgcagacctcagac G/A ggtcctgggggcttgctttc2127ABCA454intron 6 + 2857ccagaggagaaagctctgcc G/A tagtcggcctcagttaacca2128ABCA455intron 6 + 2861aggagaaagctctgccgtag T/C cggcctcagttaaccacgga2129ABCA456intron 6 + 3078gcaggcattaaaatgggact T/G tgcctttattgctcctgggc2130ABCA457intron 6 + 3375ttaaatgccaaatgagttct C/G attaacaaayaaayagggaa2131ABCA458intron 6 + 3412ggaaaatctcagtaaaccac C/T gtgacggcatctacccactt2132ABCA459intron 6 + 4635ctttcgggtggatattgcta C/T gtcaagtytctgggaaagcc2133ABCA460intron 6 + 5576ccactaatatgcattcttta G/C taagcggtctcaatatacac2134ABCA461intron 6 + 5925aaaaagcattttgctcttat A/G aaagcacagcctcttttgag2135ABCA462intron 6 + 6916cccagacaacccaagcagag A/G cctcttagggccggaatcat2136ABCA463intron 6 + 6993agcacaggatcaaggcctaa A/G ggccccttagactgacctca2137ABCA464intron 6 + 7242ttgccattttgatctgtgac T/C tttttttccagaaatagttt2138ABCA465intron 6 + 7454atggagggctccctcgggac T/C aggcagtattcagagatgta2139ABCA466intron 5 − 264aaacagcaattagaatcact T/C tgaaatagtgatagtattta2140ABCA467intron 6 − 86aggagggggggagttttcaa A/G catataggagatcagactgt2141ABCA468intron 6 − 32tatacctacaaacatatata T/C atttaaaaaattgttttact2142ABCA469intron 7 + 828gatgtgggaaagttagagaa G/C agcccattgtactaatgctc2143ABCA470intron 7 + 1019aggcttcttgactgtctaga T/C agcaagtctaatcatttgtg2144ABCA471intron 8 + 374gtaaacacggctgtgggatg C/T ttttacaaacacaatatcgt2145ABCA472intron 8 + 874tgatgagcttgttattggtg G/A ggtacagcctattaatttag2146ABCA473intron 9 + 605tcgtgtctctgtcttgatct C/T tgtctggttttaggccaact2147A8CA474exon 10 + 1268aacttttgaagaactggaac G/A cgttaggaagttggtcaaag2148ABCA475exon 10 + 1269acttttgaagaactggaacg C/T gttaggaagttggtcaaagc2149ABCA476intron 11 + 5236ggcctggcacagatgaaata C/T tattcagagttcacagtgta2150ABCA477intron 11 + 5270cagtgtattttcatttcata A/G tatatttgattttcaggtct2151ABCA478intron 11 + 5687atcatgtaatgtactttaga C/G tcagatatataaatatttgt2152ABCA479intron 11 + 7136Qacttcccaacttaccttag T/C ggagctgtagtcacatagaa2153ABCA480intron 11 + 7180acgctcataaatgcttctct G/A ggctgtaaaggttgaatttt2154ARCA481intron 11 + 7701gttagacgcaggcattacct C/T gtggctttgccccagtgtya2155ABCA482intron 11 + 8073gggatgtttgcccacatcca T/C tggcatttctcaaaaggaac2156ABCA483intron 11 + 8586cagctgcctgcgctggagag G/A gctcaaacctcttccgccag2157ABCA484intron 11 + 8893agcaaagatgccctttgact C/T cttttcccactagtggtgct2158ABCA485intron 11 + 9257gaatgaggtcacttgctgca T/A ggcaggtggcttccccatga2159ABCA486intron 11 + 11234cccaaataattttgtttttc G/A ttttaggaattaaatttcag2160ABCA487intron 11 + 11641aagaaacaaacatttattga C/G aacttttggtgtgtgacctg2161ABCA488intron 11 + 11808tggtatttcttaaagaaata C/T caattccatttccttttaac2162ABCA489intron 11 + 11923aagatcattattaatatctc A/G tcagcgtggtgtoacttaag2163ABCA490intron 11 + 12055tgagaacattacatgggacc T/C gcccccagggcatggaggct2164ABCA491intron 12 + 305tcaccctgtggtcgggaggt G/A tgagtgagctatccaagccc2165ABCA492intron 13 + 1461ttgggtttcagtgtcagcat G/A tagctgtctactcagatccc2166ABCA493intron 14 + 1237aagggcaccaaagttctaag A/G gatgaggggaggagctgagc2167ABCA494intron 14 + 1268ggagctgagccccttgtcct T/C atctaggtttcccttgttct2168ABCA495intron 14 + 1309ttcccatccctcagtctgct T/C cttttcccagtaccaacatg2169ABCA496intron 14 + 2979tcacctgtgtgggtagcaaa C/T ctcagaaaatcaagtataga2170ABCA497intron 17 + 23gagtcctttaaaacacaaat C/G ttaatgtttgaaatcaactc2171ABCA498intron 17 + 204tgctgggccctgtgtgatca T/G gaatggctgatcatggatga2172ABCA499intron 17 + 715gggactcccctagagctgaa G/A tactctcccatctgtttgtt2173ABCA4100intron 18 + 1282ggaagatgaagaacctaagc C/T gcttccagaaattcatgagg2174ABCA4101intron 18 + 1531gtctaccccttaggaccatt G/A taagagtacattgaggtaat2175ABCA4102intron 19 + 1802actgctcacccaggaggcaa C/A gcctcgagtcatgcaccgaa2176ABCA4103intron 20 − 195acagattattccattgtatg C/A atgaactatgtaagccatcc2177ABCA4104intron 23 + 755ctggctgccgctggggtttc C/T tatgtccatccacggggagg2178ABCA4105intron 26 + 497ctgagttaggtctagatggg G/A acactttggatgaatgagga2179ABCA4106intron 26 + 702tatcaaatacaactcagacg T/G cagtctcctggcccctttga2180ABCA4107intron 27 + 156cctgctttccaaacccttat C/T ttgattcttggtaacatgaa2181ABCA4108intron 27 + 385tttaaagaacagtgagtcac G/A tgacttgctctttgaaatyc2182ABCA4109intron 28 + 299gacatgccatcagaccactg C/T gagtgttcaggcagcctacc2183ABCA4110intron 29 + 168ctccttccacacttgtgtgc A/G gggacattcactacctccta2184ABCA4111intron 29 + 497gctgtcaataaggaccaaaa C/T agactaatttcaaattcctc2185ABCA4112intron 29 + 567agctgctaggaataaaaagg G/A agacaaaacgatccacaagc2186ABCA4113intron 29 + 577aataaaaagggagacaaaac G/A atccacaagctagagatggt2187ABCA4114intron 30 − 2494aatcacagctcatctgctgc A/G tcatagggatcccaaaagaa2188ABCA4115intron 30 − 2169aatgtaacagccaaagtcct A/G gaaaaaggcaagccagttcc2189ABCA4116intron 31 + 535ctaactgtgaattatcatct T/G tgatcactgccctttgagat2190ABCA4117intron 31 + 957gagttctcagcagcaaatct C/A cagtatgaaattttggattt2191ABCA4118intron 32 + 445tccagaggtttagaacctca C/T caagtgggactctaggagcc2192ABCA4119intron 33 + 48aggatttttgacttgcttaa C/T taccatgaatgagaaactct2193ABCA4120intron 35 + 129tgtttagtcaggcacatatg A/C acatccgactttcaaataag2194ABCA4121intron 35 + 209tctccccaacatttatgtgg C/A aagtaagtttacatttggtt2195ABCA4122intron 36 + 3209ttgaggcctccacaccccac G/A gcaggttgccccctgaggaa2196ABCA4123intron 36 + 3542cttggcagggaggtagggca T/C ggggtggggtaggaggacta2197ABCA4124intron 37 + 304ctgggggcagccattcccca A/G cccctcacccagctctgact2198ABCA4125intron 37 + 525taaaLttgaatgagtaattc A/G tccatctcggcctcagtttc2199ABCA4126intron 37 + 766tgttgcaggctggagaaccc T/G cctatgaattgtacagggct2200ABCA4127intron 37 + 856aaaaccccatgaagtggtca A/G ggcaggcatcattatctcca2201ABCA4128intron 38 + 62tagtagagtatgtgttggtc G/A agcagagccaggggcaagca2202ABCA4129intron 38 + 761tccttgggcaagttaatctt G/A atgaagagactgggtgttct2203ABCA4130intron 38 + 1315cagagtcayactctggaaag G/T cggggggataagaacacagc2204ABCA4131intron 38 + 1316agagtcagactctggaaagg C/A ggggggataagaacacagcc2205ABCA4132intron 38 + 1526ccaacatttgctaagcaccc G/A ccttcaaaaacctggtattt2206ABCA4133intron 38 + 1561cttattttcatgtaaattatc C/A gatacacagctgctatggaa2207ABCA4134intron 38 + 1562tattttcatgtaaattatcc G/A atacacagctgctatggaaa2208ABCA4135intron 38 + 1674ccagctgaacaccacgtgcc G/A ggtgtgtgctgatataaaca2209ABCA4136intron 38 + 2867tgcctggctagacaaagggg A/C agctcccgcccactagaaac2210ABCA4137intron 38 + 2874ctagacaaaggggaagctcc C/T gcccactagaaacttgcagg2211ABCA4138intron 39 + 123gaggggaccttgttgggctg G/A aggtgtcctgccagctggag2212ABCA4139intron 40 + 1904gacactgtacagccagccca A/C tcctgaccccttttcttcat2213ABCA4140exon 41 + 5814ggaaataaaactgacatctt A/G aggctacatgaactaaccaa2214ABCA4141intron 41 + 122atttggttcccagttttatg T/G agggtcatcatccctgtgtt2215ABCA4142intron 41 + 287tctgcagagcatgggtcagc C/T tcgagatgtctcagtactca2216ABCA4143intron 41 + 411cctcttcccctccttgctct C/A accctgtctcagttctcagt2217ABCA4144intron 41 + 443gttctcagtccggtttcttc G/A tatcttgcagatttatccag2218ABCA4145exon 42 + 5844cgtatcttgcagatttatcc A/G ggcacctccagcccagcagt2219ABCA4146intron 43 + 328tttgtagcctattcctataa A/G aatgcaccattgcttcccat2220ABCA4147intron 43 + 345taaaaatgcaccattgcttc C/G cattacctccctccacacat2221ABCA4148intron 43 + 370acctccctccacacattttt A/G caaaacgtttcagggagttt2222ABCA4149intron 43 + 376ctccacacatitttacaaaa C/T gtttcagggagtttactgag2223ABCA4150intron 43 + 670ttaaacagactggtccccta T/C gggcaggacagagaggatga2224ABCA4151intron 43 + 701gagaggatgagctctcactc A/G tctgcctctttcctggctgc2225ABCA4152intron 43 + 822gttaggtgctgctgacatct G/A tccagcatctgcttgactgg2226ABCA4153intron 43 + 915ggcaggacgagtcctgagca C/T gcttcactggctcagacagg2227ABCA4154intron 43 + 1242actgagctggacgctagaaa G/T aaactataggcttaagacac2228ABCA4155intron 43 + 1671tagagaagtttacttccatc G/A ggacacatgcatcttttcta2229ABCA4156intron 43 + 2036ttgaaggatactcagtaatt G/A ctttttttcttgcagtattt2230ABCA4157intron 45 + 176gtgtttggttcacacagctc C/T ggagaaaaacaagtcacggc2231A8CA4158intron 45 + 193ctccggagaaaaacaagtca C/T ggcacagccttgacttggga2232ABCA4159intron 47 + 238cccaagtctctggatggggc A/G tctgatcaggatgcatgcag2233ABCA4160intron 47 + 269atgcatgcagagcctggctg C/A gatgagggagggctgctacc2234ABCA4161intron 47 + 326accacttatctcaacagatc C/G gggacctytggcctatttac2235ABCA4162intron 47 + 715aagtcactaagctggttggt C/A ggaggaacagcacataaccc2236ABCA4163intron 47 + 734tgggaggaacagcacataac C/T caccttatctatgctgaggt2237ABCA4164intron 47 + 931ggacactgcatagatatcta T/C agaaatagcagcatgtcagg2238ABCA4165intron 47 + 1260acactctctggtggaccatc A/C ctcatccaagagagggtaac2239ABCA4166intron 48 + 1663tctcgctcttctcttacctc T/C aggtgtttgtaaattttgct2240ABCA4167intron 49 + 127agagagccccacccacacca C/T ggtccctaccaagtccccac2241ABCA4168intron 49 − 1545gcagttaattccaaactttt C/A tcccttattggatgagatca2242ABCA41695′flanking − (1441-1400)gtaaatctcagttgaatcag (TCA) 14-162243atttttcagtctggttcctgABCA4170intron 1 + (4712-4720)gaggggcggggactataggc (A) 8-10 cagcctaattcaaggatgag2244ABCA4171intron 1 + (7295-7304)ttgttggctttgcaatggat CACAGTCAT/Δ ttattcactc2245attcattcacABCA4172intron 2 + (951-952)cctgtccatcagactcttct TT/Δ acctctccccgaggagccca2246ABCA4173intron 3 + (2642-2653)tagcatgagatattattact2247ABCA4174intron 4 + 5202cacaaagcatctgacacccc C/Δ atccagccctggctaacttt2248ABCA4175intron 6 + (3029-3044)cctgaaagaaattgcaggca2249ABCA4176intron 6 + (5138-5139)ttcatgacagatcagatgtt (G) cttttatggatttacaaaga2250ABCA4176intron 6 + (5138-5139)ttcatgacagatcagatgtt     cttttatggatttacaaaga2251ABCA4177intron 6 + 5985tttccttcttcaaacccccc C/Δ agactaggagaaggtctgtc2252ABCA4178intron 6 + 6094gggacggacagaaaaagacc T/Δ agtttctgttgagccaaaga2253ABCA4179intron 6 − 161tattttttcaattaaataaa A/Δ gagttttttgtttctaaaag2254A8CA4180intron 7 + (809-810)gggccgagtatgcacactga (TG) tgtgggaaagttagagaaga2255ABCA4180intron 7 + (809-810)gggccgagtatgcacactga     tgtgggaaagttagagaaga2256ABCA4181intron 8 + (472-484)ggtcttctatggggtaaagg2257ABCA4182intron 9 + (48-71)gtaccctggacctcccagaa (GT) 11-132258gagagagatgtgccttcctgABCA4183intron 9 + 554ataggggcagaaaagacaca A/Δ ccaaaagttctctctcactt2259ABCA4184intron 10 + 11catgatcagagtaagggggg G/Δ ttggaggatggggaggggag2260ABCA4185intron 11 + 4242ggagaggaaatgatgttagt G/Δ cctcctgtaaataggcccag2261ABCA4186intron 11 + (13743-13753)tgctcttttgtgggtaatgg (T) 9-11 cctcttccaggagaagaaaa2262ABCA4187intron 13 + (636-637)cggggtggagggttgggagg (G) ctcatttgtcattatagatg2263ABCA4187intron 13 + (636-637)cggggtggagggttgggagg     ctcatttgtcattatagatg2264ABCA4188intron 18 + (569-570)tgctgccctcatcttctctc TT/Δ aaactagttctgtatttctc2265ABCA4189intron 20 − (304-297)tataacctgacttttttttc (A) 7-9 ggattgcttttttaaacata2266ABCA4190intron 22 + (1236-1246)gctgaattagttcccttggg (T) 9-11 agttaactcctgatttttgc2267ABCA4191intron 26 + (4626-4635)gataatcaatgctgtaaggg (A) 9-10 tggcattagagatccagacc2268ABCA4192intron 33 + (115-116)taaaaccgtcttgtttgttt GT/Δ ttacatggtttttagggccc2269ABCA4193intron 36 + 1078taagcagctatcacttaaca A/Δ tacaaaaccagagattatca2270ABCA4194intron 37 + (290-291)ccttgaccaaagcctggggg (T) cagccattccccaacccctc2271ABCA4194intron 37 + (290-291)ccttgaccaaagcctggggg     cagccattccccaacccctc2272ABCA4195intron 38 + 896ttaaaaagagggggaaaaaa A/Δ gaaggcagtcgctgcagggc2273ABCA4196intron 38 + (1209-1210)gtggacccctgagactgact CT/Δ ttccagatcttgttagggtt2274ABCA4197intron 38 + 1322actctggaaaggcggggg G/Δ ataagaacacagccccagca2275ABCA4198intron 38 + 3107gggccccacctgctgaagag A/Δ gggggggtggggtttgcccc2276ABCA4199intron 40 + 152ttttctccaataatacaagt A/Δ gaggatcgggttaaaatagg2277ABCA4200intron 43 + 330tgtagcctattcctataaaa A/Δ tgcaccattgcttcccatta2278ABCA4201intron 43 + 1354tttaattggcccagccatgc C/Δ tttggtggcttttgtcattg2279ABCA4202intron 47 + (1305-1308)catcctgctgaaggagaaag AAAG/Δ caccaatggcccaagcccta2280ABCA715′flanking − 1598agaatgttggccccctcccc C/T tcctgcatcctctgcagaag2281ABCA725′flanking − 1594aatgttggccccctccccct C/T ctgcatcctctgcagaagcc2282ABCA735′flanking − 1180ggccagtgagtgacgggcag G/A tcgcccaaatagcagcgtgc2283ABCA745′flanking − 460agagctggggtcgtgcctcc A/G gctgggcaactgcctgtctc2284ABCA755′untranslated − 9ctctgtcccgtcccctgccc A/G gtctcaccatggccttctgg2285ABCA76intron 5 + 91ccccgggccaaggacctccc G/A ttccaggcatccaggctgtc2286ABCA77exon 6 + 563cagcttgttggaggccgctg A/G ggacctggcccaggaggtac2287ABCA78intron 8 + 103gccggagggtcacggaaact A/G tttgaagaagtaggagttag2288ABCA79intron 8 + 166tgcggaggatcagaggcaca C/T gcaggagcaaggcagagggg2289ABCA710exon 9 + 955accggaccttcgaggagctc A/G ccctgctgagggatgtccgg2290ABCA711intron 9 + 421tttttttttttttttttttt T/A taagagatggagtctcactc2291ABCA712intron 9 + 463gttgcccaggctggactgca G/A tggcgagatcttggctcact2292ABCA713intron 9 + 467cccaggctggactgcagtgg C/T gagatcttggctcactgcaa2293ABCA714intron 9 + 488gagatcttggctcactgcaa C/T ctccgcctcctggattcaag2294ABCA715exon 10 + 1184cgcacacgctgatgtggggc A/G cctggtgggcacgctgggcc2295ABCA716intron 10 + 10gagtgacggaggtgagggcc T/C gtccacctgcggggtctgtt2296ABCA717exon 11 + 1388cctgggccccggccacgtgc G/A catcaaaatccgcatggaca2297ABCA718intron 12 + 1155caggctgcgaactttgcacc T/G ttacaccactccacgtgacc2298ABCA719exon 13 + 1824cccttcctgctcagcgccgc A/G ctgctggttctggtgctcaa2299ABCA720intron 13 + 55ggtgcgctggagggtgacag A/G caggggcggccccacgtggg2300ABCA721intron 13 + 78ggggcggccccacgtgggtg C/A gcgcccccaggccaatccag2301ABCA722exon 14 + 1851cgttgcctctcacagctggg A/G gacatcctcccctacagcca2302ABCA723exon 15 + 2153cgagggcgcgcagtggcaca A/c cgtgggcacccggcctacgg2303ABCA724intron 15 + 34ggcggggctccgggccgggt C/G gcacctgctttgcgggaggc2304ABCA725intron 16 + 8ctggacccaaagggtgaggc A/c ctacgaggcttaatagctgg2305ABCA726intron 16 + 161tcccgcagcttttataggcc C/T cggcccagcaggtcccggat2306ABCA727exon 17 + 2385caccccatctctgcagtgct G/A gtagaagaggcaccgcccgg2307ABCA728exon 17 + 2421cccggcctgagtcctggcge C/A tccgttcgcagcctggagaa2308ABCA729intron 20 + 166cgagacagtaagagttgggg A/G tagacagaggttcccctgga2309ABCA730exon 21 + 3027ctgctgggagaccgtgtggc C/T gtggtggcaggtggccgctt2310ABCA731intron 22 + 1386tggtggggcgtgagccgggg C/T tccctgaagcacccctttgt2311ABCA732exon 23 + 3417gggatctccgacaccagcct C/G gaggaggtgtgaggcctggg2312ABCA733intron 23 + 147ggagctctggtggctcagat G/A tcccttgggaaggcctgggg2313ABCA734exon 25 + 3528gctggcctagacgtaaccct A/G cggctcaagatgccgccaca2314ABCA735exon 29 + 4046cccagcctgccagtgtagcc G/A gcccggtgcccggcgcctgc2315ABCA736intron 30 + 81ccccctgggagctctcccgg C/A ccccccggccctcagctccc2316ABCA737exon 31 + 4239ctgcctgcatggccccacag A/G tacggaggcttctcgctggg2317ABCA738intron 32 + 1caaggagcagctgtctgagg G/C tgcactgtgagtccctccac2318ABCA739intron 33 + 54ccactgcttgccactgccct G/A tctggccccttgtaggcagg2319ABCA740intron 34 + 245cagtactttgggaggccgag G/A caggaggactgcttgtggcc2320ABCA741exon 36 + 5O57ggtgagccggatcttgaaac A/G ggtcttccttatcttccccc2321ABCA742intron 38 + 65ggcccactcacctttctgaa A/G gacctgcactctcccaggta2322ABCA743intron 40 + 154ctctacctcccacacgcgga C/G caggccctgagacacccctg2323ABCA744intron 40 + 277ttgagcccccggcgccccca T/C ccccagcgtggcccgggaac2324ABCA745exon 41 + 5592gtggcccgggaacccagtgc T/C gcgcacctcagcatgggata2325ABCA746intron 41 + 286ctccttgactctgccttctg T/C ggccctgcccacttgctcct2326ABCA747intron 41 + 389tggccgttcccagtttgcag C/T cgtttcactgcctcttccat2327ABCA748intron 41 + 991cacactatggccctgcccca C/T acccatcccagctccaccca2328ABCA749intron 41 + 994actatggccctgccccacac C/T catcccagctccacccacac2329ABCA750intron 41 + 998tggccctgccccacacccat C/G ccagctccacccacaccatg2330ABCA751intron 41 + 1001ccctgccccacacccatccc A/G gctccacccacaccatggcc2331ABCA752intron 41 + 1051actcatgctggctccaccca C/T accatggccccgccccatac2332ABCA753intron 41 + 1131tgccctgccccatgcccatt A/G tgcccctgctccacactcaa2333ABCA754exon 44 + 5985gaagcgctctgctcgcgcct G/A gccatcatggtgaatgggcg2334ABCA755intron 44 + 201ggcgcaggaccaggaggcgt G/C agccgggggctctgggtgga2335ABCA756intron 44 + 233ctgggtggatttagaagaca C/T aatcaggtgtgcgttggagt2336ABCA757intron 44 + 313agttaggggagggcctggtt A/G gtgggcggggccataggaaa2337ABCA758intron 44 + 337ggcggggccataggaaagtg G/C ggcgggggtatttattgtgt2338ABCA759exon 45 + 6133tggcggccgagttccctggg G/T cggagctgcgcgaggcacat2339ABCA760exon 45 + 6159ctgcgcgaggcacatggagg C/T cgcctgcgcttccagctgcc2340ABCA761intron 45 + 27acggcgccggggtcgggctg G/C gggaggcaggctgggggcca2341ABCA7623′untranslated + 6580aaggctggagagaagccgtg G/C tggtgaaaccgtgtgcatgt2342ABCA7633′flanking + 108caagctgagtgtgcacatac G/A ggccaagtggcgattcatag2343ABCA7643′flanking + 376cttacaggagcccggtgtcc C/T ggagcacaggccagggccgg2344ABCA7653′flanking + 687cagcagggagacttggggag G/A ggggagagagttcacactgc2345ABCA7663′flanking + 688agcagggagacttggggagg G/A gggagagagttcacactgcg2346ABCA7673′flanking + 1169cctcgacctgacccacttca C/T ggggctgcagggcgggtgat2347ABCA768intron 9 + (398-422)aagagatggagtctcactct2348ABCA769intron 12 + (175-184)ggggactctgagggtctggt (G) 8-10 actctgagggtctgggggcc2349ABCA770intron 30 + (81-87)ccccctgggagctctcccgg (C) 6-7 ggccctcagctccccttccc2350ABCA771intron 34 + (349-361)cagaaatgtgctttgggtga2351ABCG115′flanking − 1772cctgggcttcagcaggggcc T/C cacacctgcaatgggtgcct2352ABCG125′flanking − 1754cctcacacctgcaatgggtg C/T ctggggagagggtgcagatg2353ABCG135′flanking − 1450tccaaagcccagatttggtg T/C ttttggggctcttttggaat2354ABCG14intron 1 + 4ctggtggaggaagaaaggta G/A ggagggcggctgctttgtgt2355ABCG15intron 1 + 576agctcaggaggtgtctggaa C/T gccacacagtgcaggagttt2356ABCG16intron 1 + 1426aattctccttctcaacttaa A/G gaaatattttatagaaaaat2357ABCG17intron 1 + 2342agagcctgcaatgggccgcc G/A agggacctgcccatgactca2358ABCG18intron 1 + 2399gaggggttgacagacaggat A/G tgtctgctgtgttccagctg2359ABCG19intront + 2406tgacagacaggatatgtctg C/G tgtgttccagctgctggttt2360ABCG110intron 1 + 2911ccctctctgtgcccactgtt G/C tcccaacaccagcctgttct2361ABCG111intron 1 + 4363tataatagattcctagcaga A/G aacataattgtgagaggaac2362ABCG112intron 1 + 4752gctttcagagcccattcaca C/T aagggtctcattttattagg2363ABCG113intron 1 + 5026ccaggtctgtgggatttcag G/A ccaaaaaggagcgtagcaag2364ABCG114intron 1 + 5532gggttaaatattccgggcag C/T gccaagtcagattatctgta2365ABCG115intron 1 + 5681gctaaagtgcatggaaggca T/C catgaataaatcctttcagg2366ABCG116intron 1 + 6290tcacagcagattcatgagag T/A tgaatgtttagccgccatgt2367ABCG117intron 1 + 6386agatgctcccctccagccag C/T acattttctccctgtgagca2368ABCG118intron 1 + 6758acctgcatggtgggtgcccc C/G ctgccttcctctactgcctt2369ABCG119intron 1 + 7029tgggtcagattaaatatatc C/T tgaaggactaaaccgtaaaa2370ABCG120intron 1 + 7176ttgctcacattgtgaaaaaa C/G gcaaaaagatgggttttcag2371ABCG121intron 1 + 9243gcctgagagcgctggcagta G/A gaagggtcgccagtgtggac2372A8CG122intron 1 + 11224tctggtttagagaggaaaat G/A ggcagcatcattttgtcacc2373ABCG123intron 1 + 11371gggctctcttggagcccttt T/G tctctcccagccctgcgtct2374ABCG124intron 1 + 12420gggatttcgaatctcaacac T/C ctgagctctgtgctttcccc2375ABCG125intron 1 + 12484gagttgtcctccaagagaat C/T tttgtatggttccttttctg2376ABCG126intron 1 + 12955ctggggttggtgggagccac A/G gtctcacacctattggcagg2377ABCG127intron 1 + 12985ctattggcaggtcgtgaaca T/C tgttcttggatttgcaaata2378ABCG128intron 1 + 20041acatggccggcttcccttct T/C cctcggaatggcctggaatt2379ABCG129intron 1 + 20046gccggcttcccttcttcctc G/A gaatggcctggaattcgatc2380ABCG130intron 1 + 21058acaagacttagaatttgacc G/A tgattttaaaactattctaa2381ABCG131intron 1 + 26189ttcttggatgtggccatgca C/T gggggcaagggtttgatgag2382ABCG132intron 1 + 27453atcatgtggtttgggggaaa G/C ctgggaccccacttggtaca2383ABCG133intron 1 + 28098caggaaggagacagctgctg G/C tgctgcttagagttaggcgc2384ABCG134intron 1 + 29670ccttcagttgtaataggcag A/G aggagcgcacgaggaggctg2385ABCG135intron 1 + 29810attgtttctcctggttttgt T/C tgtgttgactttccctttaa2386ABCG136intron 1 + 36220cagatcccttggttgctggg C/T aggtagtaggagaggttttt2387ABCG137intron 1 + 36341aaacagggcttgagtcctcc G/A taagggacaggagaccttcc2388ABCG138intron 1 + 36370aggagaccttcccacatcct G/A gcaagaattcttcttttttc2389ABCG139intron 1 + 36662cagactaaatgcacaattct G/A gattgagctgactgtattga2390ABCG140intron 1 + 36914tgtaaaagatggagaagaac A/C cagtagtcgcttgctgtgag2391ABCG141intron 1 + 37029tgtgactcatggcctctgcc A/G ggggactgggctggccctgc2392ABCG142intron 4 + 1196tgaaaagaaaatggatgagt C/A gaaaccaaaagagagaaaat2393ABCG143intron 4 + 1200aagaaaatggatgagtggaa A/C ccaaaagagagaaaatgtgg2394ABCG144intron 4 + 2041aagcagaggcttttccaccc G/A gagactcaagaagctgctcc2395ABCG145intron 4 + 2490gtggtgaagtagagctgagc A/T cacgggggagccctccatcc2396ABCG146intron 4 + 2552atggccttgggccactgcct G/A ctgtgccccgagccgagctt2397ABCG147intron 4 + 2822cagcaggctccgtgctgaag T/C cacagcaagccaggcccttg2398ABCG148intron 4 + 2850agccaggcccttggcctgcc G/A gagctggaagacccagaaca2399ABCG149intron 4 + 2919gcctcccaggagtagctaca C/T gggacccgaaggcagatggc2400ABCG150intron 4 + 3506ggcagcctgggctgccgaga T/C cctccctggagcgcccgccg2401ABCG151intron 4 + 3538cgcccgccgggaagccccag G/A ggggctggagctacaagtgg2402ABCG152intron 4 + 3554ccaggggggctggagctaca A/G gtggccttgcaggttttttg2403ABCG153intron 4 + 3721ccagctcatgggcaggggtg C/T ggagggaaaggcacccacag2404ABCG154intron 4 + 3852caccagagccactcagtcgg C/T Caagagcgtcgcccagtggt2405ABCG155intron 4 + 3921gaagaccagcagtcgatgcc A/G gctgggaagagggctctgcc2406ABCG156intron 4 + 3979acccaccagccttttccaga C/T agccttccagaagctgtttc2407ABCG157intron 4 + 4291gagccgctggagtagggtcc G/A cttgctatggctcccagggg2408ABCG158intron 4 + 4922gaaaccaccagaaattgtgc A/G tcctctcatgtgtccattca2409ABCG159intron 4 + 4968tattgactggacaccttctc C/T gtatggggcactgggctagg2410ABCG160intron 7 + 672atcagtaacgggtcactaac G/A gatgctgctgagtggggcag2411ABCG161intron 7 + 840atttcatttcctCaatgtcg T/C ctgaccagagagcgggaggt2412ABCG162intron 7 + 891tggcccactgttgagggtgt G/A ggtgaccagaggggcctgga2413ABCG163intron 7 + 997tgtgtcctggtttgtggctt C/G atctaggaggtgtggtggcc2414ABCG164intron 9 + 1616ctggaggagaagacaggata A/C agtctaagacgtgctgtcac2415A8CG165intron 9 + 1630aggataaagtctaagacgtg C/T tgtcacagagttcagggtcc2416ABCG166intron 9 + 1674tcttccaaaggccgcatccg G/T gttgttctctgagccgagga2417ABCG167intron 9 + 1689atccgggttgttctctgagc C/T gaggacggctttgcgaacgc2418ABCG168intron 10 + 446tggctgacagtgaacacagc G/A gctgcttctccagaacttta2419ABCG169intron 10 + 581atgcagagtttcagaagagg C/G agactcaggaagagtaaggc2420ABCG170intron 13 + 243tcccggagagccatggcagg A/C ccaagtgttctggacgttgc2421ABCG1713′untranslated + 2370gcctctcagctgatggctgc A/G cagtcagatgtctggtggca2422ABCG1723′flanking + 1124ctcagaactacatcgagtga G/A gtcagtgttgaaaacgccca2423ABCG1733′flanking + 1252atggggcccacagccctgcc T/C cagaagcagctttggtctcg2424ABCG1743′flanking + 1433gggggaagagcttgggaacc A/G tgagggctgttaggctgcaa2425ABCG1753′flanking + 1513tgaagggtgaactggagtag G/C tgaggattctgcagttgacg2426ABCG176intron 1 + (19909-19944)ccgatgaggaggggatgggg (CACCAGGCAGCAGACTCTGA2427TGAGGAGGGGAGGGGG) caccaggcagcagactctgaABCG177intron 1 + (19909-19944)ccgatgaggaggggatgggg2428caccaggcagcagactctgaABCG178intron 1 + (25136-25137)catgaacttgcctgaccata (G) ccctgtgaggagctagggct2429ABCG179intron 1 + (25136-25137)catgaacttgcctgaccata     ccctgtgaggagctagggct2430ABCG21intron 1 + 152tcatttgaaagtgggtatgc G/A gtttaaaactgacagttcaa2431ABCG22intron 1 + 614agctagtcataaataaatac G/A ccagagtagtaaggaagaga2432ABCG23intron 1 + 10002cctcatgaatggtatacatg T/A cccaacatatctctttcgat2433ABCG24intron 1 + 10123acagtggtccctttgggtgc G/A tatacccaaatccctgcata2434ABCG25intron 1 + 10768ataggaataattgagaacag G/A gtctgaagaactctgcagga2435ABCG26intron 1 + 10791ttgaagaactctgcaggaaa T/C gaaaatagttccctgctttt2436ABCG27intron 1 + 10792tgaagaactctgcaggaaat G/A aaaatagttccctgctttta2437ABCG28intron 1 + 14183tcacttaaggctttgcaggg T/G gtctaggacacagaaagaga2438ABCG29intron 1 + 14934aaagtgtctttaaaatttcc A/G tcttgagtcagtgagctatt2439ABCG210intron 1 + 14955tcttgagtcagtgagctatt G/T aaattcaagcaataagttat2440ABCG211intron 1 + 17251ctgtttgggaacageaactc A/C atcataggcagagagaaagt2441ABCG212intron 1 + 17347atttcaaacctgtttcacaa G/A ttgttaagctcatcttaagg2442ABCG213intron 1 + 17626gaaggtgcataacaacttcc T/G acataaagtctggagctata2443ABCG214intron 1 + 18271aaatgaagctgcttattgcc A/G cacatttaaaaatggacttg2444ABCG215intron 1 + 18369ctattgcttttctgtctgca G/T aaagataaaaactctccaga2445ABCG216exon 2 + 34atgtcgaagtttttatccca G/A tgtcacaaggaaacaccaat2446ABCG217intron 2 + 36tgtaaaaagacagcttttta A/G tttacctacagtgaacctca2447ABCG218intron 2 + 4230caaccctaaattggagggcc C/T gggcgtggtgattgagaaag2448ABCG219intron 2 + 4518gttgacagacttttatagtg A/C gggacactgacctgcatgca2449ABCG220intron 2 + 6278atgtatgtaccacgtcttca T/C attcttaaaggatgacccta2450ABCG221intron 3 + 10ggcaaatcttcgtgagtata A/G gagagtataagtaagcgttt2451ABCG222exon 5 + 421tgacggtgagagaaaactta C/A agttctcagcagctcttcgg2452ABCG223intron 6 + 3158actattctagttgattctag A/G ttgtcaatacaacacactga2453ABCG224intron 6 + 3203tcctattctgttttaataaa A/G gcattgaatttaggtttgct2454ABCG225intron 6 + 3287gtcaggctgaactagagcaa A/G caatctaaaggcaagaatag2455ABCG226intron 7 + 179ttcatttttgtagcaccagc T/C tgttatttaggtatctttct2456ABCG227intron 9 + 5677gcacttggactttgctttgc T/C acatacttgcattgctctgc2457ABCG228intron 9 + 5974tatactaataaatggtgtgt A/T taagtttttatctctaattg2458ABCG229intron 10 + 1908gacgcttatgtgcagcctat G/T ttgatgtctggaaaggctga2459ABCG230intron 10 + 2094ccctgagggctgaggtatct G/A gattatttccagacttgcta2460ABCG231intron 11 + 20tgtgagtaggtctttgttct A/G ggaacggggctgtccagcag2461ABCG232intron 11 + 1447tgttcttcaaggaaagcccc C/T gtcaaagaaggaaaagaagc2462ABCG233intron 12 + 49atgtctttagtcttgcctat G/T ggtgaagtcagttgcacctt2463ABCG234intron 12 + 1566tatgcagttacatggacaga C/T acaacattggagaccgaggg2464ABCG235intron 13 + 40gctctgataaggaattgttt C/T tttccttcatttcttcctgc2465ABCG236intron 13 + 1823ttactcaagcaggcctgact C/T ttagtatttgctttttgtag2466ABCG237intron 14 + 497ttaatgaaaacaaacaagaa T/C gaaagattgtcactgtaaat2467ABCG238intron 14 + 815taactctttggaaacttctt A/G aaatttaaaactgtttacct2468ABCG239intron 15 + 110ccaggggcactgaatttttc C/T gagcctacgttttctcatcc2469ABCG240intron 15 + 566gccgcatagtcatgtgttgt T/A gtttttaaattaacttggaa2470ABCG241intron 15 + 639aacaagaaacacttgaataa G/A ttgagaaaaaaccccgtttt2471ABCG242intron 15 + 1197tgagtagctgggattacagg C/T gcccaccaccacacctggct2472ABCG243intron 16 + 520catcaattcaggtcaagaaa T/C agaagattgtagcacacaaa2473ABCG2445′flanking − (998-995)gttgggatggctacactcac TCAC/Δ aaagcctgatggcccgtttc2474ABCG245intron 13 + 405ctgctagtttattttttttt T/Δ aacatttttaatttatgttt2475ABCG246intron 13 + (692-702)tcaatatgtttctgcttatc (T) 9-11 aatggttacttaatcctaat2476ABCG247intron 15 + (645-650)aaacacttgaataagttgag (A) 7-8 ccccgttttcacataatgtt2477ABCG41intron 1 + 84ggcctgggtgtcccatgttC G/A gaaagtcctgcaccagtggg2478ABCG42intron 2 + 77gaacacagaaggtattctga A/G agggcattgacccccatcct2479ABCG43exon 6 + 679tggtgtccctcatgaagtcc C/T tggcacaggggggccgtacc2480ABCG44intron 7 + 95ggcctcctaggggtagagat C/T tcaccgtcgcctgccttccc2481ABCG45intron 7 + 158cttgcccttgggaagtgagt G/A tgaatctaaactgagctctc2482ABCG46intron 8 + 106ccccagaggcattgcaacca A/G tgggtgctaggaagaaccta2483ABCG47intron 8 + 1089aggtacacaacttaatggta C/G aagattctctgtagacctgg2484ABCG48intron 11 + 1113acgtgagacgagataagtga T/C ggtcatatggccagggagga2485ABCG49intron 11 + 1120acgagataagtgatggtcat A/G tggccagggaggaaggggac2486ABCG410intron 11 + 1173gggggacagcttgaacaaga A/G tgtggaggcaggatggacac2487ABCG4113′untranslated + 2758gagtgacaggcacatacatg A/C gaacaggccatctcagccct2488ABCE115′flanking − 158aactcagattctcggcacct C/T cagcagctggcttcgccaac2489ABCE12intron 9 + 237ctgaaattatatgcaaattc C/T gtagctttataggaagcaga2490ABCE13intron 9 + 4203ttgtgtaggaagctgataca T/G taatttgacatatgagatgt2491ABCE14intron 10 + 1811ccaagaaacttcagctttct C/T ttcacttaaatataggaaac2492ABCE15intron 17 + 2301atatccagaaacagatggta T/C gtgcagaacaggttgtacag2493ABCE163′untranslated + 1810tggatgattagactgactct G/C agaatattgataagccattt2494ABCE17intron 1 + (5349-5363)aagactgggtctgactctca2495ABCE18intron 1 + (5845-5854)tacatttgtcaaaatttata (T) 9-10 gcagataatcatttcatctc2496ABCE19intron 5 + (836-851)aggatcctcctgactggcag2497ABCE110intron 8 + (1153-1169)catagtttcatgtttgatga2498ABCE111intron 9 + (1023-1024)ttgctctgtttcaaatctct (T) attcatgggccagcagctcg2499ABCE111intron 9 + (1023-1024)ttgctctgtttcaaatctct     attcatgggccagcagctcg2500ABCE112intron 9 + (2338-2346)agtgtagatggacctcgggg (A) 8-9 ctagttaaggaaaagtaata2501ABCE113intron 9 + (3213-3221)ttccaattttccattgttac (T) 8-9 cttgccagattactcctgaa2502ABCE114intron 10 + (284-299)tcctctgcattttggcttct GCAGTATACTGTAGT/Δ atttg2503tcattttcaaattaaABCE115intron 10 + (840-853)aatcttggaggaatcttttt2504ABCE116intron 16 + (1163-1172)aattagaaatccaggttaaa (T) 9-10 gttttgcacaaaaatattac2505ABCE117intron 16 + (1372-1382)ctcttagtcctcaaaccctt2506CHST11intron 1 + 2475taaatggagaaaataacacc G/A acctgatagcattgttgtga2507CHST12intron 1 + 2612aaactccccaagcatgctca C/A ctagatccttaccctaggtc2508CHST13intron 1 + 3900gccctgcccccactcccaga C/G ttgcggccctccagcccctt2509CHST14intron 1 + 6520cctcccccagaggagctggg C/T acactggggccttgtgttgt2510CHST15intron 1 + 7534attgtgtgttggcatactgc T/C cacatggaaggatgctctag2511CHST16intron 1 + 7911ttttccttaggaagaaaaac G/A ccttgctgttttatgcattt2512CHST17intron 1 + 7963aaaacattcatgggggatta G/C tgctggctacgtcagagtca2513CHST18intron 1 + 9173gcgctgccacagatcaggcc G/A aggtgggggacagaaatgcc2514CHST19intron 1 + 9701cccagaattctgaatacagc A/G gcgatgacgggactacgagg2515CHST110intron 1 + 12132aacagatccacaggaccaga C/A agcaaaggggaggaacatgc2516CHST111intron 11 + 12465atgcagggaaggggcttggc G/A caaaactgtcaactgagata2517CHST112intron 1 + 12561atgctccctggtccactttc G/A ctttgagtttcaggtagctg2518CHST113intron 3 + 529ccatggtctgcaggggtcct T/G catgctcaggggattggggt2519CHST114intron 3 + 617agaggacagaggaaagagga C/A cacctggagaactgggcgcc2520CHST115intron 3 + 796aagaggcttccgcagctgtc C/T gcaggttaaatcctggggtg2521CHST116intron 3 + 818caggttaaatcctggggtgc A/G aggaatgtttgttcagctcc2522CHST1173′flanking + 762ataactggtacaggtttact G/C gtgtctacactggcagagaa2523CHST118intron 1 + 7874gttttccccttgccttgcct T/Δ cattttcatcacctcatttt2524CHST1193′flanking + (335-349)ggattttagtagagacgggg2525CHST315′untranslated − 294tccagcgtgccgaccggccc C/G gcagcgcctccatccctccg2526CHST32intron 1 + 96gcgtccaggcgcgcgcgcca G/A actttggagggagaaggggg2527CHST33intron 1 + 4467agagaagaatggggcagagc C/G ggagcagccaggggaggtga2528CHST34intron 1 + 4853ggatgagcactgcccagctg A/G tccctgcccaccttccacag2529CHST35intron 1 + 4965tccactgcagaggggacaca G/C tgaccaggacggaagttggg2530CHST36intron 1 + 5046gggctgtccatctttgtacc C/T ctggttccatcccagtgcct2531CHST37intron 1 + 5300ccttttcttctctaaggcct A/G aagagatgacagaatgctgc2532CHST38intron 1 + 5354agcgcgtggactccacagcg G/A ggtgtggggtggcccctggc2533CHST39intron 1 + 5428gacacgcttcagccctctgt C/G tctattgccccaaatctggc2534CHST310intron 1 + 5621ctgtggcttccctgggccct A/G ggaaatttatcactgaggtt2535CHST311intron 1 + 6555gagtggggcactgctggaag G/C ttctggttcctgctttgttc2536CHST312intron 1 + 6990aaacacactgggccaccccc G/A tccccgcactgtgactacac2537CHST313intron 1 + 7133ctgagggcctgtcctgcagg T/G ttgatgtgtctgaagaggcc2538CHST314intron 1 + 7161gtctgaagaggccccgagaa T/C agaaatctagaacctgccag2539CHST315intron 1 + 7199cagtcacgaagcagtgtcac C/T caccagaggatgaagaactg2540CHST316intron 1 + 7316cttgcatctggtgtaggtgc C/T tgggggtagcgtgcccagga2541CHST317intron 1 + 7967gacaygaaccccaccccgag T/G gatytctggccctgtgacct2542CHST318intron 1 + 11412gcttgcacttctgattcatt C/T tgcagtcactggctctttgt2543CHST319intron 1 + 11591ccctggaagggcctcactgc G/A gtgactcattacccagcatg2544CHST320intron 1 + 12541acccacacagcatgaatggg G/C ccagccccagcctgcccgct2545CHST321intron 1 + 12672gtagccacagctggggctgt G/C gggtcagggcatggcaaggg2546CHST322intron 1 + 14809ggatgtgtagggtttgggct C/T ggccttaagggatgggtgga2547CHST323intron 1 + 16161gatgctggtcaggcattgtc G/A ttgggatctttaacaccacc2548CHST324intron 1 + 16385tatttagcatgtgggtttca A/C ctttctgttttttcaaaggg2549CHST325intron 1 + 33638gacttgggccacgtccttgg G/C catgaatcttggtctatgtc2550CHST326intron 1 + 33878agcaagaaagtgtgctcccc C/T acagccccactcaggcataa2551CHST327intron 1 + 34690agcacacatggagctttccc G/A cagtgggtttcagcgctccc2552CHST328intron 1 + 35145agggaagccgaagcctcact T/C gctggggcttgcctggcctc2553CHST329intron 1 + 35340tgtgaagttttgcccacagt T/C ggtggccatggttcgcaccg2554CHST330intron 1 + 35436gccactcatgtatggagcaa T/C tgcctttttttcttcctctt2555CHST331intron 1 + 36150ccatagaagaggctgggcct G/T aggaagccagggaagcagga2556CHST332intron 1 + 36194ggtgtggggaggccagcagg G/A gtgtgggcctcagcggggag2557CHST333intron 1 + 36561ctctggtgtttgctgtcaat A/G tgcagagtgctggacaaaac2558CHST334intron 1 + 37602ctggaacagcaacttaaaaa A/T agaaatagtccctggaaggg2559CHST335intron 1 + 37725gggtagccagggcagctccc C/T gacccgcacctgcctttt2560CHST336intron 1 + 37734gcagctccccgacccgca C/G ctgccttttcacccctctcc2561CHST337intron 1 + 38208gccattctagatgcgagtcc C/T gactttggggtgcttgca2562CHST338intron 1 + 38219cgagtcccgactttgggg T/C gcttgcattctgggaaggga2563CHST339intron 2 + 255ctacagctgtgaaaggttag A/G caagatacttaacatttctg2564CHST3403′untranslated + 2202acacctcagaggagcctgtg C/A ttaacatttgtaggattatt2565CHST3413′untranslated + 2569aggcctcatctggggtaggg C/G caagaggaaagtacagagtg2566CHST3423′untranslated + 2717ctggaattcctccttagggc C/T ctgggaagagtattgcttaa2567CHST3433′untranslated + 2753cttaacgcaggatgtgctgg G/A tgttttgtttcgggctttta2568CHST3443′untranslated + 2800gcttggtgtctttcttgttt C/T atggctgtgtttttgctttt2569CHST3453′untranslated + 3283ccgagggctgcccagctctg C/T ttctggtttcctggacaatt2570CHST3463′untranslated + 3327ctgtcagatacggcccattg T/C aaacccagagggctgcattt2571CHST3473′untranslated + 3787gttccccatgtggaggtcgg A/C ggggctgggactggggaggg2572CHST3483′untranslated + 3860ggccctgctaatgtggacag T/C agactttatccctccttctt2573CHST3493′untranslated + 4915ccagatgtgcatagaagcca G/A tctctgtcacatacaccgca2574CHST3503′untranslated + 4993taaagcaaatttaggctttt G/A tccttctgcaatacatgcac2575CHST3513′untranslated + 5223ggaaggagcttcagcaggag G/A tccttcccagaaggttgatt2578CHST3523′untranslated + 5370tcatacctgtaatcccagca G/T ttggggaggccaaggtggga2577CHST3533′untranslated + 5545ccattcccaaagtcagaaag T/C gaagccagatctcaagggct2578CHST3543′untranslated + 5859caaaagcacaaagcagaatt G/C gcaacttcacttgtctca2579CHST3553′untranslated + 5870cagaattggcaacttcac T/A tgtctcaagagctccaagat2580CHST3563′untranslated + 5971ttccaaggctacagacatgg C/T gccatcctcacaggcctagc2581CHST3573′untranslated + 6208atttcatgtctgcatggtac G/A agacaccccttcacggca2582CHST3583′untranslated + 6223tacgagacaccccttcac G/A gcatacactgccatggtatg2583CHST3593′flanking + 281agacaggagtgttgggccag C/T ggtcagggggcctggggatg2584CHST3603′flanking + 997acctcttaaagtatttgagc C/T ggtgcctgtcatcccaacct2585CHST361intron 1 + 22595cgggagcaggaaaaaaaaaa A/Δ gaataagaagaaaagaggct2586CHST362intron 1 + (35423-35424)gctcatgctcacagccactc AT/Δ gtatggagcaattgcctttt2587NDUFV11intron 3 + 670ctgggtggagtggggtggca T/C ggagttgaagacccagtcct2588NDUFV12intron 6 + 160tgtgccggccccagccctga C/C catgcatccctttggggacc2589NDUFV13intron 9 + 27accacccttctgcgtagcac C/A gagggtgggtggcatcaagg2590NDUFV143′flanking + 1111tgtaggctgaggtcagcccc A/C atccagtccaaagcccaccc2591NDDUV153′flanking + 1658gaatgcggaagtgctctgtg G/A gcacccaccatgctccgggc2592NDUFV163′flanking + 1713gatctggggcggagggtaca C/T ggggctggcgctgggtgaag2593NDUFV17intron 4 + 214tggtgtaaattttttttttt T/Δ gcttcaaaaatatagtattt2594NDUFV183′flanking + (772-774)tgaactcggggttcagggtc TTC/Δ ctgtgaacactggttttgaa2595NDUFV21intron 1 + 526ggaaatgctggctaaataaa C/T ggtatcaaactaactctgaa2596NDUFV22intron 1 + 6689tcgttggatggtagtattgt T/G tgaacaacagaagaaattca2597NDUFV23intron 1 + 14767ccaaatgcatgccagcagag C/T gtggcaggaaggtacacaag2598NDUFV24exon 2 + 86aaggaatttgcataagacag T/C tatgcaaaatggagctggag2599NDUFV25intron 2 − 29cagaagatcttactctctaa T/C gaagctggataacacttttt2600NDUFV26intron 2 − 168tttactttggtaatcatact T/C atcaaatgtgtgtttagaca2601NDUFV27intron 4 + 677aaaccacatactatttgatt C/A tgatgagaatcacataacca2602NDUFV28intron 4 + 2295tatgattcaactttcaaaag A/T gtattgtgatatgaaataga2603NDUFV29intron 5 + 102caacttctgccatcttattg C/A atctgtacttacctagtaat2604NDUFV210intron 7 + 5466tggtaagaggctttaagata A/C caaatgctcagctttcagga2605NDUFV211intron 1 + (13562-13563)tactcttaaaattaatcctt (CTT) ttattataagtatacagtct2606NDUFV211intron 1 + (13562-13563)tactcttaaaattaatcctt     ttattataagtatacagtct2607NDUFV315′flanking − 606aattacgactaacgttgggg A/G cgaactctttgctaaataaa2608NDUFV325′flanking − 222cgccgcgcccccgccacagc G/A cccaggcgcccgcagggcac2609NDUFV335′flanking − 111tggccccaagggaggcactt A/G gccctactggggatgcgcgc2610NDUPV34intron 1 + 137ttgggccgctgaccccgctc C/T ctgggcccaggactgaccgc2611NDUFV35intron 2 + 152tatacaagacacaagatcta T/C aacagattttagaccaaaca2612NDUFV36intron 2 + 6304ttcacagatgaaggggttcc G/A aaatttttgtcaagaaagac2613NDUFV37intron 2 + 6433tcgccttcgtcttcatcctc T/G tccagctcctctgattctga2614NDUFV38intron 2 + 6563cctttgaaaacagagccccc C/T gagttacagtatcagcaaaa2615NDUFV39intron 2 + 9619actatcttctgtgcgcatgc G/A cagagcccaccttgcagagc2616NDUFV310intron 2 + 9858aggatgccagctctttaaat G/A agacatcgtttttgcttaac2617NDUFV311intron 2 + 11673cttggtaggtaagcgcctgt A/G tgtgagccaagtcattcata2618NDUFA1015tianking − 1734tgcaccttgaactgtttact T/C tcctgtaaccatttaccctt2619NDUFA1025′flanking − 1492aaaacatccacgcaaacagg T/C tgtgagaagttacgtctgcg2620NDUFA103intron 3 + 370aagactgtgcatgtgccatg C/A agacagagatgtggatgcca2621NDUFA104intron 3 + 2485ttgttattttcttttctctg G/A aatgcagtgatcagttgaca2622NDUFA105intron 4 + 236ctgtgaaagcagattggagc C/T ctggacctcaaacacacgca2623NDUFA106intron 4 + 1742tgtcggcatctgctgagtgt C/T tgctgaagtctgaggactgg2624NDUFA107intron 4 + 2090ggctgggggaaagcagatca T/C gttggctaaaggacaggtgg2625NDUFA108intron 4 + 3054cagctgattatactactgaa A/C cgggataaatgcagcttgat2626NDUFA109intron 4 + 3066ctactgaaacgggataaatg C/T agcttgatgattttcagctg2627NDUFA1010intron 4 + 3377gtcacagtttaaatgctgct G/A ttttactctgtgtaagtagc2628NDUFA1011intron 5 + 46aagcatctctattttgaatg T/C agatcagcactaaaagccct2629NDUFA1012intron 8 + 1465gcaacgcccagttcctggta C/T aggcctcatatccagcgtgc2630NDUFA1013intron 8 + 1809cctggaggcacaaggatggc C/A ggggcactcaacttccctct2631NDUPA1014intron 8 + 11226gttgtgtgactgtgtggggc A/G tctcacctctcgggctgcag2632NDUFA1015intron 5 + 11319atcttgccttccctcctgcc G/A tctgttcaggcttgaatcct2633NDUFA1016intron 8 + 11386ccataatcctagcttgaacc C/T tcctttttccctgctgaccc2634NDUFA1017intron 8 + 12301acataattattgtaaacatg C/T cgcttaccagtgacattcat2635NDUFA1018intron 8 + 13361ccaggccactgattgctttc G/A cattttctagcattttctta2636NDUFA1019intron 9 + 183tttctgtgtggaaagctgat G/A aagtcctcagatgacagccc2637NDUFA1020intron 9 + 6669aataataatgaccatttctg G/T aaattcatagaattcctttt2638NDUFA1021intron 9 + 8028gaggacattccacagaacgt G/A tgactattagagcagaaggt2639NDUFA1022intron 9 + 10742ctggaggagaggggtggagc C/G agttcagccagcactggggt2640NDUFA1023intron 9 + 10985agaaagggttacacaggagc A/G cacttctcagggagtggtgt2641NDUFA1024intron 9 + 10989agggttacacaggagcacac T/C tctcagggagtggtgtgacg2642NDUFA1025intron 9 + 12601ctgtgaatcctctcacctgc G/A tgaagggcctggctgcctct2643NDUFA1026intron 9 + 13908cacattgttatgtaaccaag C/T ctggaattgcagtgtgaaga2644NDUFA1027intron 9 + 13911attgttatgtaaccaagcct G/T gaattgcagtgtgaagaact2645NDUFA1028intron 9 + 14064tcttgactattagaaaccct A/G tcagataaattttaaaacag2646NDUFA1029intron 9 + 14184tggctttggttgggaacagc G/A agagatacagaaccgacggt2647NDUFA1030intron 9 + 16487cttgaagctgatcgttccct C/A cttgaagctgatcgttccct2648NDUFA1031intron 9 + 16779gccagacgtgactgctttag G/A ttcctcatgacattcagacc2649NDUFA1032intron 9 + 17663ttccaaatcaccccagaact T/G tgcagtattttgaagctcct2650NDUFA10335′flanking − (1668-1659)gtaaaattgttttaactaga (C) 9-11 ttcctaaaccaaggtataaa2651NDUFA10345′flanking − (1355-1334)tgcaaaggaaacaaggcaaa2652NDUFA1035intron 1 + (46-61)tggcggggtggcagggtggc GGGGTGGCGGGGTGGG/Δ gag2653cagttccacatctccccNDUFA1036intron 4 + 2486ctcactggaacttttttttt T/Δ aatttaatttttaaaatttt2654NDUFA1037intron 7 + (1600-1601)cacttccattctgactgtta (A) cggtgtgattcttcctgcca2655NDUFA1037intron 7 + (1600-1601)cacttccattctgactgtta     cggtgtgattcttcctgcca2656NDUFA1038intron 9 + 1054gcgcgtgctgtttctccctt A/Δ tctgtccttgtacacgtgtg2657NDUFA1039intron 9 + (8161-8172)aatgttgaaaatatgtgttt2658NDUFA1040intron 9 + (8646-8647aattcccccattgcttctct (TT) ctgtagacattttaaaccta2659NDDUFA1040intron 9 + (8646-8647)aattcccccattgcttctct     ctgtagacattttaaaccta2660NDUFA1041intron 9 + (16503-16523)ccctccttgaagctgatcgt TCCCTCCTTG2661AAGCTGATCGT/Δ gtccaagatagttgctagga2661NDUFA1042intron 9 + (17905-17936)caaatatatgtatacatgta (CA) 12-182662tccttcatgaaaactctttcMGST1375′flanking − 1376ttaataaatgtttattcaat T/G aaaccaactgctaatattct2663MGST138intron 1A + 147cctggagattttaactttct G/A cgaagtttttaaaaacaact2664MGST139intron 1B + 36ggagaaggggaccgcatgca A/G agggtggcaggcagggaggg2665MGST140intron 1C + 456ccccttgggacggttctcac C/T tgtgccccacttccccagtc2666MGST141intron 1C + 719gcccgcaagcattgctgtat A/G gcacccaggcctccagtgag2667MGST142intron 1C + 985cgagtaaaatttttctaccg C/G tttgttttagagtggtgtct2668MGST143intron 2 + 3083aaaaaatttgtagatatggg T/G actccctatgttgcccaggc2669MGST144intron 2 + 3106tccctatgttgcccaggctg A/G tcttgaattcttgggctcaa2670MGST145intron 3 + 1703ttctcttctaagaagaagtc T/C gtgcagatacttagcacaaa2671MGST146intron 3 + 2557tccagcatcttccctttcca T/C ttttaagttagacttttttt2672MGST147intron 3 + 3032agagacatttagaatatatt C/A cctttaaaggtagagaataa2673MGST148intron 3 + 3045atatattccctttaaaggta G/C agaataacccttcactgaga2674MGST149intron 3 + 3289ggtttatagtgttccccccc T/A ccccgcccccaaaagaccca2675MGST150intron 3 + 3885gaagctgccgctccaggaag G/C agtctgtcgttggagaagag2676MGST151intron 3 + 3976ggaaagctggggaactgttt C/T cctggaacagagtctcaaaa2677MGST152intron 3 + 4298tgtcaactgcgtaacacagg C/T gtagaagtggacattgtttt2678MGST153intron 3 + 4519tttaatagaaaatggtattc C/T tgtcttttctttcccatctc2679MGST1543′untranslated + 603gggtaaacccattttgaata T/C tagcattgccaatatcctgt2680MGST1553′flanking + 147tatttgctttccttctctct C/T tgttttctttttctctgaaa2681MGST1563′flanking + 237cagcacgtttttcctatgaa C/T aagacattctccaaataact2682MGST1573′flanking + 1318tggctctgtgtgcatgaaca T/C gcacgcgtgcacgcgcacac2683MGST1583′flanking + 1331atgaacatgcacgcgtgcac G/A cgcacacacacacacacaca2684MGST159intron 1C + (904-923)ggcaaatcagtccaaatttg2685MGST160intron 1C + (3433-3434)ccccttcaatactagaacaa (AA) gcagacacattaaatgttac2686MGST161intron 1C + (3433-3434)ccccttcaatactagaacaa     gcagacacattaaatgttac2687MGST162intron 1C + 5146actatttcaatttttttttt T/Δ ggagggggagacagagtctc2688MGST163intron 2 + (552-563)cccagcattataagaatgac (T) 9-13 aagtgcagatgtggggaggg2689MGST164exon 3 + (172-173)tagcatttggcaaaggagaa AA/Δ tgccaagaagtatcttcgaa2690MGST165intron 3 + (152-158)agaaaactggatgtctgaaa TTCACA/GTCCAATAT cactg2691cacttgtatgtgttgMGST166intron 3 + (2198-2200)ggattttagattcctcccta CTA/Δ ttctttccgaccttccaccc2692MGST167intron 3 + (2571-2580)tttccatttttaagttagac (T) 9-10 cacctctctcgttacttcag2693MGST168intron 3 + (4682-4683)tcctcttcatgtctctatgt (CACATCTTG2694TCCCTCACAT) agtcatcctcrrtgtgagactcctcttcatgtctctatgtMGST169intron 3 + (4682-4683)agtcatcctctttgtgagac2695MGST1703′flank + (1359-1360)acacacacacacacacacac CC/Δ tgctctggagttgggcaact2696MGST1713′flank + (1889-1891)ttagaatagtttctaactat ACT/Δ tttactcccaagagaagctt2697HMG17L113′untranslated + 864ctttctgatttttgatagtc C/C gttgaagaagggagtttgaa2698UGT2A115′flanking − 1602ataacatcttctgcagagaa A/C cttcaatggaaatacactca2699UGT2A125′flanking − 1480tacagattatctttggtgat C/C ggagagcttagaagagacat2700UGT2A135′flanking − 1406atttcagaagatttattaac A/T tgaaaaygatcactctgctt2701UGT2A145′flanking − 1388acatgaaaaggatcactctg C/T ttattcacagacatatgcat2702UGT2A155′flanking − 935aaattattcaatctctttgg C/A cagtggtttctttttctttg2703UGT2A165′flanking − 287cctgaatgtagagttgagat C/A tacagaagctttatccaatt2704UGT2A175′flanking − 128gagaagtaagacacattacc C/T ataaatctgtaaatatccta2705UGT2A18intron 1 + 535cattgatcagggtgatttat C/T catgctaagcttatttaatt2706UGT2A19intron 1 + 642tatattgatcatgttgatac A/C tttatacacatatttgtcta2707UGT2A110intron 1 + 1221ttttaatctaataagcaatt C/C aggaccatctaaagggaaat2708UGT2A111intron 1 + 1448aggtgcttacaggcaacatc C/T acatagcagtctgtggctgg2709UGT2A112intron 1 + 2000gacacattagcttcttttct A/C cagatctctgttctaaaaca2710UGT2A113intron 1 + 3118cttaaaattctttaatgaaa T/C cattgcaacaaatttatatc2711UGT2A114intron 1 + 3191ataaatagaacaactcccta A/T gtttacttctctgcagtgga2712UGT2A115intron 1 + 3770atcaccagataatttactat C/T cattaaggagtaggtcatca2713UGT2A116intron 1 + 4584tgattggttagaatctttga A/C aaatcttctagtatcattcc2714UGT2A117intron 1 + 4854tactctgtgcattgttaata C/A cctatcacttgtggtctgcc2715UGT2A118intron 1 − 19146ctgtttaaattctcattcaa C/T ggccacatggttaaaataaa2716UGT2A119intron 1 − 18346atggcaatatttttagaaat C/A ttaactcccaataatgaata2717UGT2A120intron 1 − 18218tatatcattattttaactta T/C agatagcactagccctaatt2718UGT2A121intron 1 − 17937ctcctaataatttggactca C/T catacttattcagcactatc2719UGT2A122intron 1 − 12585ttccacacagggacaagtca A/C cagaggaaatttttcttgct2720UGT2A123intron 1 − 11430aacaaaggtttattttctta C/C agttctgatggctagacgtc2721UGT2A124intron 1 − 10761tttaaaatatgcatgtattt T/C ccacttttaaaaactatatc2722UGT2A125intron 1 − 381aaatcctccctccttccttc C/T tttcccaggccccactctac2723UGT2A126intron 1 − 329ttcCCtttctccttttctcc A/C tctctctctcttcctctctc2724UGT2A127intron 1 − 41ttttctcctcagcaaacata T/A aagctaatttcctccatcca2725UGT2A128intron 2 + 263caccttgatactggacttgg T/C gggacagaaaaccagatcat2726UGT2A129intron 2 + 454agaaagcccattgaaataag C/C cagggtttttaggttttaat2727UGT2A130intron 2 + 554aaaaacttttttgagttgac A/T atggtgagtttagtttctga2728UGT2A131intron 2 + 1113ctgcaggcaagctctagtga A/T tgtttattataggaaataat2729UGT2A132intron 2 + 1304gacaaatcagccatgtttta C/T aatagcagacattatgccat2730UGT2A133intron 2 + 1305acaaatcagccatgttttac A/C atagcagacattatgccatt2731UGT2A134intron 2 + 1367atcgatataggctttgggaa A/C tatgaataccaaccatgggt2732UGT2A135intron 2 + 2074aaattttttcttagacctat C/T aatcaaaggaggcatacagt2733UGT2A136intron 2 + 2164attttattagatataactgg A/C atgctaacaattttaaaagc2734UGT2A137intron 2 + 2298taacaatttcagttagcatg A/C gaagagttgtcccttattta2735UGT2A138intron 2 + 2346tttctgtaatggttttgctt T/C catgcttggacttgtaatca2736UGT2A139exon 3 + 922gtgttgtggtgttttctctg C/A gatcaatggtcaaaaacctt2737UGT2A140intron 3 − 217aagcttagaagtgataaata T/C caaaacaataatactatact2738UGT2A141intron 3 − 194aaacaataatactatactgg C/A tagactattagtacaagact2739UGT2A142exon 5 + 1171acggagtccctatggtggga C/A ttcccatgtttgctgatcag2740UGT2A143intron 5 + 1546tttttaaaattcagaaactc A/C gttatggtgtattcttacaa2741UGT2A144intron 5 + 1547ttttaaaattcagaaaCtca G/A ttatggtgtattcttacaaa2742UGT2A145intron 5 + 2013atcatattcattaccctccc G/T ctattattgtattttgaatc2743UGT2A146intron 5 + 2318aatttagtgctttttcttaa C/T ggaagtaacctgcttaaaaa2744UGT2A147intron 5 + 2505taattgacttttattaatac G/A tacatgttgtataagtcata2745UGT2A148intron 5 + 2639tagactattacaaagttgtt A/G gttgctgacaattttgttca2746UGT2A149intron 5 + 4009gaatccaggctggaactttt C/A ttccagacacaaaccaaaat2747UGT2A150intron 5 + 4311atacagacactgtccttttc G/A tcacaaacatacagatgtgt2748UGT2A151intron 5 + 4545agctcacacagtatcaaaat T/C atttttggaaaaattatgct2749UGT2A152intron 5 + 4616acttttttatgtctacattt G/C atcatactgtgttaagcata2750UGT2A153intron 5 + 4717tgcaagaattatattttctc C/A acgtaactatggccttaaac2751UGT2A154exon 6 + 1524gctatatttttggtcataca A/G tgttgtttgttttcctgtca2752UGT2A1553′untranslated + 1683aaggagtttaacaaaaacac G/A tctcccatcctgtttccaaa2753UGT2A1563′flanking + 685aatctagaaaataattatca T/C ttttataaaatttttagtca2754UGT2A157intron 1 − (18967-18965)ctcccaattagattgattag TAT/Δ gagttcctggggttactggt2755UGT2A158intron 1 − (18862-18803)aatacattcttcccccttca (AC) 14-172756atgcttactggcctatttatUGT2A159intron 1 − (17463-17447)gtaaagaaaatggcagagaa2757UGT2A160intron 1 − 10860attcaatgcaactttttttt T/Δ gtaatggcagaattagaaca2758UGT2A161intron 2 + (528-538)ctgttaggaaacaattggtt (A) 8-10 cttttttgagttgacaatgg2759UGT2A162intron 2 + (1514-1533)tattttaatgaattaatatc2760UGT2A163intron 5 + (916-917)gcttagtatattatatatat AA/Δ gtctatatatatagcttagt2761UGT2A164intron 5 + 1163caatatttatgtcatttttt T/Δ ctcacatttactctgtttcc2762UGT2A165intron 5 + (3819-3838)tcaacacatgtaaactactc2763UGT2A166intron 5 + 4785tatcttcaatgaaaataaaa A/Δ caaaaattgtctaatttctg2764OATP115′flanking − 916acagagtagatgttcaataa G/A tatttgttgtatctgtgaga2765OATP125′flanking − 843tagtgcagcgactatgcctt G/A atgtgtgtgtgtttgggatt2766OATP135′flanking − 526aaatgtgtgcctgtatgtta T/C acatctgtacatatatttcc2767OATP145′flanking − 172acaaacacaactcaaagtat G/A tgtgttattaaaagtagcta2768OATP15intron 1 + 206ttgattcaggcaagttagtc C/G taaatggctttgagagactt2769OATP16intron 1 + 454caacataacaataatttcct G/A taagaaaaatggccattttg2770OATP17intron 1 + 999gtttagcaaggttagatatt A/G atgtggatgttaagacaaaa2771OATP18intron 1 + 1223ttgctagaagctagtaggac C/T agctttataaatacagagat2772OATP19intron 1 + 1326aactagttaggcaacccatg T/C gttttaggggaaaagcaatg2773OATP110intron 1 + 1336gcaacccatgtgttttaggg G/A aaaagcaatgaggtcatgat2774OATP111intron 1 + 1498atagtttgctcttaagaata C/T actctgagaaggtttatagt2775OATP112intron 1 + 5041ttatgctcccgaggagttag C/T tctctaaatgcataaggaga2776OATP113intron 1 + 9532aaagactgggagcacttccc A/G atgacaaatactagactaga2777OATP114intron 2 + 198ttacctcatattaacaCcta A/C atattgccacatatcctacc2778OATP115intron 2 + 961aaaaagttatatagaaatat A/G agtgtcactcctttctagtt2779OATP116intron 2 + 1110gtctactagtgttcaactcc T/C ttagatcttagcctgtatca2780OATP117intron 2 + 1419aaagcctaagaaggatgcag T/C gcaatagcctatgtgagaag2781OATP118intron 2 + 3339tatggtttgcaaaaaactta T/C tcgtatatttgtttttttca2782OATP119intron 3 + 66caggaaatgaagttgcactt T/C cctctctaggagcaatgctt2783OATP120intron 3 + 205tcagttttgtcaatttacac A/G atggggatttgggacctttt2784OATP121intron 3 + 6377aatgaatagactttgagtta C/T tggatttttagtggataaat2785OATP122intron 3 + 7238tgaatgtcacattttttaaa G/A tttgtgttccttatctcata2786OATP123intron 4 + 1016ttttattctggaitcatgtt T/C gtggaaattgcagtagtcca2787OATP124intron 5 + 110tccacaatgatgagtagagt A/G tcttggcacagttggccttc2788OATP125intron 6 + 496agtgtctgaattataagcca A/G ttttatagttggttgggacc2789OATP126intron 7 + 1934aaagtgaaaggaaattaaaa G/C tgagaacttgagcctgaatg2790OATP127intron 7 + 2140tagaatgtaccaaatgaatc A/G gcatctctgaggatgggacc2791OATP128intron 7 + 2365tgaaatcttctttatcaact C/T gattttcctccagactttac2792QATP129intron 5 + 88gcaaactcctaagttgaagt G/C ttttaggatattttttgact2793OATP130intron 9 + 534tcatattttgtattttaaag G/A ttatctgggttttactgaaa2794OATP131intron 9 + 1286tattcttctgagataaatca T/C tgaaggagtggctatgtggt2795OATP132intron 11 + 215ttcactcctattcctcgcta C/T ttttcttccttatttcttag2796OATP133intron 11 + 663ttcttcttcttttggagctc T/A aaagtagagttcagttaatc2797OATP134intron 11 + 999atcatcactgcatgagagtt A/G gaattatctaactttgtgat2798OATP135intron 11 + 16727tttcttttatttacaaactt A/G tttacttttcaggtgtatga2799QATP136intron 12 + 48ctatcagaacaatattatta T/G tattattttttattacactt2800OATP137intron 12 + 686tatgttttgataaactttgc C/A gtacaaataaagaaaattga2801OATP138intron 12 + 708tacaaataaagaaaattgaa A/G tatttccaaataaatcaagt2802OATP139intron 13 + 418tctctggtctccaaaatcat A/G tattttctccctctttacat2803OATP140intron 13 + 436atatattttctccctcttta C/A attttgctgaaacaatcttc2804OATP1413′untranslated + 2130gtctttaagaacctaaaaaa C/A ctcttaactcaaaataataa2805OATP1423′flanking + 57agtgactaaagtttttctta C/A aaacaagtgtctgaatcaaa2806OATP1433′flanking + 572aatacactatggttatttat G/A tgtactataaatggagtgag2807OATP1443′flanking + 788atttcctaaatgatcagatg C/T atcatatgaaaaaagaaagc2808OATP1453′flanking + 1356aggtgactgacataaatggg G/A gcagaggacataatgaggtt2809OATP1465′untranslated − (189-188)attttctaatctgtattaaa (A) gcgttccaggtatttttgta2810OATP1475′untranslated − (189-188)attttctaatctgtattaaa     gcgttccaggtatttttgta2811OATP148intron 4 + (725-726)tgatctttaatagcggggaa AA/Δ caggcaagtacgctatagtt2812OATP149intron 4 + (1082-1083)attgagtcaggaaaccaaaa CA/Δ gtttcaaaaatttgaaaaat2813OATP150intron 4 + 2301aatgtcatgtcttttttttt T/Δ aatgcagagtgtacaaagga2814OATP151intron 9 + (241-246)attgtatgtgcatgtgggtg TGTGTG/Δ2815catgattgtctttgtgatatOATP215′flanking − 2574ggataaggcaacccctatgt A/G tcactgctgcaggagaggga2816OATP225′flanking − 2366aacataggaatgtgcagagc C/T ctgtggggattagagaagag2817OATP235′flanking − 2244tgatgatgccagagctttga T/G cattggtgggtatagaaaca2818OATP245′flanking − 1723tctttcagacttcaaaggcc A/G tgatatttcatcagagctgt2819OATP255′flanking − 1180tgcttatttaacaggcataa T/G ctttggtctcctgagccaga2820QATP265′flanking − 811tatgtgcatatgtgtataca G/A gtaaaagtgtgtatatatgt2821OATP27intron 1 + 7188aatcatttgaaatttaagaa A/G aaaatatgttcagagaaaaa2822OATP28intron 1 + 7331gtgaaatgaggaacaaagtg T/C ccacctttttttcctgaata2823OATP29intron 1 + 7391agagagatgtgaaatagtat T/G tttctggggaagtaggggaa2824OATP210intron 1 + 7886ttgttagtagaaagaaaatc G/A aagcctaaaactaaaggaag2825OATP211intron 1 + 7958ttgctattatataatttttt T/A aaaaaaagatttcctaatat2826OATP212intron 1 + 7959tgctattatataattttttt A/T aaaaaagatttcctaatatt2827OATP213intron 1 + 8036ggaaaaaatggggtgaaatt A/T atcaaagggcagcttattac2828OATP214intron 1 + 9164acattatattctatataaaa G/T agtcagttgaagtaaaaagt2829OATP215intron 1 + 10123tctgtctttcctacttttgt T/G tccagcattgacctagcaga2830OATP216intron 2 + 193tgattaagtatttctttggc G/A aaatttttgatgcttaatag2831OATP217intron 2 + 1020ttgagtaacatttaggccaa G/A tggcagtcataaggaaaaag2832OATP218intron 2 + 14865agaggaattaatcataagag G/T tttatttggctaaagtgaca2833OATP219intron 2 + 14931gttagttaataacagaaaaa A/T tatcagaaattttaaaaaat2834OATP220intron 2 + 15417ttctaaaataagtaagctaa A/T tattctatattatactacta2835OATP221intron 2 + 20823ttgtataagagatacaaaac A/C aattcctactaggggaaata2836OATP222intron 2 + 20852ctaggggaaataaagcttca G/C taaggaggtggcattaagct2837OATP223intron 2 + 20930atggagagaagcagcagtgt A/G ccacagataaatgaagtgag2838OATP224intron 2 + 21360ttcaaaagctgtatttctca T/C tagtgctttttgtgaataaa2839OATP225intron 2 + 21467tatatacacaatacctgtcc A/G gaagatgtggtataagccaa2840OATP226intron 2 + 21621tatcaatacttatgaagaga A/G ctaactattctaactaggga2841OATP227intron 2 + 22760ttccccacctcctgttggtt C/G tcctcttaaacttctccttg2842OATP228intron 2 + 23199cctatctgcacataacatta C/T aaacttatggcaattataaa2843OATP229intron 2 + 23218acaaacttatggcaattata A/G aactcaatacatattatact2844OATP230intron 2 + 23330gcccttgttcctgttcctct G/A tacctgcctcaactacatag2845OATP231intron 2 + 23673ctggagacggtagctcaaac T/C gaggatgaaaatagacattt2846OATP232intron 3 + 89ggttatcaactggggtaaat T/G tatctctcacaggcaatttg2847OATP233intron 3 + 224tgctaaatattctataatgc A/G caaagaatgatgtaactgaa2848OATP234intron 4 + 97ccctttaaataggcagttac C/A ttttgagaagatacccacta2849OATP235intron 4 + 5EBttcatgatccaaattgtggc A/G acgtatttccaggcaacaag2850OATP236intron 4 + 599aggcaacaagatagaagaag A/G aaagaataagaagcaacaaa2851OATP237intron 4 + 753aaaatagacattattccaag T/A taccaagttcccggttaaaa2852OATP238intron 4 + 781ttcccggttaaaaatcccaa G/C tataattactgtggaaggaa2853OATP239intron 4 + 1196aaggaccacaatctagatca G/T cattgctctaaatatgccat2854OATP240intron 4 + 1229tatgccataatatgtgacac T/C tttgcacctggtatttctac2855OATP241intron 4 + 1623catctagttgaaatggatta G/C attttatttttactacattt2856OATP242exon 5 + 388attctaaagaaactaatatc A/G attcatcagaaaattcaaca2857OATP243exon 5 + 452taatcaaattttatcactca A/G tagagcatcacctgagatag2858OATP244intron 5 + 165ttaatatacacagttcgccc A/T ttaacaacacaggtttaaac2859OATP245intron 5 + 189acaacacaggtttaaactac G/A cgttttcacttctatgcaaa2860OATP246intron 5 + 191aacacaggtttaaactacgc G/A ttttcacttctatgcaaatt2861OATP247intron 5 + 507atataactttgctttcattg C/T aaaaggcaaactgttatatc2862OATP248intron 5 + 520ttcattgcaaaaggcaaact A/G ttatatcatttaaagacttt2863OATP249intron 5 + 856agtcatgataaacctaatag A/G ataaaacaacaaaaaagaaa2864OATP250intron 5 + 1157acagataatttttacttgtt T/C gtgcttttctgtatgatatg2865OATP251intron 5 + 1226ccttgattgtaataatctcc A/C catgccaagagtggggccag2866OATP252intron 5 + 1228ttgattgtaataatctccac A/C tgccaagagtggggccaggt2867OATP253intron 5 + 1304actgttctcgtggtaatgaa G/T aagtctcacaagatctgatg2868OATP254intron 5 + 1348ttataaatgagagttcccct G/A caaaagctctcttgcctgcc2869OATP255intron 5 + 1407ttgctcttccttcatcttcc G/A ccatgattgtgaggcccccc2870OATP256exon 6 + 521gtcatacatgtggatatatg T/C gttcatgggtaatatgcttc2871OATP257exon 6 + 571gggagactcccatagtacca T/C tggggctttcttacattgat2872OATP258exon 6 + 597ctttcttacattgatgattt C/T gctaaagaaggacattcttc2873OATP259intron 7 + 33agaacaaggtaccatgataa C/T gtctttctaagcacacatgc2874OATP260intron 7 + 267caaaataaccaaatgtaaaa T/A gtctccctcccaaactgact2875OATP261intron 7 + 1260gtaatctcacatttctctgc A/G tttacacttggtaaaacttt2876OATP262intron 7 + 1386agtctcaaattaatagccaa G/A agcatgcctttattgtaacc2877OATP263intron 7 + 1472ctttaccacatgacagaatg G/A catgttcttagcaaataata2878OATP264intron 7 + 1697tttacatgttcaattttaga C/A atatgccttagagtagctac2879OATP265intron 7 + 2273ttctcacgtcctatctagcg C/T gattatgacccttagttact2880OATP266intron 8 + 207gtggaagagaattaggtttg T/C actttttagcagggagaaac2881OATP267intron 8 + 546tcgggagaagtttctcccta T/C gtaattagagtaatatttat2882OATP268intron 5 + 565atgtaattagagtaatattt A/C ttttggtaattatctatcta2883OATP269intron 8 + 668taagtaatgtaaattaggat G/T Catcagcatttgacagtgcc2884OATP270intron 8 + 739tggagaaccattgagagtca A/G taaacaaagagaatgacttg2885OATP271intron 8 + 2193tgatcacagatccaaatgac A/G taatttctaccatgaacaga2886OATP272intron 9 + 112attttagtaatacaggataa G/C tataattttcttgtattctt2887OATP273intron 9 + 266ttagaggtagtatctgtata A/G ttggatcttataatttagtg2888OATP274intron 9 + 305tgctaagatctgagacaaac C/G cttttgtaattataatcatt2889OATP275intron 9 + 888aggttctgtatgttttttaa T/C aaatgacaaagatatattaa2890OATP276intron 11 + 10224tacacttgttccataaaaaa T/C tcctctatattattcctagt2891OATP277intron 11 + 10359attaatagattcaacgtgag G/C ttcccttaaactttagccta2892OATP278intron 11 + 10916cttatatagaaagaaatcca C/G aaaactattttaccttttat2893OATP279intron 11 + 10997aatatattagtttgaacaag T/C gagacttcactaaatataat2894OATP280intron 11 + 11018gagacttcactaaatataat G/A caatgtatttgcagcactgt2895OATP281intron 12 + 442aacattccaaaacttttaat C/T gactcacagcatgactttta2896OATP282intron 12 + 445attccaaaacttttaatcga C/T tcacagcatgacttttataa2897OATP283intron 12 + 447tccaaaacttttaatcgact C/A acagcatgacttttataata2898OATP284intron 12 + 907aatgaaaagaagctggcaga T/C tgaaacatactgaatgagag2899OATP285intron 13 + 65tatatatatatatatatata C/T acacacacatacatatatta2900OATP286intron 13 + 870aattctgagtatcctatttc G/A atgtatccaatctgtggcac2901OATP287intron 13 + 1935taaaaaaaaaaaaagtctgc T/C tttacagcaattgagccaag2902OATP288intron 13 + 2261aacgaatcctccaaattttt G/C aacttttatttaatcaaaat2903OATP289intron 14 + 248tcaaggataataaccaactt G/A tcaaaaatcagagataatag2904OATP290intron 14 + 2463atttgtttactaatatggaa C/G cttcttcaagacatattttt2905OATP291intron 14 + 2857tcatcatgtatttccaggac A/T cctggcaagatgctcctcag2906OATP292intron 14 + 11458atctccagaggtcctgctgt C/T tccccaaagtccactgaccc2907OATP2933′untranslated + 2243ataataaaacaaactgtagg T/C agaaaaaatgagagtactca2908OATP2943′untranslated + 2404tcttaataaaacaaatgagt A/G tcatacaggtagaggttaaa2909OATP2953′untranslated + 2515cagagtttgaactataatac T/G aaggcctgaagtctagcttg2910OATP2963′untranslated + 2539gcctgaagtctagcttggat A/G tatgctacaataatatctgt2911OATP297intron 1 + 457taattggcaaacataaaaaa (A) caggtgtctcaaagtcacat2912OATP298intron 1 + 457taattggcaaacataaaaaa     caggtgtctcaaagtcacat2913OATP299intron 1 + (7537-7538)gatcagcattacaaccaaga (G) atggagaatgacattcagga2914OATP2100intron 1 + (7537-7538)gatcagcattacaaccaaga     atggagaatgacattcagga2915OATP2101intron 1 + (10032-10035)tgtgtgattctatattactt ACTT/Δ gtttcaaatttctctccaca2916OATP2102intron 1 + (10058-10061)ttcaaatttctctccacaaa TTTA/Δ tttttctattaaattgtaat2917OATP2103intron 2 + (413-423)caaaaaacaggatttaaaaa2918OATP2104intron 3 + (1595-1603)ttgccaagtaattcaagtgc (T) 8-10 gtatttaaaacaacttttca2919OATP2105intron 4 + (10-23)cctctgtgccactatcagta2920OATP2106intron 5 + (1567-1572)gtgaatataaattacttgta CTTGTA/Δ 2921aattaaaaaaaaataagtagOATP2107intron 5 + (1577-1585)attacttgtacttgtaaatt (A) 9 10 taagtagaataattaagagt2922OATP2108intron 8 + (1939-1941)ttctctaactccttctactc CTT/Δ atttcaagcagatgcaactg2923OATP2109intron 10 + (3077-3078)aaattctttatctacttttt (CTT) ttccctctttctctgctttc2924OATP2110intron 10 + (3077-3078)aaattctttatctacttttt     ttccctctttctctgctttc2925OATP2111intron 11 + 11011aacaagtgagacttcactaa A/Δ tataatgcaetgtatttgca2926OATP2112intron 12 + (1160-1169)agcatgacatggtagagatg (A) 9-11 gcatttttaacatttgttaa2927OATP2113intron 12 + (1310-1312)tccatcttaatataaaatgt TGT/Δ ctactcaaaaggagaagtct2928OATP2114intron 13 + (9-34)tatatatatatatatatata2929OATP2115intron 13 + (35-64)aaaaaaaaaaaaaaaaaaaa (TA) 10-212930tacacacacatacatatattOATP2116intron 13 + (1379-1387)aaaattattcaccacaatac (A)8− 10 caaagtaaagttatgaacac2931OATP2117intron 13 + (1916-1928)gtctgcttttacagcaattg2932OATP2118intron 14 + (588-596)caattatactttacctcttt (A) 8-10 ctaatttcaaattcatatat2933OATP8i5′flanking − 1413aataggggcttaataactct G/C aaacttatgatttctcatat2934OATP825′flanking − 1345gaatttatcctacagatatg A/G ccacacagaaaatgacatat2935OATP83intron 1 + 38962atgaaattagtttaaaaata G/A caaccttaactatactcctc2936OATP84intron 2 + 253acagacttaccaacaaagaa T/G tatccttcccaaaatgtcta2937OATP85intron 2 + 329actcatggtttgcaaattaa C/G tttttagyaaactttatctc2938OATP86intron 2 + 2568ccattctggtgctttctttc G/A tgaaactattttccatcagt2939OATP87intron 2 + 2679ctcttattgctcttcttcca T/C gttttaatctaaataattta2940OATP88intron 2 + 2753caggaaactttcacaaagcc C/A ctaattaatttaagctccct2941OATP89intron 2 + 3132tggtttaatgtaggagagtt T/C accttcacagttaaattaca2942OATP810intron 2 + 3193aatgtcttgggcatatttgc A/G ttcatttggggcattcagtt2943OATP811intron 2 + 3207atttgcattcatttggggca T/C tcagttctactagatacaaa2944OATP812exon 3 + 334gaactggaagtattttgaca T/G ctttaccacatttcttcatg2945QATP813intron 3 + 76agaattttatttttatactt G/A taagtgggcagttacctttt2946QATP814intron 4 + 2443tcaatttcatgttgctctta C/T agttataggtattctaaaga2947QATP815intron 4 + 67taatcacgtctataaagttt C/G tgatattctttaacaaaatt2948OATP816intron 4 + 91tattctttaacaaaattgat T/A taagaacaaataggaagaac2949OATP817intron 4 + 197ggtttgaactgcacctgttc G/A cttatatgcagcttttgtcc2950OATP818intron 4 + 813tttaacagaataaaaaaaaa T/A attttgtaacgacaaaagaa2951OATP819intron 4 + 974atatgcaccttaaaaataac C/G tggatttttaaatatgtaat2952OATP820intron 4 + 1003taaatatgtaatgtacataa G/T gaatattatgcatattttgt2953OATP821intron 6 + 155cattaataatcagaataaaa A/G agaaatttagctcctattta2954OATP822intron 6 + 750atccaactggggtttagatt T/G cctctttctgcctctcctcc2955OATP823intron 6 + 760gcctctcctccatctgcacc C/T tctcttttcctcagcaaaca2956OATP824intron 6 + 1248ctatgccctgtaatctcaca C/T ttccctttatttaaaattgg2957OATP825intron 6 + 1500tcgtgtctgtgttagcatat A/G ataactcatcagggtttgtg2958OATP826intron 6 + 2008ataacataaatgagtaaaga A/G tatcaagggcaggaaattag2959OATP827intron 6 + 2087actactctccccatacacac T/C aaaactcatgtgctccccag2960OATP828intron 6 + 12305tcatctatggaggactgcaa T/C cattatcattatttcccaga2961OATP829intron 7 + 363taacaaatgataccagccat C/G atactattctctggtaatag2962OATP830intron 7 + 411cctttattttttgagaacct G/A gtggatgatattaagacgta2963OATP831intron 7 + 428cctggtggatgatattaaga C/A gtatatagatcactgtaata2964OATP832intron 7 + 634aaaattatatatatacatat A/G taatcttacctaagtattca2965OATP833intron 7 + 1791tgtttttttaagggtagtga T/C gtgaatagtaaagcgaattt2966OATP834intron 7 + 2000agttgagcaaattgctctca G/A gtagcataatgtcacttgaa2967OATP835intron 7 + 2043gtttattgatccatttttta A/G tggatcaacattgtagtgag2968OATP836intron 7 + 2171atttattttgagcaaaggtc G/A cgactctcttagaaagcctc2969OATP837intron 7 + 2173ttattttgagcaaaygtcgc G/A actctcttagaaagcctcac2970OATP838intron 7 + 2179tgagcaaaggtcgcgactct C/T ttagaaagcctcacaaatca2971OATP839intron 7 + 2219atttgtaactttaagtctta T/G ataacttatatttacaaaat2972OATP840intron 7 + 2261cagatattaatatatatttt A/T ttattgaaatatgttatttt2973OATP841intron 8 + 150acaaaatttctccatcttgt T/C atatcatcgttgttctgcat2974OATP842intron 8 + 154aatttctccatcttgtaata A/T catcgttgttctgcatttga2975OATP843intron 8 + 1303ttttttttgagatggagtct C/T gctctgttgcccaggctggg2976OATP844intron 8 + 1372aagctccgcctcccaggttc T/G ccacccttctcttaaagaaa2977OATP845exon 9 + 1272tccttcttgtttcaacttct A/G tatttccctctaatctgcga2978OATP846intron 10 + 63tcacagatttgatttaataa A/T tacttatcaaatcttcctat2979OATP847intron 10 + 911cttgcccaatatcctaccaa C/T gtattattaaacggcatgga2980OATP848intron 10 + 972tcctagtttccttgaagata G/A gctacaactttagtaaactt2981OATP849intron 10 + 1101tccctggtcctgtgttgtcc A/T gtagtgaagacctgaaagag2982OATP850intron 10 + 1103cctggtcctgtgttgtccag T/C agtgaagacctgaaagagag2983OATP851intron 10 + 2027cccattttcatgagtggcta A/G gttttgtcccgtttcaaact2984OATP852intron 10 + 2028ccattttcatgagtggctaa G/A ttttgtcccgtttcaaacta2985OATP853intron 10 + 2148gtattttggaaagaaaatgt A/G ggtggaagagaaatatttta2986OATP854intron 10 + 2214atatacagaatttcatacac T/C aatttcttaaattcctaaat2987OATP855intron 10 + 2316taaatattttagtttgagac T/G tctttaaatataatggaatg2988OATP856intron 10 + 2372tgtatttggcaaatgtattt G/T ttaatatttcaaaaactatt2989OATP857exon 11 + 1557cagaacagaaattactcagc A/G cacttgggtgaatgcccaag2990OATP858intron 11 + 147tttcttagaattattttgat A/C tttcaataacatcattaata2991OATP859intron 11 + 10339aaaaaactgcattttagtgg G/C ttagctagaaaagatttgtc2992OATP860intron 11 + 10358ggttagctagaaaagatttg T/G ctcatatacacaataaatta2993OATP861intron 11 + 10538caacagaggatcaatgtaaa T/G gaaatctcttaaattaaaca2994OATP862intron 12 + 55ataaatattaatgttaaata C/T taaagactgaatgcaattaa2995OATP863intron 12 + 1802taaaatgaatcggtaaaaca T/G tcatgtataaatcactgtca2996OATP864intron 12 + 2612ataggcatataatactcttt C/A ttccctctgtatatagggag2997OATP865exon 13 + 1833aacagctgtggagcacaagy G/A gcttgtaggatatataattc2998OATP8665′flanking (1590-1587)atatacatascatataccta TATC/Δ tatgttatgtgtctgcttat2999OATP8675′untranslated − (11-28)agcatcagcaacaattaaaa ATATTCACT3000TGGTATCTG/Δ tagtttaataatggaccaacOATP8685′untranslated − (4-7)tattcacttggtatctgtag TTTA/Δ ataatggaccaacatcaaca3001OATP869intron 4 + (213-214)cctgttcgcttatatgcagc (T) ttttgtccaaccaaacagaa3002OATP870intron 4 + (213-214)cctgttcgcttatatgcagc     ttttgtccaaccaaacagaa3003OATP871intron 4 + 505tataactttctctttataaa G/Δ atgcaaaatgttatagcatt3004OATP872intron 4 + 616aaaaataaatgaagtggagg A/Δ aaaaaaatgatttcaagttt3005OATP873intron 4 + (804-812)acatccatgtttaacagaat (A) 9-11 tattttgtaacgacaaaaga3006OATP874intron 4 + 855gagattgtttaaccaaatta G/Δ gaaactattattcaacacac3007OATP875intron 7 + (619-628)ttttatatatgaattaaaat (AT) 4-5 catatataatcttacccaag3008OATP876intron 7 + (1773-1779)attttctatattatgaactg (T) 7-8 aagggtagtgatgtgaatag3009OATP878intron 8 + (1270-1290)gagatggagtctcgctctgt3010OATP879intron 10 + 665ttctttcttaactcaaaggc T/≢ tttttttttccatgtgacac3011OATP880intron 11 + (247-250)aaaaatcttaaggcacacac TGAT/Δ tgacagttgccttgattgta3012OATP881intron 12 + (1622-1630)aaataaattgttggcatcta (T) 8-10 atttttctaagggtcgctgt 3013OATP8823′untranslated + (2464-2465)gagaaaagcctgatgccttt A/Δ aaaaaaaatgaaacactttg3014OAT115′untranslated − 127gcagctcggactcagctccc G/A gagcaacccagctgcggagg3015OAT125′untranslated − 20gaaggcctcagcccccagcc A/G ctgggctgggcctggcccaa3016OAT13intron 3 + 150caatagaacaaccttttctc G/A ggctcatgccgccctgaccc3017OAT14intron 4 + 211ttctctggcttcccccactc A/C gttctccagcctgcctgctc3018OAT15intron 5 + 33gagacttcccatgataacct C/T ccagggcttcacccccaaac3019OAT16intron 6 + 168gaaccagatgcccccagcct C/T gactcagtcccagtctccac3020OAT17intron 1 + (58-71)gtacatggagaaattaactg3021OAT18intron 3 + (1306-1319)tcaagagtgtggagggggca3022OAT21intron 4 + 842ttgacctccaaaagtgtttg G/A attacaggcatgggccattg3023OAT22intron 5 + 33gtgtgtgtgagcatgcatat C/A tgtgtgtggtggggagtggg3024OAT23intron 5 + 183ccacatccatcattcgagac A/C aactcgtctcagctgccatg3025OAT24intron 5 + 184cacatccatcattcgagaca A/C actcgtctcagctgccatga3026OAT25exon 7 + 1269actagactgctagtgtcctc C/T ggtgagcccagtcccatagg3027OAT263′untranslatad + 1792ataaatgtgtacatgagtgt A/G tgaacacaaatacataaggt3028OAT273′flanking + 1386tgtagcagcccacatcgcca G/A tgttcacacctgagagagag3029OAT315′flanking − 580ctgtgtcagagacacagaca C/G ggaggtcctggctgccccag3030OAT325′flanking − 463ttcctgagaggcaaatcccc T/C tcccctactcgggaggtgcc3031OAT335′untranslated − 16cctgcccacagctctggctc G/A tcttgccccagtgccatgac3032OAT34exon 2 + 153cctgtccaccactgtcgccc G/A ccccacaatgcctccacagg3033OAT35intron 2 + 177gcaccaagacccttggcttc T/C tcccactcagagtccaagca3034OAT36intron 2 + 6201gctcatcctctctggtcctt T/G tgccccagcacaggttcctc3035OAT37intron 3 + 79tctgctccacccgtgcaccc G/C caaagaggcaaagagctggg3036OAT38exon 5 + 723tggcgttggctgcagttaac T/A gtgtccattcccttcttcgt3037OAT39intron 5 + 524tcgaagtacaaaggaaagtt T/C aaagagaagcctgagcctgg3038OAT310intron 7 + 386gaccaatgggtttcagactc G/A aagacaaaaattatgtttat3039OAT311intron 7 + 754gcccacgtcagacatgacca G/A tcaatcacagcactttctcc3040OAT312intron 9 + 81attgtcctgtcctctaccca G/A gggagccatcctttatgaac3041OAT3135′flanking − (661-660)tacatttggtccccaggggg (G) agcggctgatcaggagagaa3042OAT3145′flanking − (661-660)tacatttggtccccaggggg     agcggctgatcaggagagaa3043OAT315intron 8 + (211-212)tctgacttggactgggcaaa AA/Δ gtatggtggtatctggatag3044ALDH1A215′flanking− 716cagggatcctcattctgagc C/G cgaggcgagggggactcgca3045ALDH1A22intron 1 + 314cggtcccgactgccgcgggg G/Δ aaggcgtcggaaccgcttag3046ALDH1A23intron 1 + (664 -675)ataacgaacgttgacatctt3047ALDH1A24intron 1 + 1370gcatgcagcttagaagtttt A/G ttttatgagggtctctaacc3048ALDH1A25intron 1 + 1557ggtacgtttttcagaattta A/Δ tttggaagctcttccagttc3049ALDH1A26intron 1 + 1934tcagctctttagtgagactt C/G taaattttctaagacaagca3050ALDH1A27intron 1 + (1971-1980)agcatagtggacaagcagta (T) 9-11 aaacgtgaagagcagaagct3051ALDH1A28intron 1 + 2295tactgtaagacaatatgtta T/C tgttttttgtcttgctaaac3052ALDH1A29intron 1 + 2387ttgggacccacatagagtca C/T tacttaaaataaatgaccag3053ALDH1A210intron 1 + 2841aggaatgtgctttttaaaac T/Δ agatggtgttagtcaaggag3054ALDH1A211intron 1 + 3035gacttttataattttgtata A/G ctgatattataggaatacac3055ALDH1A212intron 1 + 3319aaagagttatgttttttttt T/Δ ctgcatctgatattatatgg3056ALDH1A213intron 1 + 3474ttgtctttttatttattcat T/C taaacttctgttttctgggg3057ALDH1A214intron 1 + 4186cettccaaacctttacttaa G/C attgtctgttttggtcataa3058ALDH1A215intron 1 + 4222cataaattgtcagtcaaact A/G catgttaatagaggacttca3059ALDH1A216intron 1 + 4254aggacttcaggttttttttt T/Δ aaatactttttcataactat3060ALDH1A217intron 1 + 4397cccttccactacatgggcct A/G tgttaccatgtggaattatc3061ALDH1A218intron 1 + 5935aactccaggttgcaaataga T/C gtttctggtattttaagtag3062ALDH1A219intron 1 + 6206ttttgaaagccctcctagca T/G ttctttaatttctttattga3063ALDH1A220intron 1 + 9559agataaattgatgaattatt C/T actctgtgctgctgatagat3064ALDH1A221intron 1 + (9631-9632)taaaaagaatttctaaaaga (AAGA) ccttttttttgaataactct3065ALDH1A221intron 1 + (9631-9632)taaaaagaatttctaaaaga     ccttttttttgaataactct3066ALDH1A222intron 1 + 12731ctgaaatagaaacctttcag T/A gtaccttgcagagcagtgaa3067ALDH1A223intrnnl + 13442cagtgtcataaagatccagc G/A gaaatcaaaatgtttcatat3068ALDH1A224intron 1 + (14173-14176)tctaaaaaaataaataaata AAAA/Δ gagaaaattaagtttaagat3069ALDH1A225intron 1 + 14586actcatttattggttcaaag C/G cttcttcaaccttaggatat3070ALDH1A226intron 1 + 14595ttggttcaaagccttcttca A/G ccttaggatatgcattgagg3071ALDH1A227intron 1 + 14711gtttgagacattaacttcta A/G ttcaactgaagatgctagtt3072ALDH1A228intron 1 + (15327-15337)gaagagcacagtagaaagac (T) 9-11 aaccctagcaatactattga3073ALDH1A229intron 1 + 17258atcagtacaatgtgttgggc A/G tacaacacttaatttaaaat3074ALDH1A230intron 1 + 18277taatacaaatcatttgaagc A/G tttactattaaaaaaacaaa3075ALDH1A231intron 1 + 18734ctttgagcacctactgcatt T/A taagtgctgttaagatgtgg3076ALDH1A232intron 1 + 19081ttaatcacctcaatctttaa C/T gaatttcttgatttttcttt3077ALDH1A233intron 1 + 21514aatcaggatatggggggttc G/A ttctttattctgccacaaat3078ALDH1A234intron 1 + 21732cattttaaaatagtgcttta A/G taggacttggctgttaaagt3079ALDH1A235intron 1 + 21865tggcataggtttaaaaatgt C/T tgttgtaggactcttttcca3080ALDH1A236intron 1 + 26282taaagaaggagaaaaaaaaa A/Δ ctaatctgagactttgcagg3081ALDH1A237intron 1 + 27805ggatgatgctacccaaggaa T/C tgcacacttccagacagtac3082ALDH1A238intron 1 + 28204tcactccattttttaactgt C/G cttcctaatgtgtggttaa3083ALDH1A239intron 1 + 28521tctttgttacacttcttaaa T/C cggggtatcagataatcttc3084ALDH1A240intron 1 + 49478gaataaaaggatagggacat G/T ggtaagaccactttttccct3085ALDH1A241intron 1 + 49834gcctctcaattttctcatgt G/T taatagagagaaaaccctgc3086ALDH1A242intron 1 + 50351gactgactggttcataagtt C/G agaaatttcactgtggtgct3087ALDH1A243intron 1 + 51181tgttattaccatagtagttc C/T gtaacacttggccgttgact3088ALDH1A244intron 1 + 654ttaacctctcttgagtaaaa G/A gaatccttcagaaccagagg3089ALDH1A245intron 1 + 668gtaaaaggaatccttcagaa C/T cagaggggatggtacggacc3090ALDH1A246intron 3 + 712catacacttctgctccgttt G/T ccctgtcattctgtgagcca3091ALDH1A247intron 3 + 1273tattcatactgtgaaaaagg T/A gtttcatggtgaagaaattc3092ALDH1A248intron 3 + 1743ccacacctaaatgagattcc C/T gttttaaacactctcaagct3093ALDH1A249intron 3 + 2891tgcacatatatactcattgt A/G gtttttactaggaactagac3094ALDH1A250intron 3 + 2919ctaggaactagaccaaacig G/A cagtactagaaatcttttta3095ALDH1A251intron 4 + 290cattgtgctagattaggtgc T/C ggggtaggtatgaaggggca3096ALDH1A252intron 4 + 380ctccttgccctcctgaaaca T/C ataagatctactctttggaa3097ALDH1A253intron 4 + 461gattatggctgattttcagt G/T tctttttaatatttttctct3098ALDH1A254intron 4 + 506tctatatttctcgaacggcc G/A tgaattactttcataatcta3099ALDH1A255intron 4 + 1952ttggtccccactccacctgt C/G atttcattattaaaacaaca3100ALDH1A256intron 4 + 2079ctctatttggcctaacggta C/T cttggttttcttttacttcc3101ALDH1A257intron 4 + 2519ttgggtcataagagctctct C/G catggtgtctcaaacagatg3102ALDH1A258intron 4 + (2840-2851)cacagtgaagtctggaatat3103ALDH1A259intron 4 + 7231aataggatacaaatacacaa A/T gatagtgattcagatcctaa3104ALDH1A260intron 4 + 7958taaaatcgtttttattgtta C/T taggtatataaaatttgcta3105ALDH1A261intron 4 + 8090tctgattttatcactgttta C/T agattgcttagtcatactca3106ALDH1A262intron 4 + 12823tgttagcctgtagctaaatg C/T ttttcaaatatgtgaacggt3107ALDH1A263intron 4 + 12939atgaggtccgacttttaaga T/C ttttgtctacattttcttec3108ALDH1A264intron 4 + 14935tattgatggagticttttta T/G aaatggacttttaccttctt3109ALDH1A265intron 4 + 15321gcatttgggtgtctgagaga C/T atatccagaaatatgctatg3110ALDH1A266intron 4 + 15412tttcaagtttatttctgttt T/G tttttttttttttttttttg3111ALDH1A267intron 5 + 1888aatccaaacatctgtacttt G/T tagtggacaagatttatgtc3112ALDH1A268intron 7 + 9166gaaaagctactttattcaaa G/A ataaaagtattttaagaaaa3113ALDH1A269intron 7 + 9914aagctggagaaaatactagg C/T tttcctcaacagtgatttcc3114ALDH1A270intron 7 + 18942tttggaggggaactaatccc G/A tgacttctaggttatctctt3115ALDH1A271intron 7 + 19820ttcacccctcattttaggtt A/G ggggaggtggcttgctacag3116ALDH1A272intron 7 + 19826cctcattttaggttagggga G/A gtggcttgctacagttttag3117ALDH1A273intron 7 + 19913cgtgaatcattcagtatttt A/G tttaaaaataccagtttgaa3118ALDH1A274intron 7 + (20110-20111)catgatttattctctaacta (ACTA) tgctaagtcaaagattctgc3119ALDH1A274intron 7 + (20110-20111)catgatttattctctaacta     tgctaagtcaaagattctgc3120ALDH1A275intron 7 + 21857acaatgaaaattaagaaagg A/T gaagagggaagaagcagaga3121ALDH1A276intron 7 + 21929tacaagacacaggcatcttt A/G actagtttactgggatctct3122ALDH1A277intron 7 + 23308ggctttgacttcggaaacct G/T tgggttataacaaagtactg3123ALDH1A278intron 7 + 23554gacattggtgaaaaccaggg C/T tgtttaggagtgtcctgtcc3124ALDH1A279intron 7 + (23701-23703)catctgagatttgccttgtg GTG/Δ tttaccgagttagtgggtgc3125ALDH1A280intron 7 + 26479gatacatgaacaatttgttt T/C atcctcatgatatctttcaa3126ALDH1A281intron 7 + 26561taaaggccacaatgcagtga T/C tgaaatctccagttacattt3127ALDH1A282intron 7 + 26662tttccttagtccttccatca C/T gaaactaaagctgtcttcca3128ALDH1A283intron 8 + 76tttatatctccacttttgat G/A ggacactagcaaaagatatt3129ALDH1A284intron 8 + (700-711)ccctccacttgttgccaggc3130ALDH1A285intron 8 + 724ttttttttccctccacttgt T/C gccaggcagagctgctttcc3131ALDH1A286intron 8 + 800cagattgcttgaatttcagc C/A ccagcttggaatttgcagag3132ALDH1A287intron 8 + 1251gatttctgtgaaaattgaga G/A gatctggcaacctggggctc3133ALDH1A288intron 8 + 1627ggcccctccccaggcaaagc G/A gtgagaacatggctgtttcc3134ALDH1A289exon 9 + 141tggagcgggccaagaggcgc G/A tagtggggagtccctttgac3135ALDH1A290intron 9 + 778aaccagtctggacagatccc T/C tgtagcttgtgaaagtgtag3136ALDH1A291intron 9 + 801tagcttgtgaaagtgtagga A/G gtgaagggctggctcacttc3137ALDH1A292intron 9 + 868tctgaaggcctcgtgtactt T/C agtggggtggggagggccac3138ALDH1A293intron 9 + 1338aatttttgcctctttttact A/G tcaatacaacttgctaagtt3139ALDH1A294intron 10 + (227-229)ctatgtgcttatgattatta TTA/Δ gccaacagaacaatcagaat3140ALDH1A295intron 10 + 316ctaaatgtgggtcactggga T/C gttaaccaggagagagaatc3141ALDH1A296intron 10 + 368ctttacatctgtgcaagaga G/A ggacaaggagcaaatcagcc3142ALDH1A297intron 10 + 660gtaaacttgcattgaaatgt G/A gaaagcaggtaaaggaatga3143ALDH1A298intron 11 + 104tggggaataccaaaagcaac C/T aaagttcaccagaaaagggg3144ALDH1A299intron 11 + 229aaacttctaaaagaaatacc A/G tgccagtcagattatgtgct3145ALDH1A2100intron 12 + 117catacattcaacaaacattt C/T gtggagcacatgctactata3146ALDH1A2101intron 12 + 691gatagggaagatcactgtga A/G ctggaaaaatctgggaaacc3147ALDH1A2102intron 12 + 1934catcttgtctagattgcatg T/C ttgtttgtttgtttgtctct3148ALDH1A2103intron 12 + 1973ctacttacccccaaaacatg T/A tttctctttcttaaatgacc3149ALDH1A2104intron 12 + 2722ccagagtgactccagtatac C/A tcactgcccaggacccacag3150ALDH1A2105intron 12 + 3855cacttgaaagcaaccataat T/C gtgaggtttctgatgctgta3151ALDH1A2106intron 12 + 4185ttgctttaagcgaaatgaac T/C atacggacaggagaacagcc3152ALDH1A2107intron 12 + 4991acaggaacacttagacatgc A/G acccactcccaccctccgtc3153ALDH1A2108intron 12 + (5018-5019)cccaccctccgtcttggggg (G) aggaaagcacactactgtcc3154ALDH1A2108intron 12 + (5018-5019)cccaccctccgtcttggggg     aggaaagcacactactgtcc3155ALDH1A2109intron 12 + (5051-5052)actgtcccaaagaactaata (A) ctgaaccagtgctgccttgt3156ALDH1A2109intron 12 + (5O51-5052)actgtcccaaagaactaata     ctgaaccagtgctgccttgt3157ALDH1A2110intron 12 + (5300-5302)ttaaagttttaaaaaaactt CCT//Δ taaaaactactcatgagatg3158ALDH1A2111intron 12 + 5405catcccaggacttgctgttc G/C caggtgataaactgcacctc3159ALDH1A2112intron 12 + 5435aactgcacctccccaggact C/A ccgctgcactcacatgcagc3160ALDH1A21133′flanking + 449tttgggccgggaacaatttt T/C caaggttgtaaagccaaatt3161ALDH1A21143′flanking + 597acctgggatattcctgaccc A/C atctggttttcttttaccca3162ALDH1A21153′flanking + 669atagagactggaagtcatca T/C gtgcagttcaccgcttctga3163ALDH1A21163′flanking + 1122cgtgctccactgagctcctc T/G gtcacaccccattcttgccc3164ALDH1A21173′flanking + 2214tgcagctgtaaaaagaaatc T/C gtaaatggtgaccgtactac3165ALDH1A315′flanking − 1425cagtgttagccagccgatat C/T ggtcaaggctgccccgctcg3166ALDH1A325′flanking − 1379ccattatcccctttccccgg C/T ctcagctgtgcactccaggc3167ALDH1A335′flanking − 1270aacttacccctctatccagc T/A ctatccagaaggacaccagg3168ALDH1A345′flanking − (1214-1213)tcggaggcctcaaaacagga (GGA) aaataaggagacccctcccc3169ALDH1A345′flanking − (1214-1213)acggaggcctcaaaacagga     aaataaggagacccctcccc3170ALDH1A355′flanking − 1103gcacagcttttgtcaggagt C/T cgtgcctccggtctttgttc3171ALDH1A36intron 1 + 986gccttaactttccccacctt T/G ggcttctcttgatttttgct3172ALDH1A37intron 1 + 1462gtacaggatttcaaaatact G/A tatatagaaaccagacagta3173ALDH1A38intron 1 + 1661cctgttgtcttggtgggtgc G/A caacctttgccagttaaagg3174ALDH1A39intron 1 + 2360agaggatagaagtcccttct A/G atttagagggcctctttctt3175ALDH1A310intron 1 + 2516tgaaaacatattctttttga G/A tttagctgagtggcctgttg3176ALDH1A311intron 1 + 2624cctgagacaccttacagctc C/T gtcctgcttccatgtcattc3177ALDH1A312intron 1 + 3255tttcatctttctacaaatgg G/C Cccctcttcctggctgcact3178ALDH1A313intron 1 + (3643-3656)aacattctatcaacttttaa3179ALDH1A314intron 1 + 4265ccaaaagccctctcttttaa T/C atgacattaataagacaatt3180ALDH1A315intron 1 + 5187caagatggataagacgtcac C/T taaggtccttagcatgttga3181ALDH1A316intron 2 + 43ctctaagtaattcaattatg G/T atgaccaaaggataaggaaa3182ALDH1A317intron 2 + 127cagggcctgggctagctgcg T/C gaattggcatgtggttctca3183ALDH1A318intron 2 + (285-300)atcaattatttggacctgga3184ALDH1A319intron 2 + 778cgtgtgcagagtaggcttgg A/G ttttatcttgcccatgagtt3185ALDH1A320intron 2 + 1216actcggtagagtcactcctg A/C ctggtgtcccacatccactc3186ALDH1A321intron 3 + 81accatggggtatgggaaaaa A/C gatcacggtcctggttttgt3187ALDH1A322intron 3 + 236gctcagcttcttgaccaagt T/G gttgtctataggcagttgag3188ALDH1A323intron 3 + 1467ggcccggttgtaggggagga G/T atctcctttctggcctttga3189ALDH1A324intron 3 + 1725ccacatgttccccgggtgag A/G gtagctccctcccagggtaa3190ALDH1A325intron 3 + 3777gccagaagtagatgccccca A/G ttcagctgctgcattactgg3191ALDH1A326intron 3 + 3829caagtcactgggccgttagc G/C tccgtgcctgcaccttgaag3192ALDH1A327intron 3 + 4299tcactttccacagccacact G/A gccagcctggccgagaagga3193ALDH1A328intron 4 + 84agagccccccctgactgttt C/G cctaaggcaccattcccaac3194ALDH1A329intron 4 + 126ccactccctctccaaatggt A/G ctgccaattcttcttctaag3195ALDH1A330intron 6 + (290-291)tagagaattttcaggggggg (G) tcaaccaagagggagccaaa3196ALDH1A330intron 6 + (290-291)tagagaattttcaggggggg     tcaaccaagagggagccaaa3197ALDH1A331intron 6 + 705aacagctggtgatgagccaa T/G tttccactttcctttggtga3198ALDH1A332intron 7 + 56ggggcgtgttatttgacacc C/T gtgagcttttcctttgacag3199ALDH1A333intron 7 + 1107gatgctgttactctccttgg A/G gacagacactgccctgtgga3200ALDH1A334intron 7 + 1610aagagccacacagaaccacc C/G ccctactgggctgttggaat3201ALDH1A335intron 7 + 1820cacctgtaagtggagcggct T/C agaccaaggatcccaggatg3202ALDH1A336intron 8 + 963gagaaaggacaggaggagga C/T acaggctctcaggaaggaaa3203ALDH1A337intron 8 + 1824accattcttatccactaagc G/A tgtcccccaagatcttattc3204ALDH1A338intron 8 + 2384cgcctccctcgcccctcccc C/A tccagtggacttggcagtgg3205ALDH1A339intron 9 + 24atccccctggtgtgtgtgaa A/C ccatggtgcttgtctagggg3206ALDH1A340intron 9 + 91gcctacagggtccctctccg T/C gaaaggaatgccgacctgtc3207ALDH1A341intron 9 + 219actgaggcatgggaggaggg C/G gctattcccagggcagaagg3208ALDH1A342intron 9 + 435ccagacggagagagcctggg G/A caggagaatgtatctccagg3209ALDH1A343intron 9 + 1472ttgacttttgaggccagata C/T accgatttcttccaagagaa3210ALDH1A344intron 9 + 2038taaacaatgtgttcctacgg G/A ctctccagggagtgtggagt3211ALDH1A345intron9 + 2124caaacagggtctgccagatg G/A catatgcccagcagccaggg3212ALDH1A346intron 9 + 2154agcagccagggaggacctgc G/C gttgggcgaagcccctgtgt3213ALDH1A347intron 9 + 2197cttttggcccctcagggagg G/A gaagagcagctcagcagcat3214ALDH1A348intron 9 + 2466ttcttagttcctcatgtttc C/T ctctagaatgttttcgtgtg3215ALDH1A349intron 9 + 3655gattggtcaagtggcatgca C/T ggtttatgccctctctcctg3218ALDH1A350intron 9 + 3954gggtgcgcttttgacaactg C/G tcagtagcgtgttcacaagc3217ALDH1A351exon 10 + 88tggaatgcgggggctcagcc A/G tggaagacaaggggctcttc3218ALDH1A352intron 10 + 8tgccaaagaggaggtacaag G/A gggctgtggcaaggctacga3219ALDH1A353intron 10 + 307ctctctgattttctaacaca A/C ccggtccccgagtcagtcat3220ALDH1A354intron 10 + 378gtgggttttgccaggaatca G/A ttcaagaacctgtggattca3221ALDH1A355intron 10 + 975aatattgtgtcattccttcc C/G ctggtagttattatggaaac3222ALDH1A356intron 10 + 1088cagtgccaggagccaggggg C/T cttctccagatgactctgag3223ALDH1A357intron 11 + 105ttgtttacattgtatattat A/G taccaagccctgtctcagtg3224ALDH1A358intron 11 + 274agggctccagtacctgtgcc T/G gtggcccctgtgctgtactg3225ALDH1A359intron 11 + 1088cagtgccaggagccaggggg T/A cttctccagatgactcigag3226ALDH1A360intron 12 + 96ctccaatctgctgacacccc G/A tcccccccacaccgccgctc3227ALDH1A361intron 12 + 5642tctgtgctaacgtctgcttc T/C ctcatgccccctaggctggc3228ALDH1A362exon 13 + 104gggctccttcctcaaacatc G/C gacggcggaatgtggcagat3229ALDH1A363exon 13 + 281ataggttgtctgtgaaatcg C/T agtcctgcctggggagggag3230ALDH1A3643′flanking + 743gtgagcaggaaactgtagga G/A aaggatattttccctcattt3231ALDH1A3653′flanking + 1145gcctcccagctaccccaccc A/G cctcaggaggggtcattcca3232ALDH1A3663′flanking + 1185aacctagggtgctgagaatc T/C gggtgggattaccagcaaaa3233ALDH1A3673′flanking + 1600acaccacgccctgcaaattg T/C tgggaacttgtcggtggcaa3234ALDH1A3683′flanking + 1847caggagccctgcggctgccc C/G ggttctgtgaaatggcagtg3235ALDH1L11intron 1 + 252cgcagcgccaggactggccc G/C ccgaggatctggccggccgc3236ALDH1L12intron 1 + 544ctcaggggctgcgctggagt C/T ccagctccagccactgcgct3237ALDH1L13intron 1 − 6596cagatttttcttaaggtgca C/C tagccactgaggatattitt3238ALDH1L14intron 1 − 6513caattatggtttatcttagg C/A acatgtttatagagatagta3239ALDH1L15intron 1 − 6478atagtattcttacttagctt G/A cattctaaattttgttccct3240ALDH1L16intron 2 + 240gtggcattagggtcctggag A/G agggctatagagaagcccag3241ALDH1L17intron 2 + 1326gaggaggagaccygagagga G/C agccagtccagtcagggccc3242ALDH1L18intron 3 + 386gtcctactctaacttccact G/A ccgctgctctgggcagcaca3243ALDH1L19intron 4 + 271gggcccgttcaatagacaag C/C aaggctaaaggcagggactg3244ALDH1L110intron 4 + 356taggattctatttctctctc C/T ttcactcgttgattctcctt3245ALDH1L111intron 4 + 608gtgctctgataggctgtctc A/C gtcacatgcttcctgctggg3246ALDH1L112intron 4 + 664ggtcacatggcctgagcggc A/C gggcggctcagtcacctggg3247ALDH1L113intron 4 + 785gagggctgcttgcccctgcc C/C gaggacaggctggcagggac3248ALDH1L114intron 4 + 874ccctggggagcccttgctgt T/C tgggcgcagcaggaagagca3249ALDH1L115intron 4 + 1349tccctcaggctcttgctcac C/A tgggcccagactccctggct3250ALDH1L116intron 4 + 1799ctggggctgggaaggaggca C/A ggtcctattgctggggatag3251ALDH1L117intron 4 + 1815ggcagggtcctattgctggg C/A atagcaacccactggatctc3252ALDH1L118intrOn5 + 272aaagcccacagggagataag A/C gtgggagttagggggcaaaa3253ALDH1L119intron 5 + 301tagggggcaaaacgtcagcc C/A tagtgcgagcagtcttaaag3254ALDH1L120intron 5 + 343caaggtgtgagggacagtgc C/A ggtctctggagcaatagcca3255ALDH1L121intron 6 + 926cctgcctgggctactggctt C/T gggggcttcttctcacccac3256ALDH1L122exon 7 + 41aacgctgaacacttcaggcc T/C ggtgcccgagggagacgctt3257ALDH1L123intron 7 + 305cctagaatcagagagaagcc C/T tcccagggagcctgggtica3258ALDH1L124intron 7 + 837gtccggacaaaccccatggg C/T gtggtacccccagccgtgtt3259ALDH1L125intron 7 + 866cccagccgtgttgctgtgtc C/T ggcctaccagagtgaggcgt3260ALDH1L126intron 7 + 884tccggcctaccagagtgagg C/T gtggcagtatggggcctggc3261ALDH1L127intron 7 + 1118aatgttccagaaaatcatgc C/C aggcagtaagggcagaggaa3262ALDH1L128intron 7 + 1168aaagtaaaggttcaggagaa C/A tctagcctggggctgctccc3263ALDH1L129intron 7 + 1451cagggcacccacagcatctg T/C ccagagacctgcaaagacag3264ALDH1L130intron 7 + 1489caggaatgcaaagaaggcaa T/C taagtgtcttaagaggaagc3265ALDH1L131intron 7 + 1579tcagggtgggaggggagtga C/A gagagaccagctgagcacac3266ALDH1L132intron 7 + 1691ctggctgggctttagcttgc A/C gaaagctccagaacatcttt3267ALDH1L133intron 8 + 2627aaagaggagagccgggggtg C/T ttgtgccaggggttggggga3268ALDH1L134intron 8 + 2646gcttgtgccaggggttgggg C/A aactggttctgattgggcct3269ALDH1L135intron 8 + 2925ctgctgccctccataggtcc C/C agactgaatccttcagagga3270ALDH1L136exon 9 + 4caggtcttgctttgcagagt C/T tttggcagcggatcctcccc3271ALDH1L137exon 10 + 109cagctgttagtgaggaagct C/T cgaggggacgatgaggaggg3272ALDH1L138intron 10 + (671-672)tggcattttcctctgtctga (AG) gtcctcttagcccaccctaa3273ALDH1L138intron 10 + (671-672)tggcattttcctctgtctga     gtcctcttagcccaccctaa3274ALDH1L139intron 11 + 8caccgatggaagtgtgagtg C/A aggcccagcaccccttctcc3275ALDH1L140intron 11 + 447atgagccaaagcacgcctat C/A gtagatacacacgtgaacat3276ALDH1L141intron 11 + 601ctcaaaatgagtcatttgag A/C ggagttaatgaaagactcat3277ALDH1L142intron 11 + 639catctgcaaagggagaggga C/A ggggtagggacacagacagg3278ALDH1L143intron 12 + 684tcctgggagaagagagggtg C/T ggccagatgagccgagaaca3279ALDH1L144intron 12 + 767cgtctaggggtgcgaagcca A/C gttatggcgtggtcccaacg3280ALDH1L145intron 12 + 1014tcataggttccagtcccctr C/T gcaagcccctcaattctaga3281ALDH1L146intron 12 + 1359ctggttctgcctcagctcag C/T acagcagaggctgggtctag3282ALDH1L147intron 12 + 1734ggtggtccaggctgctggtg C/T tcagtagggccggccgagcc3283ALDH1L148intron 12 + 1901ttcagcagcctaactgaatt C/A acaatagaatagtcctgcaa3284ALDH1L149intron 12 − 470gggatggggccacctctcca T/C ctctggagatgccaggctca3285ALDH1L150intron 12 − 334aagggcagcctcttgggcca T/C gacccctttgctgtctgcag3286ALDH1L151intron 12 − 325ctcttgggccatgacccctt T/C gctgtctgcagcaagtgggt3287ALDH1L152intron 12 − 221taaggaagcgagggaagatc C/C aggaaaggagagagggacag3288ALDH1L153intron 12 − 4cccgcttcccctcaccctgg T/C caggttggcagatctcatgg3289ALDH1L154intron 13 + 34tcccacccagtgtgagcaca T/C gcagactggcccagccatat3290ALDH1L155intron 13 + 58gactggcccagccatatagg A/C gaactccaagggcagcacag3291ALDH1L156intron 13 + 125ccacaactggtggcttggaa T/C gacacctgtttattagcttg3292ALDH1L157intron 13 + 126cacaactggtggcttggaat C/A acacctgtttattagcttgt3293ALDH1L158intron 13 + 281acctgcatccagacgagttc T/C ggtgttgacagagttcagtt3294ALDH1L159intron 13 + 299tcgggtgttgacagagttca A/C ttccgtgtggatgcagggct3295ALDH1L160intron 14 + 121catttatcaaacagccatcc A/C tgtgcttcttgagcacctgc3296ALDH1L161intron 14 + 167gccaggcattgttgtaagga C/T ttgaggacaattgtatttaa3297ALDH1L162intron 14 + 205taatctcccagtaacactgg A/C tcagtcaggtccacggtggg3298ALDH1L163irtron 14 + 219cactggatcagtcaggtcca C/C ggtgggaaacaagagtaaac3299ALDH1L164intron 14 + 2275tctcatctgtgatgcatccg T/C cagacctctgctcccagcct3300ALDH1L165intron 14 + 2431tgaatgactgagtgatcaga C/C ctagagagccccagccccgg3301ALDH1L166intron 14 + 2660agccaagcatttcttgggga C/T accaagaaaccttgcttggt3302ALDH1L167intron 14 + 2740aactccaccctcaccgtcca T/C gcagctccccaggagcgtca3303ALDH1L168intron 14 + 2756tccatgcagctccccaggag T/C gtcagagggcagaggagggg3304ALDH1L169intron 14 + 2805ccgcacagcaggagaatggc T/C ccaagggagggagggacggg3305ALDH1L170intron 14 + (3636-3637)tctcctgggtgtgtgtgggg (G) tgtggggcagctcccctatc3306ALDH1L170intron 14 + (3636-3637)tctcctgggtgtgtgtgggg     tgtggggcagctcccctatc3307ALDH1L171intron 14 + 4347tccaggacagaaacagcagg C/T gtgagctgcctctcagaggg3308ALDH1L172intron 15 + 380atgtcccttatgtggcttcc A/G agaccagaagtcctggagag3309ALDH1L173intron 15 + (1055-1056)gccacaatctgcagctactc (C) tcccagcttgctgctgggct3310ALDH1L173intron 15 + (1055-1056)gccacaatctgcagctactc     tcccagcttgctgctgggct3311ALDH1L174intron 17 + 15gaaaaggtgcgtggctgggg G/C tggagcagaggaggggctgc3312ALDH1L175intron 17 + 44aggaggggctgctgtgagtg C/T gcctgggacatggcagtgct3313ALDH1L176intron 17 + 51gctgctgtgagtgcgcctgg G/A acatggcagtgctgtccaca3314ALDH1L177intron 17 − (2224-2223)ctggtgtcatctcccagact CT/Δ gtcactaaaccacaatatga3315ALDH1L178intron 18 + 140agcgtcatcacaagcatagc G/A tggcaggcagcaggcttagg3316ALDH1L179intron 19 + (51-52)tggttcactgggacagcagc GC/Δ ctggctggagggggttggag3317ALDH1L180intron 19 + 399tcaggtcagcctgggcctga C/A catggacaggggccctggag3318ALDH1L181intron 19 + 1794gtcctgtctgggggtcttaa G/C ggagtcatgagacttccaca3319ALDH1L182intron 19 + 1969tgatcggggtgcggtttggg G/T cgacaggacaggagcagaga3320ALDH1L183intron 19 + 1972tcggggtgcggtttggggcg A/G caggacaggagcagagaata3321ALDH1L184intron 19 + 2083tgagaagagcagaggggtgt G/T ccgggtgctcgagtcacacc3322ALDH1L185intron 19 + 2119acacctgtgtctgattaggg C/T tgattaggggtgcagagttt3323ALDH1L186intron 20 + 1388ttaccctcttcccactcccg C/T tggactgtgagttccatgag3324ALDH1L187intron 20 + 1564cccaggaaccaggaacagtg G/A ggagccatcaccccgccctg3325ALDH1L188intron 20 + 1873tcagtgttaaaacatcattt G/A tgtatgtatgaaaaatattg3326ALDH1L189intron 20 + 2427actaggattggatggacttg G/C gatcaggtctcagctctgtc3327ALDH1L190intron 20 + 2458cagctctgtcacctgccaac C/T ggcggccccatttccctcaa3328ALDH1L191intron 20 + 2544ccaggtgggagagccatctg C/T agcgtggtgacacccatcac3329ALDH1L192intron 20 + 2573gacacccatcacacgggtgc C/T gtgacccggtgcttatgtcg3330ALDH1L193intron 20 + 2574acacccatcacacgggtgcc G/A tgacccggtgcttatgtcgg3331ALDH1L194exon 21 + 33agccaactgttttcacagac G/A tggaagaccacatgttcata3332ALDH1L195exon 21 + 87ccttcgggcctgtcatgatc A/G tctctcggtttgctgatggg3333ALDH1L196intron 21 + 323ccatgcattaaaccaccccc C/G acactgagtggcttggaata3334ALDH1L197intron 21 + 361ataatcagagatttatttta C/G tcacggtctaggttcaatga3335ALDH1L198intron 21 + 478gtcttgcgggaggcttcctc C/A gcgtggcagcctcggggttg3336ALDH1L199intron 21 + 1086caacccaatcttgcccccgg C/T gctgcagcccggcacatttt3337ALDH1L1100intron 22 + 235gggcctggaggagacactcc A/C gccaggaggcactgggggcc3338ALDH1L1101intron 22 + 313atagcagggaggagttggcc G/A tgaagacccaggggcccgtg3339ALDH1L1102intron 22 + 1214tgggcccacttatgaatcct G/C cccgagttccctcagctccc3340ALDH1L1103intron 22 + 1226tgaatcctccccgagttccc T/C cagctccctcctaaccctag3341ALDH1L1104intron 22 + 1623ggggcttcccactgtccaga C/G aaggcggtgggagctgggga3342ALDH1L1105intron 22 + 1698attctggggagtcctggccc A/G ctatccactgccagggataa3343ALDH1L11063′flanking + 145gagagacaggaggaaatggg C/T gtgggtcatctcaggcccca3344ALDH1L11073′flanking + 239tgggaaacaggtgggaagac G/A gggattgagctgggtgagcc3345ALDH1L11083′flanking + 288ggaagcagctcagactccct C/T agcagatggggccgggccct3346ALDH1L11093′flanking + 1513agggtcggctcagaccccgg A/C gtgctcctggcatgtccagc3347ALDH1L11103′flanking + 1707cggtgggacttgccctagca C/T gtgccacttataccagaaca3348ALDH1L11113′flanking + 1709gtgggacttgccctagcacg C/T gccacttataccagaacaga3349ALDH1L11123′flanking + 1745acagatgagtccatgtcaac C/T gcttcctgagttccctttgt3350ALDH1L11133′flanking + 1843ctgcctctcagcccacagcc G/A ggccgctcacactcctccca3351CYP3A41intron 2 + (754-763)cacaaaatgagtttgtgggg (T) 9-11 acacaaaggcggaatcacat3352CYP3A42intron 7 + 258accactaatcaactttctgc C/T tctatggatttgcctattct3353CYP3A43intron 7 + 894tgctgatctcactgctgtag C/T ggtgctccttatgcatagac3354CYP3A44exon 9 + (32-33)ttccttcagctgatgattga (A) ctctcagaattcaaaagaaa3355CYP3A44exon 9 + (32-33)ttccttcagctgatgattga     ctctcagaattcaaaagaaa3356CYP3A45intron 10 + 12cccaataaggtgagtggatg G/A tacatggagaaggagggagg3357CYP3A46intron 10 + 459agacatgtgacttttttttt T/Δ gaaaggtaacaatcactttc3358CYP3A47intron 10 + 608agccgtctcgaatgtctccc C/T acttcataactcctccacac3359CYP3A48intron 12 + 2467ttttttgcccattactccat A/G gagatcagaatatcactctg3360ABCA11(5′flanking region −99)acataaacagaggccgggaa G/C ggggcggggaggagggagag3361ABCA12(intron 1 159)gcggtgttaaatggggagac G/T atgtcctagtacgagctctg3362ABCA13(intron 1 506)gaattggctatatgctcccc G/C ggactggagcggcacagtcc3363ABCA14(intron 1 5897)gtacaaaaccctttagcttt T/G gcaaacctcctttaagaccc3364ABCA15(intron 1 5929)ttaagacccgatttaaatgc C/T tccctcctcatgaagctctt3365ABCA16(intron 1 5962)aagctcttctggatccactc T/C ttcccatcactaagttgaaa3366ABCA17(intron 1 5985)cccatcactaagttgaaagt A/C agatccccttctctttactt3367ABCA18(intron 1 11416)ttacagtgccctttatagga G/A agaaagaagaaattgtgtct3368ABCA19(intron 1 11935)tctctgtggagcaaatagag G/A gctgtctgacacttggttcc3369ABCA110(intron 1 12281)gaatgtttgatttgtgaaaa T/A cttaataacagtagtttttt3370ABCA111(intron 1 12924)gtgctgacaatcttatactc T/C aggttgaacctccggggaag3371ABCA112(intron 1 13002)gagcctcaatcacagattct C/G tctagctcacatgaagttaa3372ABCA113(intron 1 17715)ggagcatgactttgtggaag C/T ctctcctcttccacccagag3373ABCA114(intron 1 17848)gagggctgactgtcaccctt T/C gataggagcccagcactaaa3374ABCA115(intron 1 21384)gtgggtgggaggaattggag G/C aggaagcttgcctaagtgtg3375ABCA116(intron 1 23063)ggaggcacctgtgacaccca G/A cggagtaggggggcggtgtg3376ABCA117(intron 1 23131)agtgtgcatatgtgctgacc G/A tgggagcttgtttgtcggtt3377ABCA118(intron 2 2801)aagaaaagtgatttatttca A/G gttgctgatgcttagattgt3378ABCA119(intron 2 2830)tgcttagattgttagagttg C/G aaagatctggcttgcatctt3379ABCA120(intron 2 2856)tctggcttgcatcttgtaca A/G ctgacagaactggggctcag3380ABCA121(intron 2 3187)tgatagctgttgcctgcagc A/G tacggacgttcattgcgcag3381ABCA122(intron 2 3190)tagctgttgcctgcagcata C/T ggacgttcattgcgcagttc3382ABCA123(intron 2 3194)tgttgcctgcagcatacgga C/T gttcattgcgcagttcctgt3383ABCA124(intron 2 3204)agcatacggacgttcattgc G/A cagttcctgtctcctgagat3384ABCA125(intron 2 3401)acataaagcctgtgtgctgc T/C gccaggaagactagaaacgc3385ABCA126(intron 2 13927)gtcaccacatacctggcact A/G tgctaaggctgggaatgcag3386ABCA127(intron 3 4163)ccagcccacttcatcttacc G/A tagttacctccttagagtat3387ABCA128(intron 3 4262)tgtcaaagaggaactaagga T/C gccagggactttctgcttag3388ABCA129(intron 3 4306)ccctctcatcacttctccaa C/T gctggtatcatgaaccccat3389ABCA130(intron 5 490)gatgggcatttgaacttgtt G/A tctttaaaaagtgaaatctt3390ABCA131(intron 5 583)tatctggggagtgggcattt T/G ctgactgaggcattggctgc3391ABCA132(intron 5 1051)ggctacaaaactgtgctttc C/T ttgggcagtaaaagaggcaa3392ABCA133(intron 5 3051)tagagaacaagtctaattct G/A ttttccttgaaatagtcgaa3393ABCA134(intron 5 3127)aagtccatgattttttaggc A/G aaatggcctcctttcctctt3394ABCA135(intron 5 5924)ctttctttcacaaaattgcc C/T cccagagctttctggaaggg3395ABCA136(intron 5 6831)ccagtccctcagccttgcca T/C tgcttatgctggtctggaaa3396ABCA137(intron 5 12878)gctcaccgctctgctcaccc G/C accctctggccatctcctct3397ABCA138(intron 5 14214)cagcttggtcccagaggcct G/A gacctgggtcccagaggtcc3398ABCA139(intron 5 14257)cctggttccccggcttggtc C/T cagaggcctggatgtgtggc3399ABCA140(intron 5 18078)cctaccacaccatgcacgtg C/T acagccaagggttgttgact3400ABCA141(intron 5 18795)ctgggctcttcctggacctg G/A ccagctaaaaggaaatctcc3401ABCA142(intron 5 18948)gcattggtggtactaagaac G/A catattccctatcctatagg3402ABCA143(intron 5 19053)ctcccccaacattaaaagtg T/C aagggatgcttattcaaatg3403ABCA144(intron 5 19148)ggcccaagaaactgcatttt C/A gcatgctccctaaatgaagc3404ABCA145(intron 5 19229)atgctaacagtgtagagtca C/T atgtgatgggaagcatcagg3405ABCA146(intron 5 19405)cttgctcaatttattctgtc T/C atataactcaatattactga3406ABCA147(intron 5 19534)catgtgaccctcttagctcc G/A cggattaactcctgtcctca3407ABCA148(coding regiongaaaccttctctgggttcct G/A tatcacaacctctctctccc3408474 (Leu 158 Leu))ABCA149(intron 6 210)gcaacctggcgtcatgggcc A/C gctggttaaaataaaattga3409ABCA150(intron 6 334)acagttctgaggcaataacc G/A tggttaagggttattgatct3410ABCA151(intron 6 2288)cttctttcaaagcttgtggt C/T cactggaccacgtatgaagt3411ABCA152(intron 6 2322)atgaagtagaatagtttagg T/C ccagaaaggcaattaagtaa3412ABCA153(intron 6 2820)gtgctttgatacattctgag T/G ttcagtaaagagacctgatg3413ABCA154(intron 7 416)catcataaagatgacattgt G/A ggctgtcacagttggaaggc3414ABCA155(intron 7 471)agaccacactatttagctta C/T ttagtaataacattgcaaag3415ABCA156(intron 7 504)ttgcaaagaaaaattccgac G/A aagttttttcagcctaggaa3416ABCA157(intron 7 679)gctctggtgaaattcctctc G/C ctaccccaaacatcatcatt3417ABCA158(intron 7 1740)acaaatgctcaccctttcag C/T tggaatgattgaaattttgg3418ABCA159(intron 7 2122)tgattaaggtggctactacc A/G ggtgctttctgcatatctcg3419ABCA160(intron 7 7753)taggaattccaagctgtgaa T/C tttttactgaagctctttgg3420ABCA161(intron 7 8973)atggaaatttgtttatattg A/T ctacagattgccaatattat3421ABCA162(intron 7 8976)gaaatttgtttatattgact A/G cagattgccaatattattag3422ABCA163(intron 7 11327)ctaacaatcttatttccatt G/C agtccttataaaagaagtgg3423ABCA164(intron 7 11738)ctgacgtttaagggagaccg C/T gtaggtccctttgaggactg3424ABCA165(intron 7 12295)agtctgtaaattattgttct T/A ttttttctttagcttatgct3425ABCA166(intron 8 387)tagcaaggccaatcatttta C/G caacacacatgcttgctaac3426ABCA167(intron 8 697)ggaactgtctggtgtccccc A/T gcataggaagctgagccagg3427ABCA168(intron 8 3036)ctttatgtgggaagaaattt T/G tttttttgattggggagtgg3428ABCA169(intron 8 3176)aaatggcctggttctctgtc C/A cctttctgtctgtatgcctc3429ABCA170(intron 8 3364)ggcagaaggcaaagcttagg A/T cctagagagtgctggaccac3430ABCA171(intron 8 3373)caaagcttaggacctagaga G/A tgctggaccacgccactcac3431ABCA172(intron 8 3561)cagggatttattaatgattt C/A ttgtgaaatgtttggaaata3432ABCA173(intron 8 3654)agtgccggaatacatttgca T/C gtaagacagaacgctgcctg3433ABCA174(intron 8 4715)ggcagaggggtctcagaatc C/T gcatttccaacaatgtctcc3434ABCA175(coding regioncgtattgtctgcgggcatcc C/T gagggaggggggctgaagat3435936 (Pro 312 Pro))ABCA176(intron 9 2309)cccctcaagagtcagtttaa A/G tgttggtcatgttagttgtc3436ABCA177(intron 9 2392)atgggagggcttgtgcttca T/C gaaaacatttttccagatca3437ABCA178(intron 10 228)tggggatggggaggactggc A/G cagggctgctgtgatggggt3438ABCA179(intron 10 319)ttctgcggtccctggctccc C/T acctgactccaggtgaacaa3439ABCA180(intron 11 377)gaaagaagtgtgggagcaaa A/C gcatgatgttacatgtagac3440ABCA181(intron 11 521)agtgctctagagacaattgg G/A ttcaaatgtggagcaggctg3441ABCA182(intron 11 2850)ctctatacaatcattatgct G/C ccattgaaataataaataca3442ABCA183(intron 11 2976)ctccaattcggtagaaccag A/G gcttcatcttctctgtcgaa3443ABCA184(intron 11 3056)gtttgcagctgctgtttttc C/T ggcagcacatctgtgcaggc3444ABCA185(intron 12 340)ggcattatttgtgaaactta T/C ctaaaatcgaattcgggtcc3445ABCA186(intron 12 381)aattaaatttttgaaatttt A/G tattaaaaattatattagta3446ABCA187(intron 14 1728)caggctcagaggccttggcc C/T atcaccctggctcacgtgtg3447ABCA188(coding regionatgggcctggacaacagcat C/A ctctggtttagctggttcat34482040 (Ile 680 Ile))ABCA189(intron 15 1382)cttttagacagaaaagttac G/A tgggatattatctcccacag3449ABCA190(intron 15 1453)tatataaggagaaaccagtt G/A aaattacctattgaagaaac3450ABCA191(intron 15 1567)ttctgcgtagttttgggtaa G/A tcacttatcttctttaggat3451ABCA192(intron 15 1617)cagttgcctcatcagaaaga T/A gaacagcattacgcctctgc3452ABCA193(intron 16 95)agttgagaacagaagatgat T/A gtcttttccaatgggacatg3453ABCA194(intron 16 452)tggtgttttgcttgegtaat G/A ttttctgaactaagcacacc3454ABCA195(intron 16 657)ctgttgcctcagtctgggct T/C cataggcatcagcagcccca3455ABCA196(intron 18 1730)tgaaagttccagcgcagtgc C/G ctgtgtccttacactccact3456ABCA197(intron 19 426)aggaccttacagtgggtagt A/G tcaggaggggtcaggggctg3457ABCA198(intron 19 468)accgcaccagcgttagcctc A/G gtggcttccagcacgattcc3458ABCA199(intron 20 876)ccctcctcatctaacgtgaa C/T acatggggctcatgtgcagg3459ABCA1100(intron 22 118)catgggatactcttctgtta T/G cacagaagagataaagggca3460ABCA1101(intron 22 560)acagctttgccattctcggg G/A tcatagccatacagggtgaa3461ABCA1102(intron 23 102)cccccttttgccatgttgaa A/G ccaccatctccctgctctgt3462ABCA1103(intron 23 287)gtcacagaaaagcgacttgt C/T acgaggtaagagccttggct3463ABCA1104(intron 23 1063)acctttcaccctcaggaagc G/A aggctgttcacacggccaac3464ABCA1105(intron 25 321)ctctttacttaagtacagtg T/G gaggcacagcggcctccgga3465ABCA1106(intron 25 376)gttagaaattcagcaacttg G/C gcccagctcagacctactga3466ABCA1107(intron 25 478)catacataggaaatgacaaa C/T gtttatggatggatagtcta3467ABCA1108(intron 25 579)tcatttaattctcaaaaaaa G/T atgaaaaaatgaacactcag3468ABCA1109(intron 27 153)aatggtaaaagccactrgtt C/T tttgcagcatcgtgcatgtg3469ABCA1110(intron 28 1058)actatcatgggagataatga C/T tatggttgtccatgattgga3470ABCA1111(intron 28 1317)caggacccagtgttctgagt C/T accctgaatgtgagcactat3471ABCA1112(intron 30 372)tatatgatttttaggttttg T/C ttatcagcttcttcgctttt3472ABCA1113(intron 30 506)ccttttaaaaagtaagcagt A/G gataaataaattcagtgaag3473ABCA1114(intron 30 1033)ctggatttcatggtgccttt G/C attttccacatgaaggttgt3474ABCA1115(coding regiontcttccctttgcagagacac G/A ccctgccaggcaggggagga34754281 (Thr 1427 Thr))ABCA1116(intron 33 626)ggctccttgttactgatttc C/T gtcttttctctctgcctttt3476ABCA1117(intron 33 719)taatagccctcatgctagaa G/A ggagccggagcctgtgtata3477ABCA1118(intron 33 726)cctcatgctagaagggagcc a/A gagcctgtgtataaggccag3478ABCA1119(intron 33 889)ctttcctcaatgtctcagct A/G tctaactgtgtgtgtaatca3479ABCA1120(intron 33 1097)ctgtgcaccccactgtctgg G/C ttttaatgtcaggctgttct3480ABCA1121(intron 35 234)aacctatctaeecctcagtt T/C cctcatctgtgaaatggaga3481ABCA1122(intron 37 411)aactctgtacattttatcag C/T agcttatccatccattgcae3482ABCA1123(intron 37 1224)caggcataggtgattcagag A/G tgaaaggtcaagtccctgaa3483ABCA1124(intron 37 1720)aaattaaaattactctgact G/T ggaatccatcgttcagtaag3484ABCA1125(intron 40 251)tgaaggtaaggaaaatagtg T/G tatttgcttggatccactgg3485ABCA1126(intron 40 252)yaaggtaaggaaaatagtgt T/C atttgcttggatccactggc3486ABCA1127(intron 40 319)agcactggaaaagtcaaacc A/G taactttgagaattaggtga3487ABCA1128(intron 40 957)cttgttactcttttttcctt G/C tcatgggtgatagccatttg3488ABCA1129(intron 41 146)tgatgtgggcatcccgcagc C/T ccctccctgcccatcctgga3489ABCA1130(intron 42 239)cattggttttatatgcttac A/C tttatgtgttagttattaaa3490ABCA1131(intron 42 321)aataaatggttgattttgag T/A ttgagtttcatagtccaaaa3491ABCA1132(intron 42 322)ataaatggttgattttgagt T/C tgagtttcatagtccaaaae3492ABCA1133(intron 42 533)agatgaaaaattatgtagat G/A ataatgaatgatacggttct3493ABCA1134(intron 42 546)tgtagatgataatgaatgat A/a cggttctaaaaagacaggtt3494ABCA1135(intron 43 739)tacagccacacttaaaatgg T/A cccattatgaaatacatatt3495ABCA1136(intron 44 18)taggtgagaaaagaagtggc T/C tgtattttgctgcaaagact3496ABCA1137(intron 44 264)acaatataatttgcttgttt T/C ttaagagtataatttagtga3497ABCA1138(intron 44 279)tgttttttaagagtataatt T/C agtgatttttggtaaattga3498ABCA1139(intron 44 508)tttacattgctacataaaat C/T cccctatgtacatgtaccta3499ABCA1140(intron 44 1477)gatctcctctcctgtctctt A/T catttttgcagtagcaatgt3500ABCA1141(intron 44 1665)tggttgtaagcactgatttg G/A ttggtatagctgtgagggcc3501ABCA1142(intron 44 1956)gtgttgctcacactcaaaat T/G tctgggccttctcatttggt3502ABCA1143(intron 45 68)aatatataccttatggcttt T/C ccacacgcattgacttcagg3503ABCA1144(intron 46 608)ttatectgacttcaatagag a/C tttcagacaaaaagttgttt3504ABCA1145(intron 47 336)ttcacaattgtaaacaccac T/C acactgaacagcatcatccc3505ABCA1146(3′untranslated regionaacaaaaatgtgggtgtctc C/T aggcacgggaaacttggttc35067479)ABCA1147(3′untranslated regionaggagcccactgtaacaata C/T tgggcagccttttttttttt35078226)ABCA1148(3′untranslated regionttccagaatttgaatattaa C/T gctaaaggtgtaagacttca35088697)ABCA1149(3′untranslated regionaactattttgaagaaaacac A/G acattttaatacagartgaa35099097)ABCA1150(5′flanking regiontgacttaaatatttagacat (AT) ggtgtgtaggcctgcattcc3510(−1033) − (−1032))ABCA1150(5′flanking regiontgacttaaatatttagacat     ggtgtgtaggcctgcattcc3511(−1033) − (−1032 ))ABCA1151(intron 5 6368)ttctgatggggttgttgctg C/Δ tgagaatcatgactgggtgg3512ABCA1152(intron 5 9709)cattttctgtctgaaccccc T/Δ cacccattcaggcagctgct3513ABCA1153(intron 5 13816)tccctacttctccttttttt T/Δ catttgcctcctccacccac3514ABCA1154(intron 10 270-271)cttttcagggaggagccaaa (G) cgctcattgtctgtgcttct3515ABCA1154(intron 10 270-271)cttttcagggaggagccaaa     cgctcattgtctgtgcttct3516ABCA1155(intron 20 611-612)tttagcccatcctctccccc (C) gccaccctccttattgaggc3517ABCA1155(intron 20 611-612)tttagcccatcctctccccc     gccaccctccttattgaggc3518ABCA1156(intron 32 391-392)gagtgccttgggtactctct (T) gatgggggactccatgataa3519ABCA1156(intron 32 391-392)gagtgccttgggtactctct     gatgggggactccatgataa3520ARCA1157(intron 37 847)gctgtatattgtgaatgtcc C/Δ gttttcaaaagcaaagccaa3521ABCA415′flanking region −tgccatcataagcagaaact A/C tctctctcttcttggaagct35221005)ABCA425′flanking region −gtctagagtctttcaaagag A/T acacattctgagatttgagg3523819)ABCA43(5′flanking region −agcaccaccccattgcaggg C/A tggaatgacagtaatgggcc3524680)ABCA44(intron 1 208)tgcccttcccaggaagatgt G/A tttctctgtcctcagccaca3525ABCA45(intron 1 234)ctgtcctcagccacatgaaa A/G tcttttgcctaccgtgcctg3526ABCA46(intron 1 510)agctcacgatcaagtcacag T/C ttaactggacacattatttt3527ABCA47(intron 1 1527)gcttaacaaccagcataaaa G/A agagcagcatgggacacgct3528ABCA48(intron 1 2077)caggactgtagctgctggcc T/C aeaatgagcccattcctgtg3529ABCA49(intron 1 2174)ccctctcaatctggcctttc G/C ctggcatgggtgggcgactc3530ABCA410(intron 1 2246)gctcccagggagatggagcc A/G ctcgggctgagggccttggc3531ABCA411(intron 1 2364)ttctgtctggcacgcctccc G/A atggctccccacctgctacc3532ABCA412(intron 1 4243)ctccctggggtatgcctgta C/G gcagttaagcgtcaaggaca3533ABCA413(intron 1 4287)atgccgctctggggagggga A/C gctgagcatgattttggaag3534ABCA414(intron 1 4309)ctgagcatgattttggaagc C/T ggcagaagaggctattgtga3535ABCA415(intron 1 4416)tgcagcaaccgcccccgccc C/T ccgccaaaaacaaacacact3536ABCA416(intron 1 4996)tttacccctggaacaggcag G/A ccaagctggc t/c ggtcccctc3537ABCA417(intron 1 5007)aacaggcag g/a ccaagctggc T/C ggtcccctccctgatacaca3538ABCA418(intron 1 5080)gtgtgtggctggtttcttag C/G aagcaccatggttccaagtt3539ABCA419(intron 1 5152)gggagatgaacgtaagtgga G/A ggcaggcctacaaggttgca3540ABCA420(intron 1 7110)ccactggatctgcttttgga A/G tcaagagtccttaagctcca3541ABCA421(intron 1 7290)gatttttgttggctttgcaa T/A ggatcacagtcatttattca3542ABCA422(intron 1 7483)tctgagcctctttccttaac T/C gcagagtgagtgg c/t tacaga3543ABCA423(intron 1 7497)cttaac t/c gcagagtgagtgg C/T tacagagaaatctttactac3544ABCA424(intron 2 1067)tcaegcagcagcagcaactg C/A gtggagtcttcttgaactaa3545ABCA425(intron 2 1243)cacccagcacagggactggc A/T cacatgagatgctcctgctt3546ABCA426(intron 3 26)tgttgagatccctaccatgc A/G ggggaggaagttgcacaccc3547ABCA427(intron 3 101)agcatggagcactgagtgtt C/T ttgtggctttgctgagcccc3548ABCA428(intron 3 330)tgcttgggtggagtgaatca T/C tgtaggagaaaaactcagtt3549ABCA429(intron 3 470)tgaagtcaggtttacaaagt C/G aagtttacttcttgggagaa355OABCA430(intron 3 634)tgaaaaccaatgacccctct T/C ccaagaaaaatggccacata3551ABCA431(intron 3 1016)ccttgggggagctcagtatg A/G ttcttccaggagaagcctgc3552ABCA432(intron 3 1554)gaaagttgggtttcatgttt T/C gcactcacattatgagtgaa3553ABCA433(intron 3 1686)ctagacattctcacagagcc A/G agggcagcaaggcggggctc3554ABCA434(intron 3 1823)ttcacctctctccatggacc A/G gtctcccctgctcctcaatg3555ABCA435(intron 3 1938)caaattcctgggaacaaatc G/A ggttgacccagc t/g ttattct3556ABCA436(intron 3 1951)acaaatc g/a ggttgacccagc T/G ttattctccctgtcccatca3557ABCA437(intron 3 2063)ggctgtcagagcctacctgc G/T tgaatgggtggaagg g/a cagg3558ABCA438(intron 3 2079)ctgc t/g tgaatgggtggaagg G/A caggtctcagagaattgggt3559ABCA439(intron 3 2186)agacacacagagcatgggac C/T gagaggcgagcagaccctgc3560ABCA440(intron 3 2214)gagcagaccctgccaaaact G/A ggagactgaatagatcgctc3561ABCA441(intron 4 3182)cccccagagccacagcagcc C/G tgtctcctgggtggtcttgt3562ABCA442(intron 4 3515)agtatcataaaagcaggagc C/T atagcccccaactctcaaga3563ABCA443(intron 4 3952)agagaagccactgtgccact G/C tgtggtcgaacttcaagacc3564ABCA444(intron 4 4637)aatcacttgccccaaggtca C/T cttaactgttaggtgttctt3565ABCA445(intron 4 5319)acctctaggggctcccagag A/G ccccaagaacagaaccttcc3566ABCA446(intron 6 2266)cacccttgcagacctccgac G/A ggtcctgggggcttgctttc3567ABCA447(intron 6 2857)ccagaggagaaagctctgcc G/A tag t/c cggcctcagttaacca3568ABCA448(intron 6 2861)aggagaaagctctgcc g/a tag T/C cggcctcagttaaccacgga3569ABCA449(intron 6 3078)gcaggcattaaaatgggact T/G tgcctttattgctcctgggc3570ABCA450(intron 6 3375)ttaaetgccaaatgagttct c/a attaacaaagaaagagggaa3571ABCA451(intron 6 3412)ggaaaatctcagtaaaccac C/T gtgacggcatctacccactt3572ABCA452(intron 6 4635)ctttcgggtggatattgcta C/T gtcaagtgtctgggaaagcc3573ABCA453(intron 6 −264)aaacagcaattagaatcact T/C tgaaatagtgatagtattta3574ABCA454(intron 7 828)gatgtgggaaagttagagaa G/C agcccattgtactaatgctc3575ABCA455(intron 7 1019)aggcttcttgactgtctaga T/C agcaagtctaatcatttgtg3576ABCA456(intron 8 374)gtaaacacggctgtgggatg C/A ttttacaaacacaatatcgt3577ABCA457(intron 8 874)tgatgagcttgttattggtg G/A ggtacagcctattaatttag3578ABCA458(intron 9 605)tcgtgtctctgtcttgatct C/T tgtctggttttaggccaact3579ABCA459(coding region 1268aacttttgaagaactggaac G/A c/t gttaggaagttggtcaaag3580(Arg 423 His or His 423 His))ABCA460(coding region 1269acttttgaagaactggaac g/a C/T gttaggaagttggtcaaagc3581(Arg 423 Arg or His 423 His))ABCA461(intron 11 5687)atcatgtaatgtactttaga C/G tcagatatataaatatttgt3582ABCA462(intron 11 7136)gacttcccaacttaccttag T/C ggagctgtagtcacatagaa3583ABCA463(intron 11 7180)acgctcataaatgcttctct G/A ggctgtaaaggttgaatttt3584ABCA464(intron 11 7701)gttagacgcaggcattacct C/T gtggctttgccccagtgtga3585ABCA465(intron 11 8073)gggatgtttgcccacatcca T/C tggcatttctcaaaaggaac3586ABCA466(intron 11 8586)cagctgcctgcgctggagag G/A gctcaaacctcttccgccag3587ABCA467(intron 11 11234)cccaaataattttgtttttc G/A ttttaggaattaaatttcag3588ABCA468(intron 11 11641)aagaaacaaacatttattga C/G aacttttggtgtgtgacctg3589ABCA469(intron 11 11808)tggtatttcttaaagaaata C/T caattccatttccttttaac3590ABCA470(intron 11 11923)aagatcattattaatatctc A/G tcagcgtggtgtcacttaag3591ABCA471(intron 12 305)tcaccctgtggtcgggaggt G/A tgagtgagctatccaagccc3592ABCA472(intron 13 1461)ttgggtttcagtgtcagcat G/A tagctgtctactcagatccc3593ABCA473(intron 14 1268)ggagctgagccccttgtcct T/C atctaggtttcccttgttct3594ABCA474(intron 17 23)aagtcctttaaaacacaaat C/G ttaatgtttgaaatcaactc3595ABCA475(intron 17 715)tggactcccctagagctgaa G/A tactctcccatctgtttgtt3596ABCA476(intron 18 1282)ggaagatgaagaacctaagc C/T gcttccagaaattcatgagg3597ABCA477(intron 20 −195)acagattattccattgtatg C/A atgaactatgtaagccatcc3598ABCA478(intron 23 755)ctggctgccgctggggtttc C/T tatgtccatccacggggagg3599ABCA479(intron 26 702)tatcaaatacaactcagacg T/G cagtctcctggcccctttga3600ABCA480(intron 27 156)cctgctttccaaacccttat C/T ttgattcttggtaacatgaa3601ABCA481(intron 27 385)tttaaagaacagtgagtcac G/A tgacttgctctttgaaatgc3602ABCA482(intron 28 299)gacatgccatcagaccactg C/T gagtgttcaggcagcctacc3603ARCA483(intron 29 168)ctccttccacacttgtgtgc A/G gggacattcactacctccta3604ABCA484(intron 29 497)gctgtcaataaggaccaaaa C/T agactaatttcaaatccctc3605ABCA485(intron 29 567)agctgctaggaataaaaagg G/A agacaaaac g/a atccacaagc3606ABCA486(intron 29 577)aataaaaagg g/a agacaaaac G/A atccacaagctagagatggt3607ABCA487(intron 30 −2494)aatcacagctcatctgctgc A/G tcatagggatcccaaaagaa3608ABCA488(intron 30 −2169)aatgtaacagccaaagtcct A/G gaaaaaggcaagccagttcc3609ABCA489(intron 31 535)ctaactgtgaattatcatct T/G tgatcactgccctttgagat3610ABCA490(intron 35 209)tctccccaacatttatgtgg C/A aagtaagtttacatttggtt3611ABCA491(intron 37 525)taaatttgaatgagtaattc A/G tccatctcggcctcagtttc3612ABCA492(intron 37 766)tgttgcaggctggagaaccc T/G cctatgaattgtacagggct3613ABCA493(intron 37 856)aaaaccccatgaagtggtca A/G ggcaggcatcattatctcca3614ABCA494(intron 38 62)tagtagagtatgtgttggtc G/A agcagagccaggggcaagca3615ABCA495(intron 38 761)tccttgggcaagttaatctt G/A atgaagagactgggtgttct3616ABCA496(intron 38 1315)cagagtcagactctggaaag G/T c/a ggggggataagaacacagc3617ABCA497(intron 38 1316)agagtcagactctggaaag g/t C/A ggggggataagaacacagcc3618ABCA498(intron 38 1561)gtattttcatgtaaattatc C/A g/a atacacagctgctatggaa3619ABCA499(intron 38 1562)tattttcatgtaaattatc c/a G/A atacacagctgctatggaaa3620ABCA4100(intron 38 2874)ctagacaaagggg a/c agctcc C/T gcccactagaaacttgcagg3621ABCA4101(intron 40 1904)gacactgtacagccagccca A/C tcctgaccccttttcttcat3622ABCA4102(coding region 5814ggaaataaaactgacatctt A/G aggctacatgaactaaccaa3623(Leu 1938 Leu))ABCA4103(intron 41 122)atttggttcccagttttatg T/G agggtcatcatccctgtgtt3624ABCA4104(intron 41 411)cctcttcccctccttgctct C/A accctgtctcagttctcagt3625ABCA4105(intron 41 443)gttctcagtccggtttcttc G/A tatcttgcagatttatcc a/g g3626ABCA4106(coding region 5844c g/a tatcttgcagatttatcc A/G ggcacctccagcccagcagt3627(Pro 1948 Pro))ABCA4107(intron 43 328)tttgtagcctattcctataa A/G aatgcaccattgcttc c/g cat3628ABCA4108(intron 43 345)taa a/g aatgcaccattgcttc C/G cattacctccctccacacat3629ABCA4109(intron 43 370)acctccctccacacattttt A/G caaaa c/t gtttcagggagttt3630ABCA4110(intron 43 376)ctccacacattttt a/g caaaa C/T gtttcagggagtttactgag3631ABCA4111(intron 43 670)ttaaacagactggtccccta T/C gggcaggacagagaggatga3632ABCA4112(intron 43 822)gttaggtgctgctgacatct G/A tccagcatctgcttgactgg3633ABCA4113(intron 43 915)ggcaggacgagtcctgagca C/T gcttcactggctcagacagg3634A5CA4114(intron 43 1242)actgagctggacgctagaaa G/T aaactataggcttaagacac3635ABCA4115(intron 43 1671)tagagaagtttacttccatc G/A ggacacatgcatcttttcta3636ABCA4116(intron 43 2036)ttgaaggatactcagtaatt G/A ctttttttcttgcagtattt3637ABCA4117(intron 45 176)gtgtttggttcacacagctc C/T ggagaaaaacaagtca c/t ggc3638ABCA4118(intron 45 193)ctc c/t ggagaaaaacaagtca C/T ggcacagccttgacttggga3639ABCA4119(intron 47 238)cccaagtctctggatggggc A/G tctgatcaggatgcatgcag3640ABCA4120(intron 47269)atgcatgcagagcctggctg G/A gatgagggagggctgctacc3641ABCA4121(intron 47326)accacttatctcaacagatc C/G gggacctgtggcctatttac3642ABCA4122(intron 47715)aagtcactaagctggttggt G/A ggaggaacagcacataac ctt c3643ABCA4123(intron 47734)t g/a ggaggaacagcacataac C/T caccttatctatgctgaggt3644ABCA4124(intron 47931)ggacactgcatagatatcta T/C agaaatagcagcatgtcagg3645ABCA4125(intron 471260)acactctctggtggaccatc A/C ctcatccaagagagggtaac3646ABCA4126(intron 461663)tctcgctcttctcttacctc T/C aggtgtttgtaaattttgct3647ABCA4127(intron 49127)agagagccccacccacacca C/T ggtccctaccaagtccccac3648ABCA4128(5′flanking regiongtaaatctcagttgaatcag (TCA) 14-163649(−1441) − (−1400))atttttcagtctggttcctgABCA4129(intron 1 4712-4720)gaggggcggggactataggc (A) 8-10 cagcctaattcaaggatgag3650ABCA4130(intron 1 7295-7304)ttgttggctttgcaa ttc ggat CACAGTCAT/A3651ttattcactcattcattcacABCA4131(intron 2 951-952)cctgtccatcagactcttct TT/Δ acctctccccgaggagccca3652ABCA4132(intron 3 2642-2653)cctgggtgacagagcgagat (A) 10-123653ABCA4133(intron 4 5202)cacaaagcatctgacacccc C/Δ atccagccctggctaacttt3654cactaaaaacaaaaatttac (A) 16-183655ABCA4134(intron 6 3029-3044)cctgaaagaaatcgcaggcaABCA4135(intron 6 5138-5139)ttcatgacagatcagatgtt (G) cttttatggatttacaaaga3656ABCA4135(intron 6 5138-5139)ttcatgacagatcagatgtt     cttttatggatttacaaaga3657ABCA4136(intron 6 5985)tttccttcttcaaacccccc C/Δ agactaggagaaggtctgtc3658ABCA4137(intron 6 6094)gggacggacagaaaaagacc T/Δ agtttctgttgagccaaaga3659ABCA4138(intron 6 −161)tattttttcaattaaataaa A/Δ gagttttttgtttctaaaag3660ABCA4139(intron 7 809-810)gggccgagtatgcacactga (TG) tgtgggaaagttagagaa g/c3661aABCA4139(intron 7 809-810)gggccgagtatgcacactga     tgtgggaaagttagagaa3662g/c aABCA4140(intron 8 472-484)atcttccccacctttcacta (T) 10-133663ggtcttctatggggtaaaggABCA4141(intron 9 48-71)gtaccctggacctcccagaa (GT) 11-133664gagagagatgtgccttcctgABCA4142(intron 9 554)ataggggcagaaaagacaca A/Δ ccaaaagttctctctcactt3665ABCA4143(intron 10 11)catgatcagagtaagggggg G/Δ ttggaggatggggaggggag3666ABCA4144(intron 11 4242)ggagaggaaatgatgttagt G/Δ cctcctgtaaataggcccag3667ABCA4145(intron 11 13743-13753)tgctcttttgtgggtaatgg (T) 9-11 cctcttccaggagaagaaaa3668ABCA4146(intron 13 636-637)cggggtggagggttgggagg (G) ctcatttgtcattatagatg3669ABCA4146(intron 13 636-637)cggggtggagggttgggagg     ctcatttgtcattatagatg3670ABCA4147(intron 18 569-570)tgctgccctcatcttctctc T/Δ aaactagttctgtatttctc3671ABCA4148(intron 20 (−304) − (−297)tataacctgacttttttttc (A(7−∩ggattgcttttttaaacata3672ABCA4149(intron 22 1236-1246)gctgaattagttcccttggg (T) 9-11 agttaactcctgatttttgc3673ABCA4150(intron 26 4626-4635)gataatcaatgctgtaaggg (A) 9-10 tggcattagagatccagacc3674ABCA4151(intron 33 115-116)taaaaccgtcttgtttgttt GT/Δ ttacatggtttttagggccc3675ABCA4152(intron 36 1078)taagcagctatcacttaaca A/Δ tacaaaaccagagattatca3676ABCA4153(intron 37 290-291)ccttgaccaaagcctggggg (T) cagccattcccca a/g cccctc3677ABCA4153(intron 37 290-291)ccttgaccaaagcctggggg     cagccattcccca a/g3678cccctcABCA4154(intron 38 896)ataaaaagagggggaaaaaa A/Δ gaaggcagtcgctgcagggc3679ABCA4155(intron 38 1209-1210)gtggacccctgagactgact CT/Δ ttccagatcttgttagggtt3680ABCA4156(intron 38 1322)agactctggaaag g/t c/a ggggg G/Δ 3681ataagaacacagccccagcaABCA4157(intron 38 3107)gggccccacctgctgaagag A/Δ gggggggtggggtttgcccc3682ABCA4158(intron 40 152)ttttctccaataatacaagt A/Δ gaggatcgggttaaaatagg3683ABCA4159(intron 43 330)tgtagcctattcctataa a/g a A/Δ tgcaccattgcttc c/g3684cattaABCA4160(intron 43 1354)tttaattggcccagccatgc C/Δ tttggtggcttttgtcattg3685ABCA4161(intron 47 1305-1308)catcctgctgaaggagaaag AAAG/Δ caccaatggcccaagcccta3686ABCA71(5′flanking region −1596)agaatgttggccccctcccc C/T t c/t ctgcatcctctgcagaag3687ABCA72(5′flanking region −1594)aatgttggccccctcccc c/t t C/T ctgcatcctctgcagaagcc3688ABCA73(5′flanking region −1180)ggccagtgagtgacgggcag G/A tcgcccaaatagcagcgtgc3689ABCA74(5′flanking region −460)agagctggggtcgtgcctcc A/G gctgggcaactgcctgtctc3690ABCA75(5′untranslated region −9)ctctgtcccgtcccctgccc A/G gtctcaccatggccttctgg3691ABCA76(intron 5 91)ccccgggccaaggacctccc G/A ttccaggcatccaggctgtc3692ABCA77(coding region 563cagcttgttggaggccgctg A/G ggacctggcccaggaggtac3693(Glu 188 Gly))ABCA78(intron 8 103)gccggagggtcacggaaact A/G tttgaagaagtaggagttag3694ABCA79(intron 8 166)tgcggaggatcagaggcaca C/T gcaggagcaaggcagagggg3695ABCA710(coding region 955accggaccttcgaggagctc A/G ccctgctgagggatgtccgg3696(Thr 319 Ala))ABCA711(intron 9 421)tttttttttttttttttttt T/A taagagatggagtctcactc3697ABCA712(intron 9 463)gttgcccaggctggactgca G/A tgg c/t gagatcttggctcact3698ABCA713(intron 9 467)cccaggctggactgca g/a tgg C/T gagatcttggctcactgcaa3699ABCA714(intron 9 488)gagatcttggctcactgcaa C/T ctccgcctcctggattcaag3700ABCA715(coding region 1184cgcacacgctgatgtggggc A/G cctggtgggcacgctgggcc3701(His 395Arg))ABCA716(intron 10 10)gagtgacggaggtgagggcc T/C gtccacctgcggggtctgtt3702ABCA717(coding region 1388cctgggccccggccacgtgc G/A catcaaaatccgcatggaca3703(Arg 463 His))ABCA718(intron 12 115)caggctgcgaactttgcacc T/G ttacaccactccacgtgacc3704ABCA719(coding region 1824cccttcctgctcagcgccgc A/G ctgctggttctggtgctcaa3705(Ala 608 Ala))ABCA720(intron 13 55)ggtgcgctggagggtgacag A/G caggggcggccccacgtggg3706ABCA721(intron 13 78)ggggcggccccacgtgggtg C/A gcgcccccaggccaatccag3707ABCA722(coding region 1851cgttgcctctcacagctggg A/G gacatcctcccctacagcca3708(Gly 617 Gly))ABCA723(coding region 2153cgagggcgcgcagtggcaca A/C cgtgggcacccggcctacgg3709(Asn 718 Thr))ABCA724(intron 15 34)ggcggggctccgggccgggt C/G gcacctgctttgcgggaggc3710ABCA725(intron 16 8)ctggacccaaagggtgaggc A/C ctacgaggcttaatagctgg3711ABCA726(intron 16 161)tcccgcagcttttataggcc C/T cggcccagcaggtcccggat3712ABCA727(coding region 2385caccccatctctgcagtgct G/A gtagaagaggcaccgcccgg3713(Leu 795 Leu))ABCA728(coding region 2421cccggcctgagtcctggcgt C/A tccgttcgcagcctggagaa3714(Val 807 Val))ABCA729(intron 20 166)cgagacagtaagagttgggg A/G tagacagaggttcccctgga3715ABCA730(coding region 3027ctgctgggagaccgtgtggc C/T gtggtggcaggtggccgctt3716(Ala 1009 Ala))ABCA731(intron 22 1386)gggtggggcgtgagccgggg C/T tccctgaagcacccctttgt3717ABCA732(coding region 3417gggatctccgacaccagcct C/G gaggaggtgtgaggcctggg3718(Leu 1139 Leu))ABCA733(intron 23 147)ggagctctggtggctcagat G/A tcccttgggaaggcctgggg3719ABCA734(coding region 3528gctggcctagacgtaaccct A/G cggctcaagatgccgccaca3720(Leu 1176 Leu))ABCA7(coding region 4046cccagcctgccagtgtagcc G/A gcccggtgcccggcgcctgc3721(Arg 1349 Gln))ABCA736(intron 30 81)ccccctgggagctctcccgg C/A ccccccggccctcagctccc3722ABCA737(intron 32 1)caaggagcagctgtctgagg G/C tgcactgtgagtccctccac3723ABCA738(intron 33 54)ccactgcttgccactgccct G/A tctggccccttgtaggcagg3724ABCA739(intron 34 245)cagtactttgggaggccgag G/A caggaggactgcttgtggcc3725ABCA740(coding region 5057ggtgagccggatcttgaaac A/G ggtcttccttatcttccccc3726(Gln 1686 Arg))ABCA741(intron 38 65)ggcccactcacctttctgaa A/G gacctgcactctcccaggta3727ABCA742(intron 40 154)ttctacctcccacacgcgga C/G caggccctgagacacccctg3728ABCA743(intron 40 277)ctgagcccccggcgccccca T/C ccccagcgtggcccgggaac3729ABCA744(coding region 5592gtggcccgggaacccagtgc T/C gcgcacctcagcatgggata3730(Ala 1864 Ala))ABCA745(intron 41286)ctccttgactctgccttctg T/C ggccctgcccacttgctcct3731ABCA746(intron 41389)tggccgttcccagtttgcag C/T cgtttcactgcctcttccat3732ABCA747(intron 41 991)cacactatggccctgcccca C/T ac c/t cat c/g cc a/g3733gctccacccaABCA748(intron 41 994)actatggccctgcccca c/t ac C/T cat c/g cc a/g3734gctccacccacacABCA749(intron 41 998)tggccctgcccca c/t ac c/t cat C/G cc a/g3735gctccacccacaccatgABCA750(intron 41 1001)ccctgcccca c/t ac c/t cat c/g cc A/G3736gctccacccacaccatggccABCA751(intron 411051)actcatgctggctccaccca C/T accatggccccgccccatac3737ABCA752(intron 41 1131)tgccctgccccatgcccatt A/G tgcccctgctccacactcaa3738ABCA753(coding region 5985gaagcgctctgctcgcgcct G/A gccatcatggtgaatgggcg3739(Leu 1995 Leu))ABCA754(intron 44 201)ggcgcaggaccaggaggcgt G/C agccgggggctctgggtgga3740ABCA755(intron 44 233)ctgggtggatttagaagaca C/T aatcaggtgtgcgttggagt3741ABCA756(intron 44 313)agttaggggagggcctggtt A/G gtgggcggggccataggaaa3742ABCA757(coding region 6133tggcggccgagttccctggg G/T cggagctgcgcgaggcacat3743(Ala 2045 Ser))ABCA758(coding region 6159ctgcgcgaggcacatggagg C/T cgcctgcgcttccagctgcc3744(Gly 2053 Gly))ABCA759(intron 45 27)acggcgccggggtcgggctg G/C gggaggcaggctgggggcca3745ABCA760(3′flanking region 108)caagctgagtgtgcacatac G/A ggccaagtggcgattcatag3746ABCA761(3′flanking region 376)cttacaggagcccggtgtcc C/T ggagcacaggccagggccgg3747ABCA762(3′flanking region 687)cagcagggagacttggggag G/A g/a gggagagagttcacactgc3748ABCA763(3′flanking region 688)agcagggagacttggggag g/a G/A gggagagagttcacactgcg3749ABCA764(3′flanking region 1169)cctcgacctgacccacttca C/T ggggctgcagggcgggtgat3750ABCA765(intron 9 398-422)cgtgaactaccacgtcctgc (T) 22-263751aagagatggagtctcactctABCA766(intron 12 175-184)ggggactctgagggtctggt (G) 8-10 actctgagggtctgggggcc3752ABCA767(intron 30 81-87)ccccctgggagctctcccgg (C) 6-7 ggccctcagctccccttccc3753agaaagagaaagagagaaag (A) 12-14ABCA768(intron 34 349-361)cagaaatgtgctttgggtgaABCA81(intron 1 204)ctggtaattaatattagata A/G ataaaaacattgagttagaa3755ABCA82(intron 1 266)aacattatgttgttttaaac A/G taactgagtgtagaaataag3756ABCA83(intron 1 733)ttgccatatgtataataaag T/A attcatgtttttgctagcct3757ABCA84(intron 1 861)agactggagtttgcatgcta C/T ctaagactgtagctgattcc3758ABCA85(intron 1 907)gaggagatcatcctcttggc C/T aatgtctattaacttcgcca3759ABCA86(intron 1 1262)cagaaacttttgccctctct G/A taggctagctcactgtgaaa3760ABCA87(intron 1 1537)agctctcttaaaagtatcca T/C gctgaattttctgcacctta3761ABCA88(intron 1 7622)tcgttaacagcaatgataat T/C tagcccatccttatcc c/t a3762ABCA89(intron 1 7639)t tic tagcccatccttatcc C/T agaaacaacaggctcataag3763ABCA810(intron 1 7720)tccatgtgttacaaactgcc C/T tggagaacagaaaaagagaa3764ABCA811(intron 1 9397)cataatatatatacatatgc G/A cacacacacacatatacaca3765ABCA812(intron 1 9519)agtagttcatgttggaacaa T/C atgcttgagaaatgcagaaa3766ABCA813(intron 1 12973)ttgataacaggcacagggca T/C cacaaataaatgatggaaca3767ABCA814(intron 1 13100)cattggagtattaggctacg T/C ttttttgttgtttgcaggat3768ABCA815(intron 1 13128)ttgtttgcaggatatttctt T/C ttcttaagaacttcatatta3769ABCA816(intron 2 420)caattagttttcttcaaaaa A/G gtagaaaagttggaattgta3770ABCA817(intron 2 505)catataaaaaatcttgatta A/T actttggtatattttaaaaa3771ABCA818(intron 2 819)gcaatgccttggaactatct C/T ttaaaacacattgactttca3772ABCA819(intron 3 915)ttgtgttcgatagatcagta G/A ggtgactagttaacaatgat3773ABCA820(intron 3 1539)aaagggaaatctgtggtgat C/T gccctgtcattcattcatag3774ABCA821(intron 3 2341)ttcctttctttgtcaacttc C/T gtccaaattccactcaagct3775ABCA822(intron 3 2882)tattctatattctgtactct A/G ttaatattctataataataa3776ABCA823(intron 3 3314)atttaaatatctatctctct A/G tatttaccatttcaaattta3777ABCA824(intron 4 89)gaggttagtatgccaaacta G/A agcatcactatctgtcataa3778ABCA825(intron 4 3264)ttccattggcctattatgcc C/T gtgttatatccagtgttaga3779ABCA826(intron 4 3403)aagagaccaacaaaattctt C/G atcagcagaaaagcacagga3780ABCA827(intron 5 389)gcttactgaatatataaatt G/C agaaaagccatgccaagcaa3781ABCA828(intron 5 479)tgagagtggtgagtaactca A/G aatgcctggactcc g/a aggtc3782ABCA829(intron 5 494)actca a/g aatgcctggactcc G/A aggtcccagcaggtcaatga3783ABCA830(coding region 792atgggtcttcgggattcagc G/A ttctggtgagtcaaacgcag3784(Ala 264 Ala))ABCA831(intron 6 200)cctcccaagtagctgggact G/A caggtgccg a/g ccaccatgcc3785ABCA832(intron 6 210)agctgggact g/a caggtgccg A/G ccaccatgcctggataattt3786ABCA833(intron 6 1751)gtgagttattattgtgttgg C/T tttgcagctgttttgttttt3787ABCA834(intron 6 1808)atttcattatagttttcaaa G/T aatattgtaaaacaaaagaa3788ABCA835(intron 6 2412)tattcctaattctaaagaat T/C ctgcccaaaacttttacctt3789ABCA836(intron 6 2506)tggatgaataagtgaatgaa G/A agttatcttaga a/g tccattt3790ABCA837(intron 6 2519)gaatgaa g/a agttatcttaga A/G tccatttcaggtcttccttt3791ABCA838(intron 7 28)agtgaattaaatatctttcc A/G tccacctatagcctaaaaat3792ABCA839(coding region 991taaagaaatctttcctcacc G/A gcctggtcgtgttcctcctc3793(Gly 331 Ser))ABCA840(intron 8 74)tggaatccataggctgtaat C/T atttacaaactcagcattgt3794ABCA841(intron 9 1417)acacatacttaaatatattt T/C ctctgttctacttttgtttt3795ABCA842(intron 9 2504)agaggaaaattatggtttgg G/A aatgaaataaagcagaaata3796ABCA843(intron 10 2013)tggccaaagatctttccaac C/T tgtgccagtggttcacagga3797ABCA844(intron 10 2378)ctgaagaaaattgtcacttt G/A aagtatcttttctttttttc3798ABCA845(intron 11 −697)aaaaaaaaaaaaaaagagag A/T gagaaagaaaatatttgtta3799ABCA846(intron 11 −528)tataaaagttagaaaaaaat G/T a a/g tatgttttagaaatagat3800ABCA847(intron 11 −526)taaaagttagaaaaaaat g/t a A/G tatgttttagaaatagatgt3801ABCA848(intron 11 −342)ctcaaaggagttttagccat G/A taataacttactattaatct3802ABCA849(coding region 1632ggttcagtcaccatctataa C/T aataagctttcagaaatggc3803(Asn 544 Asn))ABCA850(intron 14 252)cttattgcaaaataagtgaa G/A ttgagtttctaagagatcaa3804ABCA851(intron 15 130)ttttgtttttgagacggagt A/C tcgatcatctcggctcactg3805ABCA852(intron 16 534)acatatacattcattcaaat A/G cacattttatggtgacaaca3806ABCA853(intron 16 588)gaatcatcaggaaagtgtta C/T gcaaattctgattagtactt3807ABCA854(intron 16 645)atttaaagaaaatttgtaga C/T gttttaggtggaatgaagaa3808ABCA855(intron 17 431)tgtcaggtttttcttttttt T/A ttctttatgttagaaattgg3809ABCA856(intron 17 1390)gctgtaaactcgttttgtga C/A ttaggtaccccatgattcta3810ABCA857(intron 17 2452)cacgttatacctatagtaac G/A cggaaga g/c tctaatcatgag3811ABCA858(intron 17 2460)acctatagtaac g/a cggaaga G/C tctaatcatgagat g/c3812cttagABCA859(intron 17 2475)gaaga g/c tctaatcatgagat a/C cttagcagagccaatctcta3813ABCA860(intron 18 152)gaagaagcacaggagagagg C/T agaatcttgacatccaaagg3814ABCA861(intron 19 7477)aaaatctattttgaaagaca C/T ttggaactaaaaaaatcttt3815ABCA862(intron 21 196)ttgtttaaagtaaaataaaa T/C g/c aacaaaacatttttcaaag3816ABCA863(intron 21 197)tgtttaaagtaaaataaaa T/C G/C aacaaaacatttttcaaaga3817ABCA864(intron 21 287)actgtggtggggtgggggga G/T gggggagggatagcattggg3818ABCA865(intron 21 403)cctgcacaatgtgcacatgt A/G ccctaaaacctaaagtataa3819ABCA866(intron 21 1207)cccagcc c/a gagtgcagtggc A/G ggatcatagctcactgtaac3820ABCA867(intron 24 692)ctcctagatatagacaaaaa A/C caaggtgcacaatggccatg3821ABCA868(intron 25 212)CCtgattaatatatgggaag G/A aagggtaaggggtagtggga3822ABCA869(intron 26 67)aataattttcagtcctgtac A/G cactgtgaaacttcttttat3823ABCA870(intron 27 515)gtgtCtcccaaaccacatca G/T tttcatcttttgctattaca3824ABCA871(intron 27 661)cctggatattatcagactta G/A aatggagaggaaaagtcaat3825ABCA872(intron 30 1967)caaaaattagatacaagggg G/C tgaaattgactttaattgta3626ABCA873(intron 31 112)ctctaaatgctgacccaggt C/G acactgggtagatttacaac3827ABCA874(intron 33 401)cttctcactaggttgtgaga C/T gctgttgttaaattttatgt3828ABCA875(intron 35 484)taacagcatcatcctg a/t tgt A/G tttattttcatagacagaaa3829ABCA876(intron 36 258)tttgcatgtatgttggtaaa A/G cctaagtcaaaactcagtta3830ABCA877(intron 36 375)atattattttactgtcttag C/G ctgtatattaagaaactgac3831ABCA878(3′flanking region 674)tcggtggacatagaaagccc G/A gaagcttcttgatgtgctta3832ABCA879(intron 1 56-57)ttttgcttttgtgtgtgagt TT/Δ gtttcagaggttttgtcttt3833ABCA880(intron 1 1180-1191)taaagtataataataaaacg (A) 9-11 gaaattcctcctgtacagag3834ABCA881(intron 1 9877-9885)ctcctgcaaataggtatgac (A) 8-12 tcaactgagtacaaaaagct3835ABCA882(intron 1 12588)gtactagagtgcactccttt T/Δ gcaacaggacggccaaagga3836ABCA883(intron 6 78)tcaatgcatctttttttttt T/Δ gaaatggagtctcgctctgt3837ABCA884(intron 9 265)gtatatggtatttttttttt T/Δ agacctcttagaaagctagt3838ABCA885(intron 9 2666)attttttttaaaggratcca A/Δ tagtcattctcaatttcttc3839ABCA886(intron 11 −447)ggatattctgggtttttttt T/Δ ctacaaactcaagttttttg3840ABCA887(intron 15 8407)gtggaataatttttgactta T/Δ gcatttggtcaaataaaatt3841ABCA888(intron 15 9458-9470)text missing or illegible when filed3842text missing or illegible when filedABCA889(intron 16 54-56)tgaataatagtcatcatcat CAT/Δ aattattatcattacaacta3843ABCA890(intron 17 433)tcaggtttttctttttct t/a t T/Δ ctttatgttagaaattggac3844ABCA891(intron 24 1462)actccatctcaaaaaaaaaa A/Δ gagagaaaaaaattcrgcat3845ABCA892(intron 33 155)caatactttgcaaaaaaaaa A/Δ gatctttccctgatgatatt3846ABCA893(intron 34 184)atactgaatggttttttttt T/Δ ctcctttctcatatgacctc3847ABCA894(3′flanking region 1240)atccttggaccaaaaaaaaa A/Δ ctttatctgtgctttgcgtg3848ABCB115′flanking − 196gctttggagccatagtcatg T/C actcaaaatttattttatct3849ABCB125′flanking − 16tactctttacctgtgaagag T/C agaacatgaagaaatctact3850ABCB13intron 1 + 71660cttgctggaggaagggtgct A/C gaaaatataccaaatccaag3851ABCB14intron 1 + 80091gaaataatattcaagttctg A/C aataatatcatgacctatag3852ABCB15intron 1 + 103126gatatgaatcagaattcatc T/C gtgtctcaagaaaaggtcat3853ABCB16intron 1 + 103148tgtctcaagaaaaggtcatg C/T gataaattaagttctgctag3854ABCB17intron 1 + 108428aattaatttatcatcatctg A/G tcaccatttcacacaactca3855ABCB18intron 1 + 112042cataagttgaaatgtcccca A/C tgattcagctgatgcgcgtt3856ABCB19intron 2 + 491gctctctggcttcgacgggg G/Δ actagaggttagtctcacct3857ABCB110intron 4 + 36attaactattcaaaatactt C/T ggaaatttgacatctcctta3858ABCB111intron 5 + 1596ttagctctcttactgcttca T/C agtggaagaatcaaatactt3859ABCB112intron 8 + 1759aaacactctgaatattaaac C/T gctcctggaaccacagctca3860ABCB113intron 14 + 24agttgtccttgccctttgcc T/C ttctagaggtgcaaaaaata3861ABCB114intron 14 + 81tgcaggaagttaggaaacta C/T tataaatcggaagaagggaa3862ABCB115intron 15 + 38caaaccaacctgatttataa A/C cataagaacattctactact3863ABCB116intron 17 + 73gtttggtgggctagggctac A/G gtaggagtgggaacaagaga3864ABCB117intron 18 + 564caacagtaaagttacaatct C/A aaaggaatgctctctgttta3865ABCB118intron 18 + 2062tttccctgaggaatggttat C/T ctctgtgttccttgagtcca3866ABCB119intron 18 + 2293ccacatcaggttttccccag A/G caccttgggacagtttgaaa3867ABCB120intron 20 + 557aaaaccctaaccattgacac G/A tgtgaatgttttcctgggga3868ABCB121intron 21 + 24cgtgcctcctttctactggt G/A tttgtcttaattggccattt3869ABCB122intron 21 + 2725ctgacctgtttttggctgac A/C ggttttagttcctcccctca3870ABCB123intron 21 + 4725tcttggtattaaaagatcca A/G agagataggaatatgtaatt3871ABCB124intron 22 + 8507tgcacttaggaaaaaaacaa T/C atggaaatgtgtaaaatata3872ABCB125intron 22 + 8537tgtaaaatatactttttttt T/A aaaaaaaaggacacatttat3873ABCB126intron 22 + 8565aggacacatttattcagcat T/C atgatcagactattacattt3874ABCB127intron 22 + 8952caccttggtttcatggtttg G/A caaagtactggcctgtacca3875ABCB128intron 22 + 9520caccaacaaatatctttttc A/G cagttgggtgggcatctggt3876ABCB129intron 22 + 9836agactctgacttagacatga C/T ggcaggggaaagagagactt3877ABCB130intron 24 + 377taaaatacagatgtgttgta C/A taagttctgcaagcctttgg3878ABCB131intron 24 + 1493ggggaggtgtccaggcacga A/Δ catggagagctggacttgat3879ABCB132intron 24 + 1495ggaggtgtccaggcacgaac A/T tggagagctggacttgatac3880ABCB133intron 25 + 342tgcagccttgatcttctggg C/T tcaagcgatcctcctgcctc3881ABCB134intron 26 + 134cttggataaagtctgagagc C/C taaatatggtctccaagtgg3882ABCB135intron 26 + 1272gtccttcaattttgtggtga A/C cttaaaaacaggactctaaa3883ABCB136intron 26 + 1394tattaagtggtgtgttaaag A/C ttgtgctataatgaattgta3884ABCB137intron 26 + (1987-1988)aagggctggaagagtgaaag (AAAG) gaggctatttgctcccagac3885ABCB137intron 26 + (1987-1988)aagggctggaagagtgaaag     gaggctatttgctcccagac3886ABCB138intron 27 + 59gcagcctctctggcctatag G/T ttgatttataaggggctggt3887ABCB139intron 27 + 80ttgatttataaggggctggt T/C tcccagaagtgaagagaaat3888ABCB41exon 3 + 3aacacccttattttatagat C/T Caatgactgagtcaagaatt3889ABCB42intron 3 + 45cagcatctctacttatacca T/C gctctgctttaaggttctct3890ABCB43intron 3 + 498actcaaataggtggtaggag C/T agagacaattcaatacagac3891ABCB44intron 3 + 515gagcagagacaattcaatac A/G gacagaagtcttagatgaga3892ABCB45intron 6 + 1030tagttttgccatgtagaatt G/C aaaaagtgatagatggtgtt3893ABCB46intron 6 + 1437attaagcctgcttcaatcaa G/A ttagttatattcttgttcta3894ABCB47intron 6 + 2449ttgacttagcgacactgtta G/A catacttatctttcctgtgt3895ABCB48intron 7 + 451ccttgctgcacctgtgctgt A/C taagtttggcttattatagt3896ABCB49intron 7 + 530agtagagacaggctggcgat C/G acaccggacagagctaactg3897ABCB410intron 7 − 152aacagaatcatgaaattaag T/C tgttaatgatttgaaggcct3898ABCB411exon 8 + 40aggataaattgtttatgtcg C/T ctgggtaccatcatggccat3899ABCB412intron 8 + 130ctggttgactccagatatca T/C agaaggagttgtaaaattct3900ABCB413intron 8 + 248aatacacaggaagcttctaa A/G taaagtaaggaagtcactct3901ABCB414intron 8 + 531ctaaagagtgaatggattca A/G tacgtcccttggaactcacc3902ABCB415intron 8 + 4240ctgaggttccagcttatctc T/A tagagatgtttacttagrct3903ABCB416intron 8 + 4343tgttagaagaaaaaaaggtt C/T atattacaagagggtctgac3904ABCB417intron 8 + 4677cccaagatatcttcataact G/C tccatagtgcctagggtgcc3905ABCB418intron 9 + 113tttacccagattcacctatt A/G ttatcatttttgctcccaaa3906ABCB419intron 9 + 982tgtcctatacagtttttgtt T/A taagtttagtaaattgatta3907ABCB420intron 11 + 241gcactttgggaggccaaggt A/G cataaatcacttgaggtcag3908ABCB421intron 11 + 457tccagcttgggtgacagagt A/G agacttcatctcaaaaaaaa3909ABCB422intron 11 + 1337tactcttggggagcctatca C/G cagggtgggtcagatatagc3910ABCB423exon 12 + 3tgtttcttttctgtccagat A/T ctctcggcatttagtgacaa3911ABCB424intron 12 + 1288cagaccacactaaccctcag T/C tggacctcaggatgtcagtg3912ABCB425intron 13 + 206tgtggataagaaaatagcat G/A tggttagaccatttgtgaaa3913ABCB426intron 13 + 988cagtcggtttggaagcttgc T/C accctttcttcacttcctca3914ABCB427intron 13 + (1413-1414)tttatcttcacttatgtttt (T) ctcagttaagttatgctaat3915ABCB427intron 13 + (1413-1414)tttatcttcacttatgtttt     ctcagttaagttatgctaat3916ABCB428intron 13 + 1931cttgcaaatgttgctcttcc A/G caaaaaaaaaaggaaaggat3917ABCB429intron 22 + 767acagtgggctgatgcataga A/Δ cctgtagcaatccaccagca3918ABCB430intron 23 + 784agtatctcctaaactcttgc T/C atgcaggaaaaattatttta3919ABCB431intron 25 + 158gaaatattttactgtattaa T/C gtctagaacttaaatataag3920ABCB432intron 25 + 2920ctgagtcttcctatacatct T/A ttccattcctcggatgctgt3921ABCB433intron 29 + 411cttctcttaccttgaattct A/C ggctctcgaactttgacttt3922ABCB4343′flanking + 458agaaaatgaaattgccctac T/C gagctaactctgaaagcaca3923ABCB71intron 1 + 220acggggcaggaggttctggg C/A agaggacacctggagcgctg3924ABCB72intron 1 + 480agttaactcccttgctgaca G/A gcgtgcttcttgataggcca3925ABCB73intron 1 + (512-513)gataggccaaaaccgtaact AT/Δ ctttccaaaacatagaccgc3926ABCB74intron 1 + 1690agttctccaataaggcagat G/A aagttaagataaaatttgta3927ABCB75intron 1 + 5309aattaatatcatttattgct G/A tattgttgtcagtgttatct3928ABCB76intron 1 − 11274tgcttcttttcaagccagcc A/G gctttaaaaaaaagttagct3929A5C877intron 1 − 11085caggttttcagggctcatgt A/G gacctgaagaaaaatgagag3930ABCB78intron 1 − 10037attctactttctcaacttct T/C ttattacattatctcatcat3931ABCB79intron 1 − 21ccactctgaaacttccccct G/A ctttttttccttgtcagcag3932ABCB710intron 3 + (135-136)ttctctaatgaaaaaaaaaa (A) catattaattgaccatagtt3933ADCB710intron 3 + (135-136)ttctctaatgaaaaaaaaaa     catattaattgaccatagtt3934ABCB711intron 3 + 333aaaacaatttgtgtgtgtgc G/A tgtgcttcaaggttaatgtt3935ABCB712intron 12 + 524taaccactctgccctcagta C/T gaaacacagtgccgaaccca3936ABCB713intron 13 + 1543atcctgtgaggtggggaagc G/A tatggctagcataaatataa3937ABCB714intron 13 + 2400tgttaccttactgcctcatt C/G tcattcttcccacctgctat3938ABCB715intron 15 + 2201ctccttcctaaccttagcaa G/C agtctggagatttacttatc3939ABCB815′flanking − 2272ggcttaggcctaagggctga T/C gttggggccagtacccctga3940ABCB825′flanking − 2070agctatgaaaacaagaccct G/A tccttctagaggtagcaaaa3941ABCB83intron 1 + 25aaacggaaaaacctactcag A/C gcgggccattgaccgcccgg3942ABCB84exon 2 + 308tgctggtcctgggggtagcc G/A tcgtggtgaggctttcccca3943ABCB85intron 2 + 334cccccacttaaaacatttgt C/G ccctctgtctccccattcca3944ABCB86intron 4 + 12cctgctccggtactgccagc C/T gcagggtgcagagttggggt3945ABCB87intron 5 + 547agttcatagcattctcgctc G/A gccccctcaggcctgctgct3946ABCB88exon 7 + 57ggcaatgtgcggactgtgcg A/T gccttcgccatggagcaacg3947ABCB89intron 9 + 1231tttccgcagctgcatggaca C/T cctcgcgtgccccgtttctg3948ABCB810intron 9 + 2164cctcttggaggtccttctag C/T gctgcctatgtggagattct3949ABCB811intron 9 + 2645ttcctgcctggtgcctcccc C/Δ ggctgcctttagcaagtgct3950ABCB812intron 9 + 2646tcctgcctggtgcctccccc G/A gctgcctttagcaagtgctg3951ABCB813intron 9 + 3229cagggccgagcagggagtcc G/A tgggtcagctgggctccctt3952ABCB814intron 12 + (113-114)tcctccactgccacaagggg (GG) ccttctttcctgggacaatc3953ABCB814intron 12 + (113-114)tcctccactgccacaagggg     ccttctttcctgggacaatc3954ABCB815intron 13 + 128tgctctcgggagaccctggc C/T gtcttcacatgtcctcagct3955ABCB816intron 13 + 305atccaggtctagagaagcct A/G tagtggaggtgctgagctgc3956ABCB817intron 14 + 135acagttgtgtcagggaagac C/G agaaccacagccaaagggga3957ABCB818intron 14 + 159accacagccaaaggggacag A/T gtcgttgtgtggggacaggg3958ABCB819intron 15 + 747gttggagccttgggctctgt A/G agggggacagagggaatcat3959ABCB8203′flanking + 333cctatcccctggctcacccc G/A ggacccacagtccccatctt3960ABCB8213′flanking + 1168ccctctttcaggggtgtgat C/A cagtgcattgatggagcagc3961ABCB8223′flanking + (1719-1721)tagaccgcaggagccgcgcc GTC/Δ ttcctaacctcgcctcggcc3962ABCB91intron 1 + 69agggtgccaggccaggcacg G/C gttggggggcgtctgggcac3963ABCB92intron 1 + 8873tgggcccagcacgtggggcc T/C ggaactacctcaaaggcttc3964ABCB93intron 1 + 8940accagctcagcctgcccagc G/A tgcacacggcaccaagctgg3965ABCB94intron 1 + 11410agatccaagggatccagagg T/C tggaatgtgaccctccgtgc3966ABCB95intron 1 + 12863tggaagccagatgcccacaa G/A gctctgtgacttcacttcca3967ABCB96intron 1 + 19731gccaagtgtcaagatcgagc G/A aggggagggcctgacgaggg3968ABCB97intron 1 + 29649cagaatccagatgcccgtaa T/C gttgttaagaagcctgcaca3969ABCB98intron 1 + 31793ggccaggcggggaggggtac C/T ggccagaccggtgggcaaaa3970ABCB99intron 1 + 37537agagtcacagggttggggtg C/A ccccgggaaggtggcatcta3971ABCB910intron 1 + 38293taccagccctgtgctttcag C/A gaccatgtgacctgtcaact3972ABCB911intron 1 + 44661cccgaggtgcctggcttcac A/C gcaggattgccgtcctgcag3973ABCB912intron 1 + 49576aaagtggccccgtggcttgt C/T ccctgaagccctaaagcacc3974ABCB913intron 1 + 64669ccacagacaagccgggtagc C/A cacctcgcagctcaacacac3975ABCB914exon 2 + 448cctggttttgggccctgttc G/A tgtggacgtacatttcactc3976ABCB915intron 7 + 3364ggtaccaggagtcgggtatc A/G gtgggacaggaacgcgtgtc3977ABCB916intron 11 + 113gggccccaggagctctccca C/T actatcagcctcctgggctg3978ABCB917exon 12 + 370cccaggcctgcagcactgaa A/C gacgacctgccatgtcccat3979ABCB1015′flanking − 424tcgcgtctgcgcgctccgcc C/T ggtctgccggcgtgagaaag3980ABCB102exon 1 + 491acaaggggcggttgcgcccc G/T cagcggccggactcccggag3981ABCB103intron 1 + 37ccacttccctccgccgggcc T/C ctccttctccacacgcgggg3982ABCB104intron 1 + 217actcgtttgcagattttaca C/T ttgttttcttgttgacacac3983ABCB105intron 1 + 405gcgtttatactttttttttt T/Δ aaccaaaaacacattatttg3984ABCB106exon 3 + 185agggccggggcccaggcttc C/T gtaggcatcagtatgatggt3985ABCB107intron 6 + 1269caaattcacaactgtgcctt C/G cacagaatgggttggaaaac3986ABCB108intron 9 + 632ccccactccacttgggtgag G/A gcaggtggatggtgatgggt3987ABCB109intron 10 + 2373tacctcagggcactcagaca C/C cctcaccaatcagaggctca3988ABCB1010intron 11 + 108tccttttcctgttttttgtt T/G ttttttttttcttggagtgg3989ABCB1011intron 11 + 2379cattggtttttagtgtattc T/A gtgttgtgcatccatcatca3990ABCB1115′flanking − (2596-2595)tgtggtttagagctttctct (TT) gagacatttttgctaaggtt3991ABCB1115′flanking − (2596-2595)tgtggtttagagctttctct     gagacatttttgctaaggtt3992ABCB1125′flanking − 1746agctgaagtgaattaagcac C/A atcaactcagtactcacact3993ABCB1135′flanking − (326-314)agggggaaagtttaaaggta (T) 9-12 gtcttgttatgtttttaagt3994ABCB1145′flanking − 135agagggtttcccaagcacac T/C ctgtgtttggggttattgct3995ABCB115intron 1 + 511aaatatagatgcaaaaaaaa A/Δ tgagctgtggatgcatgttt3996ABCB116intron 1 + 581aatttcagtttttaggtcac C/T caagccagtgggagtcacat3997ABCB117intron 1 + (1938-1951)gaaagaaaagaaaactgtag3998ABCB118intron 1 + 4517ggtttcccaacatctcatct C/A ataaaaaaaataatttgcca3999ABCB119intron 1 + 5651aaagagaataggttagtgga T/C tagtattcctgtgcttaatg4000ABCB1110intron 1 + (12200-12201)aagagatggtctctagcccc CT/Δ gtttgatttggggcacttac4001ABCB1111intron 1 + 13023gtttggctactttgattaaa C/A aagaaagaagagataataat4002ABCB1112intron 2 + 739cctgcatctattctgaccta C/T actggggaaaacagtatgtg4003ABCB1113intron 2 + (921-922)tattttgtagttcaaaaagt4004(CACATCTTCTTCACCTAATTTACAAATCT)tgctgtccatttgatattcaABCB1113intron 2 + (921-922)tattttgtagttcaaaaagt4005tgctgtccatttgatattcaABCB1114intron 3 + 644agccacacgtttcttattgc C/A tgggaagtttaaaaaatggg4006ABCB1115intron 3 + 2231agtgaacctgagattgagct A/C tactgaaatctctagaagag4007ABCB1116intron 3 + 2406aaagggtggtctttaaatcc T/C tatgtttttctcatcaggtt4008ABCB1117exon 4 + 10tttctcatcaggttacaaga T/C gagaagaaaggtgatggcgt4009ABCB1118intron 4 + 434acaatttatagtatttctca A/C tgccccacacagtttatcta4010ABCB1119intron 4 + 518gtagatgagtagctaaaaac C/T aaagtcagctcctgaaataa4011ABCB1120exon 5 + 120ggcacaatgacagatgtttt T/C attgactacgacgttgagtt4012ABCB1121intron 5 + 320gggaggtgacccatgaattt T/C acttgagtatcatctccaag4013ABCB1122intron 5 + 16076agaagaggtaaoagtaagcc T/C cctgatttacagcacacatc4014ABCB1123intron 6 + 303atttgcaggtgtgtttgtag C/C gggcagttgagtagcttgaa4015ABCB1124intron 7 + 1141aaaggattcagcaggcatga A/C gaaagaaaagctttgcaaga4016ABCB1125intron 8 + 2463ccattggctaatagcaatga A/C ctatgacatggtctaactta4017ABCB1126intron 8 + 2677tcaatgatgttacagtgaga A/C tctaatattgtattaaaccc4018ABCB1127intron 8 + 2699ctaatattgtattaaaccca T/A gccacatgttaaatgaatct4019ABCB1128exon 9 + 24gtgtccaagtttacggacta T/C gagctgaaggcctatgccaa4020ABCB1129intron 9 + 108caccttggtctgtggcctcc A/C gaggaagtacttgttcaaga4021ABCB1130intron 10 + 2475taatcattccaaaccacgga C/A tttatttcattaagaacatg4022ABCB1131intron 10 + 2478tcattccaaaccacggactt T/A atttcattaagaacatgata4023ABCB1132intron 10 + 2711tttacagattggaaaagcca C/T tgaagtattgcaggtccaga4024ABCB1133intron 10 + 3539agtgactgtaattagtatca C/G ttgtgcacagagaaaaaatg4025ABCB1134intron 10 + 3623tgcagaaggttgttctttca T/C gaccttcctgagtttcagaa4026ABCB1135intron 10 + 3661gaattcattaataaaaataa A/T cacataatggagcgtgacat4027ABCB1136intron 10 + 5100gggccactctttggcttggc A/G atagactgtggccaatgaaa4028ABCB1137intron 10 + 5292actatttggtaggaacatct G/A ggcatgatcaggtagccttc4029ABCB1138intron 10 + 5912gagtaatattcagtaaaaaa A/Δ taaagtggtattttaaatca4030ABCB1139intron 12 + 116tgtttccagtaatagggaat G/A gaggtgtctttctctgaaag4031ABCB1140intron 12 + 326gataaatgacaaggcaatta G/C aacaatcaggaagcacaggt4032ABCB1141intron 12 + 335caaggcaattacaacaatca A/G gaagcacaggttcttcccaa4033ABCB1142intron 12 + 2572cctcatccttgccaatgttt C/T cttttactggtttttgatgg4034ABCB1143exon 13 + 23tctaaatgacctcaacatgg T/C cattaaaccaggggaaatga4035ABCB1144intron 13 + 70atggcagtatattgatcaaa C/T agaaaggtgtagcatacatt4036ABCB1145intron 13 + (1578-1579)ttattggcctctattttttc (C) tgcccattggtcaagtatga4037ABCB1145intron 13 + (1578-1579)ttattggcctctattttttc     tgcccattggtcaagtatga4038ABCB1146intron 14 + 32catacattcctgggagaaac C/T aagaggtcatagaaggaaaa4039ABCB1147intron 14 + 80cacaattatacacatttctt C/T tcgtatgattcccaagtcat4040ABCB1148intron 14 + 439tattgtgtcaaaaacaattc A/G ttgtatatctccattctaag4041ABCB1149intron 14 + (1262-1263)cagcctttycattatatttt (T) gctgtgttgtctaacaggag4042ABCB1149intron 14 + (1262-1263)cagcctttgcattatatttt     gctgtgttgtctaacaggag4043ABCB1150intron 14 + 1283gctgtgttgtctaacaggag A/C aaagagacacggatttgctc4044ABCB1151intron 14 + 1339tgagatagatatttaggacc G/A tgaccaatttttattttggt4045ABCB1152intron 14 + 1359gtgaccaatttttattttgg T/C tgaaaaatcttatttgaagt4046ABCB1153intron 14 + 1480tattgattagacaataaccc G/A tctggggaagggatatttct4047ABCB1154intron 15 + 370ccttttctaatgtctgcaca G/A cctatttaagaatattccca4048ABCB1155intron 16 + (550-559)aaagtttagtgtttctatca (T) 9-12 gctacttctgatggacttct4049ABCB1156intron 17 + 188tttctctccccaattcatgg T/G tttttggttagcttctcatc4050ABCB1157intron 17 + 194tccccaattcatgggttttt T/G gttagcttctcatcttcttg4051ABCB1158intron 17 + (197-198)caattcatgggtttttggtt (T) agcttctcatcttcttgggg4052ABCB1158intron 17 + (197-198)caattcatgggtttttggtt     agcttctcatcttcttgggg4053ABCB1159intron 17 + (289-296)ggggacttcttttaaaaaaa G/A (A) 4 tctgtgtttagtgttcctct4054ABCB1160intron 17 + 1070tcagacttgggttttcctat C/T tttcttcttgagaacaagtt4055ABCB1161intron 17 + 1651tgttaaaatatctcattgta T/C atgctgacggatttttcttg4056ABCB1162intron 17 + 2226ccttaagtctcctcctatca T/A gcaccttgttctcaccagct4057ABCB1163intron 17 + 2979ctctctcttcctttctcagc T/A ctactatttcactgttggct4058ABCB1164intron 17 + 3288aatccccatatcctacctta T/G ccatctcatccatgaatctt4059ABCB1165intron 17 + 3289atccccatatcctaccttag C/T catctcatccatgaatcttg4060ABCB1166intron 18 + 97aatatgagttttctaggtat A/G tatctagcagtgtttcaagt4061ABCB1167intron 18 + 98atatgagttttctaggtata T/C atctagcagtgtttcaagtc4062ABCB1168intron 18 + 892ctctgaaagttagtgataca C/T cttatttgtgtttgaatcaa4063ABCB1169intron 18 + 2681atgtatgagatcaagtcagg A/G tcaaatattagacacccata4064ABCB1170intron 18 + 3780ggaccatcctgtggggcaat C/G gttccagaaaatgctggtat4065ABCB1171intron 18 + 5741ctcaccggtataaatacaac C/T gtagcaaaggttttcttttt4066ABCB1172intron 18 + (5882-5883)tgcgtattccctcagttcag (C) tttttattcaagccacagca4067ABCB1172intron 18 + (5882-5883)tgcgtattccctcagttcag     tttttattcaagccacagca4068ABCB1173intron 19 + 10022tggctaagttaaaaaaaaaa A/Δ gagattcaactataattgct4069ABCB1174intron 21 + 322caagattcaatactgccccc C/Δ agggggtgggtgaacagggc4070ABCB1175intron 22 + 257ctgttcaatttcctctcgca T/C agtgattcattccacattcc4071ABCB1176intron 22 + 552taattaatatcttgtccttg G/C ggggtaaatgagggatggta4072ABCB1177intron 22 + 569ttggggggtaaatgagggat G/A gtagcataaacacttctcaa4073ABCB11783′flanking + 243aaacaccacagaatgacata G/A aactaaaggcggcaggaatc4074ABCC115′flanking − 1661cattcacccttgggggaccc A/G ggccaataaaaaaatcacag4075ABCC12intron 2 + 635gatgtgccctacctgaccct T/C ggctcggggcagacttgggg4076ABCC13intron 2 + 4769gggcaggagtggactcaggg G/Δ ttcctggtccaaatgggttc4077ABCC14intron 2 + 10069tatggaggttttctcttcct T/C tctgtgagttttctctctga4078ABCC15intron 2 + (11965-11984)aaacaagccacgcatttgcc4079ABCC16intron 4 + 4302cacctgtaatcccagcacct T/G gggaggccaaggcaagtgga4080ABCC17intron 4 + 4394gtctttactaaaaatacaaa A/C attagctaggcatggtggcg4081ABCC18intron 4 + 4524ccactgcgctccagcctggg T/C gacaagagtgaaactctgtc4082ABCC19intron 6 + 9045aggtccttaaactaccctgc G/A ctccaagaatcagtgcctgg4083ABCC110intron 7 + (3059-3071)gccatttttcctgcatgacc4084ABCC111intron 8 + (886-889)ttctatgtaacagtaagaaa GAAA/Δ agcagctgccaattaaacaa4085ABCC112intron 11 + 198tgaattgtcaggttgatgtt C/A tccttggtggcatggcgttt4086ABCC113intron 11 + 784tgtggattgatccaggagat C/G aagcaatgttgtcagtactc4087ABCC114intron 12 + 122agccttgcctgccagttgga C/G tcacttggggagccttaaca4088ABCC115intron 12 + (3138-3148)tcaatataaaaaacatttac4089ABCC116intron 12 + 3227tggtgatgttgagtgatggg C/T tgatcccagggtcgccccag4090ABCC117intron 13 + 2060tgctcattacaactattcct T/C cttggtcaggttggcaaatt4091ABCC118intron 13 + (2061-2062)ctcattacaactattccttc (C) ttggtcaggttggcaaatta4092ABCC118intron 13 + (2061-2062)ctcattacaactattccttc     ttggtcaggttggcaaatta4093ABCC119intron 13 + 11776gccacctggggagggcccaa G/A cgcgtctccagggcctgtca4094ABCC120intron 14 + 179aaagaaagaaaacacatttg A/T cttcttgacagagaactcgc4095ABCC121intron 16 + 219ctagcacagagggttccctg G/T gattgtaagttacagcagcc4096ABCC122intrOn 16 + 310ggaagttctactttcaggtg C/T ggtgtgatccagggactctg4097ABCC123intron 16 + 890ctctccagagaaaacaatct G/T tagaaggcctgcattgaaaa4098ABCC124intron 17 + 1171aaccccaggctcaaagaagc 0/A tggyaaataatgcatactcc4099ABCC125intron 17 + 1332cacctctttagtgtctgtgc A/G actgcacatttgtctcttgg4100ABCC126exon 18 + 53gattcagaatgattctctcc G/A agaaaacatcctttttggat4101ABCC127intron 19 + (3373-3379)ccaagctaggcagtctcaca CA/A tgtgcactcacgtggccggg4102ABCC128intron 20 + 2730gcgtgaggtctgtctctcta C/T ccttccgtccaggtgagcaa4103ABCC129intron 20 + 2789cttggccccagataggttcc G/C cacccccgcctttctttccc4104ABCC130intron 20 + 2919gatgcaaatgccgcccacca C/T cctggcacctcgtgcgttca4105ABCC131intron 20 + 3024cttacatcaaactggggcac C/T ccCCtCtctcaccacccacc4106ABCC132intron 20 + 9718gtggctgcgctcagtgacga A/C caggagaagtgaaggctgag4107ABCC133intron 20 + 9733gacgaacaggagaggtgaag G/C ctgaggcttataggagggtg4108ABCC134intron 20 + (9895-9896)gctggttcccagtgtcacac AT/Δ gtgtgtgaggacaggctgca4109ABCC135intron 20 + 9952ggtatcattcttccttcctg G/A gtgatgtggctatttgtgtt4110ABCC136intron 20 + 11120gcggagtgggggcagtagtc A/G tcatcatcactgagttattg4111ABCC137intron 20 + 11147tcactgagttattgtgaacc G/A ggaaagagatatgatctgtg4112ABCC138intron 20 + (11629-11631)tattttgaatatcacttctt CTT/Δ tcaatgcttgggaatcacgg4113ABCC139intron 20 + 11864gagctccagataccacctgc C/T ccacaaccagacagcctgtt4114ABCC140intron 21 + 3860tggagagtgacatggtgggg G/A tgtggtgcatatattcatat4115ABCC141intron 22 + 878ttaaagatcgtctattttgg G/A caagtgttaataattctcca4116ABCC142intron 22 + (4445-4446)gggtgcgtgcatgtgctaag4117ABCC142intron 22 + (4445-4446)gggtgcgtgcatgtgctaag4118ABCC143intron 23 + 62gttgtggctttgtctaatta T/C agaaatggatccttagagtc4119ABCC144intron 24 + 3171aaccatgaggctcaccatat C/T tcaaaccacgctgcacagct4120ABCC145intron 24 + (3349-3368)ccctgcatttaccaaatatg4121ABCC146intron 24 + 3369tttttttttttttttttttt T/C ccctgcatttaccaaatatg4122ABCC147intron 24 + 3584ccaaggatttttatttttca A/G caacaaaggaaatgatttta4123ABCC148exon 25 + 60gagtcggtcagccgctcccc G/A gtctattcccatttcaacga4124ABCC149intron 27 + 4539tcttttttactcactgcagt G/A tgaggaacaaatcacattta4125ABCC150intron 30 + (1708-1714)gacccaacactatctcctgg (T) 6-7 cttccggtcaagtgtcgggc4126ABCC151exon 32 + 652tggagaaaatcattttctcc C/T cttggcagtgtcccagggcc4127ABCC1523′flanking + 158ctgatgctcttccaggacac G/A aaaagaacccatctttgaat4128ABCC1533′flanking + (187-199)aagtactgttccggggagaa4129ABCC1543′flanking + 2227cattagaataggtagtatca G/A ccagccgggcatggtggctc4130ABCC21exon 1 + 77catattaatagaagagtctt C/T gttccagacgcagtccagga4131ABCC22intron 1 + 413gataagttctagaactggca A/C ctaatgatatggactagaag4132ABCC23intron 2 + 192atcaaagtggctttgatttt T/G gcataagaatggtgactctt4133ABCC24intron 2 + 1020agtgctgcgattacaagcct G/C agccacctgcacagcctctg4134ABCC25intron 2 + 3639gttatatcccacccccaaat C/A gacccaataggtacaatgaa4135ABCC26intron 2 + 3930aaaactggcaggagaatttc A/G ctggagctgcatgcaggact4136ABCC27intron 2 + 3989agttatgaaaccgatttttc C/T gggactggttgttctagtct4137ABCC28intron 2 + 4078aggtttccagatgtgttccc T/C aggcattcctggtggtagga4138ABCC29intron 2 + 4171cttattctttggtcagttgg C/T tttctaccacctcttagctt4139ABCC210intron 2 + 4257gggtattggaaagttcttgc G/A gctgctggaggctgcggtgt4140ABCC211intron 2 + 4436ggactagtggaagaattaga C/G ctttcctgaataaatagatc4141ABCC212intron 2 + 5227taccataatttatgtgtcct A/G tatgacatgaatttcattgg4142ABCC213intron 2 + 5373gttaaggatatgtgaactca A/G gtgtgtctataggataaatt4143ABCC214intron 2 + 5538ttaatgaggttaagcacatg G/T tcatatgtttaaaagccttt4144ABCC215intron 3 + 772ygtataaggcaagatttttt A/T aaaaaattaattgcttaatc4145ABCC216intron 3 + 1145acatccttctcccctcagtc C/T tcggttagtggcagtattct4146ABCC217intron 7 + 1658ggactcttaccagcttagtt G/T cctggttttctaatctaaaa4147ABCC218exon 10 + 40tggccaggaaggagtacacc G/A ttggagaaacagtgaacctg4148ABCC219intron 11 + 1672aactttttaagtcttaagac T/A ggaaggcctgtgtcctaggc4149ABCC220intron 12 + 148ccctctcaccgccccatgcc A/G cttttcctcctttgtaccat4150ABCC221intron 13 + 180catgagttttctgagcccca 0/C tttatctaactataaaatga4151ABCC222intron 13 + 1497gtgcagggtccccctgatgc T/C atagccagttcctctttaga4152ABCC223intron 15 + 169atgagctgaaagcaaaggtt T/C tcagccccttcccctgataa4153ABCC224intron 15 + 949ttccaggtgacacatttagt A/G cctaatttgggaaatgttaa4154ABCC225intron 15 + 984tgttaatctagtccaatccc A/C ttagtaagaaaggaggggtc4155ABCC226intron 16 + 4059catcctgatgcacagttatt C/T aaatttaagctccatttgtt4156ABCC227intron 19 + 10899atgtatggagtatttatgga G/A taaagtattccatgctgtat4157ABCC228exon 22 + 51caagcaataggattgttttc G/A atattcttcatcatccttgc4158ABCC229intron 23 + 56tatactgagyatctttctga C/T agggaggaattattatgtcc4159ABCC230intron 23 + 432tggcagtagagcagggtgag G/A aggattattctgcagaggaa4160ABCC231intron 23 + 734tgagccaactactgtactag G/A cactggggcactcaatgaat4161ABCC232intron 23 + 801atgggccagacccaactcac T/G gattttttagtgtatctgag4162ABCC233intron 26 + 154ctggctccatcttttaccca T/C ggacgtattccttactcttc4163ABCC234intron 27 + 124gggtccctaaagtttccttt C/G ctctaactcaaaggacctaa4164ABCC235exon 28 + 52cagattggcccagcaaaggc A/C agatccagtttaacaactac4165ABCC236exon 28 + 84aacaactaccaagtgcggta C/T cgacctgagctggatctggt4166ABCC237exon 28 + 129agagggatcacttgtgacat C/T ggtagcatggagaaggtagg4167ABCC238intron 29 + 154ttccctaggatggacacgtc A/G tttccagaactttgaaatgt4168ABCC239intron 30 + 91gtgttaggtgatgcctggca T/C agaattttcatccaggtctg4169ABCC240intron 31 + 170tccaaaattttacatcacgc A/G aatgaaaacgaacaaggtta4170ABCC2413′flanking + 371gtgaatttttattataagct C/T gttctccttaaaactttatc4171ABCC315′flanking − 1064tccttctgagccccaacaag C/T ggtgctgagttggcgtctgg4172ABCC325′flanking − (827-820)ctggggcttcacctgtcctt (C) 7-8 aaccctgatcaggctgaagc4173ABCC33intron 1 + 1226tatttgtacatatatgccct T/G tgtgtgtgtacgcacacacg4174ABCC34intron 1 + (1389-1399)ctgtaaaaaggcatatttgg4175ABCC35intron 1 + 2070gcgcacttctccttgatgct C/T gtgagctatacacacctcct4176ABCC36intron 1 + 4477gcctgtagtccccagacagg G/A aaatggtcttgaaacactgg4177ABCC37intron 1 + 6189agtgaccatgaagtctgcca T/C gagggggcctctgccacgtg4178ABCC38intron 2 + 268ttgtattttragtagagatg G/A ggttttgccattttggcagg4179ABCC39intron 2 + 376tgtgcccagccagcattctg G/C ttttaatgaggccctctccc4180ABCC310intron 2 + 446ctcacctgacctgcttgggg C/T catgggaatctgacaactga4181ABCC311intron 8 + 2323gaggctggtggtgagagcgt C/G atcgatagggcgtgcagcag4182ABCC312intron 12 + 85ctcattggactctaccctga C/Δ accacctccacgctgctcag4183ABCC313intron 19 + 1581ttcttgttgccctttcaatc C/T ccctcattttattttcatgc4184ABCC314exon 22 + 180aacacttccctgaggctggg C/T gtctatgctgctttaggaat4185ABCC315intron 30 + 1979cctctgtctgttccatccct C/G tcctaccctcaccccccact4186ABCC316intron 30 + 2340atgcaccagccaggcctgaa A/C gaatgagtaagagttggagg4187ABCC3173′flanking + (555-558)ttttcttgagcaagccaaca AAGA/Δ gtttcttttctgcaggtcag4188ABCC3183′flanking + 1455aaccccctatgattagaact G/A tagtgctgtttaggaagcca4189ABCC3193′flanking + (1650-1659)aattcacagttaacaaagct (A) 9-11 tccttgttataaattacaca4190ABCC415′flanking − 644attcatctgggtcatactct C/T gagttacccggctttcttga4191ABCC42exon 1 + 67ggagcggagcccgcggccac C/T gccgcctgatcagcgcgacc4192ABCC43intron 1 + (864-865)ctttgaccagcttctttccc CT/Δ gtttccaatactttcacttc4193ABCC44intron 1 + 21255ggatggaaatggtgagcaca A/G accttggcatttaaggaccg4194ABCC45intron 1 + 21503ctgttttctacccactgggg T/C cagcaaatcagcccctttta4195ABCC46intron 1 + 21900tgatgctcaaagcaatacaa C/G tagaaaatataggaggctgg4196ABCC47intron 1 + 22005aagggggagtcatactccag C/T gtgcattttagtttgtgctt4197ABCC48intron 1 + (22256-22264)tttgtgttgttatttgcgtc (T) 8-9 cctggaaggaagtgattggc4198ABCC49intron 1 + 27784ccagggaactggtggcacac C/G ctgagtctgctaggtgggct4199ABCC410intron 1 + 27821ggctaaagactcacaacctg A/T gggaaggggccaggaaagaa4200ABCC411intron 1 + 27837cctgagggaaggggccagga A/G agaaaggaagccatggccta4201ABCC412intron 1 + 27880gggtgttatttgggacccca C/T gcccatccaggccgacagag4202ABCC413intron 1 + 40310accaagcaggggaggtgaga A/T ttgtgcagactggggatatt4203ABCC414intron 1 + 40372ttgcttgaataaaaggatgc G/A agtcactgtattggtgaagt4204ABCC415intron 1 + 40413ttctttcaaatccaattcct G/A actgatttccttgccttcca4205ABCC416intron 1 + 40958gaagtttaccgaaaaacaaa A/G caagaaactccccagtaaaa4206ABCC417intron 1 + 50060tgtggctatggggaacatga G/A gctcatagaaactgaagact4207ABCC418intron 2 + 181gcctgggggaaactcctgtt G/T cctgtgcctccgtagaggtc4208ABCC419intron 2 + 254gaggtctgtccctctaggtg G/A aagtgttgtggttggaggag4209ABCC420intron 2 + 290aggaggttgtctggcttatc T/C gtgctactgatggggcttca4210ABCC421intron 2 + 543ttacgaagctttttcctcat T/C gtaggttctgggataaagaa4211ABCC422intron 3 + 557ggccttgcacctgggctggc G/A gtggtgccccagaggctgga4212ABCC423intron 3 + 718gtgtgtcttccttgttgtcg G/A agtggattgctggttggaag4213ABCC424intron 3 + 801acattccatgaaaaatcaaa G/A acagccagaagggcaataac4214ABCC425intron 3 + 1022aggggtggatgttgctgttg T/C tacaaaagggtggctttaaa4215ABCC426intron 3 + 1471tgctggggtgtcccagcgat A/G gtgtttccacatggccccga4216ABCC427intron 3 + 1490tagtgtttccacatggcccc G/A atcagtttcagttggaaaga4217ABCC428intron 3 + (1833-1834)gggctgccagccacttgggg (G) tggggtctctaacccacaga4218ABCC428itron 3 + (1833-1834)gggctgccagccacttgggg     tggggtctctaacccacaga4219ABCC429intron 3 + 1870cagatggtgactggactaca G/A tgagatttgggtaagctttt4220ABCC430intron 3 + 1927gaagtagaggctgtagaagc G/A tgaatttctcctgagacttg4221ABCC431intron 3 + 1970gacaggccccactctggtgc A/T aggagcatggtaatctttac4222ABCC432intron 3 + 2039gatcgaggggagctttaata T/C gggtacagttggtggagagc4223ABCC433intron 3 + (2067-2068)ttggtggagagctggtcttt (CTTT) tagcggggtggttattgggc4224ABCC433intron 3 + (2067-2068)ttggtggagagctggtcttt     tagcggggtggttattgggc4225ABCC434intron 3 + 3563cattgactgatggtctgggc G/A gatgtcaagttccctgtttt4226ABCC435intron 3 + 3696tgcttggcaaggatgaagac C/G ccagatgagtcactagtatg4227ABCC436intron 3 + 4093aagtaatccttggatttttt T/C ttttcttttccttctagcag4228ABCC437intron 3 + 4097aatccttggatttttttttt T/Δ cttttccttctagcagtgaa4229ABCC438intron 3 + 9724aaaaaccagcattactcacc A/G atgagcccatttgcttgact4230ABCC439intron 3 + 9988aaaggcaaagagcactgagc G/A tctggctgatagcccaggtg4231ABCC440intron 3 + 10952gttaaaattgcattccctac A/G tcttgttcagaaggtaagcc4232ABCC441intron 3 + 11125gctcaatttctgctgtgttt A/G atttttgactccacactacc4233ABCC442intron 3 + 11244ccaagagcctggaatcctcc C/Δ aagtctggttcttttcccca4234ABCC443intron 3 + 11916gtcttgaccaaaaaaaaaaa A/Δ tttagctctacatgatggtg4235ABCC444intron 3 + 12047actatactccagcatgggtg A/G cagagcaagcaatatctgaa4236ABCC445exon 4 + 205tgaggttacgagtagccatg T/G gccatatgatttatcggaag4237ABCC446intron 4 + (412-414)ttatggaaatttttgttgtt GTT/Δ cattaaaaccttcacttaca4238ABCC447intron 4 − (9757-9756)tgacatctgtcatttttttt (T) cctgctgcacaaatctcttc4239ABCC447intron 4 − (9757-9756)tgacatctgtcatttttttt     cctgctgcacaaatctcttc4240ABCC448intron 4 − 6373atgttttgttctagatagta C/G agttttcttgtaatctcaaa4241ABCC449intron 4 − 6267acttccaccattcacagtat T/C gttcttaatggcatgcggat4242ABCC450intron 4 − 6096agatccttcatttcctaggg T/C gtacaaatttcaaggctttt4243ABCC451intron 4 − 6057ttgctatgctagattgattt C/T ctccccaagagttgttaatt4244ABCC452intron 4 − 5295agttgtctggcttacagtag A/G tgcttactaaatggtagctt4245ABCC453intron 4 − 803agcttcacctgtttcagccc C/T gcttccatgagcttcacctg4246ABCC454intron 4 − 736attcagcagcctccacatcc C/T ccttctccgtacttctgtcc4247ABCC455intron 4 − 728gcctccacatcctccttctc C/T gtacttctgtcctagctagg4248ABCC456intron 4 − 624ccacccagtgtccctcagtt A/C gaactgtccccagttctctg4249ABCC457intron 4 − 470ttgatactccatatttgtca C/T ttcccattgaacacattgaa4250ABCC458intron 4 − 411ggtgaagagactaaggcccc G/A tgtgtttaataatgttgcac4251ABCC459intron 4 − 323tgttcctctgacagcctctc C/T gttcttccctaatttggctc4252ABCC460intron 4 − 246gtccttttgtacttgggggc A/G tgtccaaattcattaaatga4253ABCC461intron 4 − 199agatttttcttcttcctacc C/T ctcgctttgctgtcctgaca4254ABCC462itron 5 + 73ccttttattctttctggagg C/T aggggctcactctgttcaca4255ABCC463intron 5 + 403aagggatcacgccttgttgc C/A caggctggtctcaagattct4256ABCC464intron 5 + 937ccagaatggcttcacctgtg G/C tgggtgcttggctttctgct4257ABCC465intron 6 + 150ggctcagccaagggggcctc C/T gtccttatgctgaaggcaaa4258ABCC466intron 6 + (380-381)tgtgttagagctgttttcac (AT) gtgtatatatgtgtgttatt4259ABCC466intron 6 + (380-381)tgtgttagagctgttttcac gtgtatatatgtgtgttatt4260ABCC467intron 7 + 894tttgttgttgttgcccagga A/T ggtctcaaactcctgggttc4261ABCC468intron 8 + 82tatttagcatcactatgttc C/G agtgtaatgacatttaactc4262ABCC469intron 8 + 100tccagtgtaatgacatttaa C/T tctctcataaccaaaacgtg4263ABCC470intron 8 + 5212tcagggaattgtggtccaat A/T tgcagctayggaagaaatcc4264ABCC471intron 8 + 5444gaaaccttaatttcccctca T/C gtacatagtttctggtggga4265ABCC472intron 8 + 8969tcaccctcctgagtgactag A/G gaaagtccagctagcccctc4266ABCC473intron 8 + 9106ccagtgctcaataggtttac T/C gtgtgcatagttttttattt4267ABCC474intron 8 + 9412tgtttgtaagtgcaggatgg G/A ggacacatctctgccctgta4268ABCC475intron 9 + 116tggcttgcttatttactgaa A/G ctatgttacaaagattctca4269ABCC476intron 9 + 1384cacggcaggaagctgcaccc T/C ggggctggagatgatgtctg4270ABCC477intron 9 + 1459agatttgggagcagagggcg A/G gggtctcttctgagggtact4271ABCC478intron 9 + 1632agcagcactcctgcccagcc C/A cactgcctccgtcctcccct4272ABCC479intron 9 + 3630ataaatttttcattttgaag C/Δ ttatcttgatctcttattcc4273ABCC480intron 9 + 3830ggtgttccacccttcaggga C/T gccagattcattttgaagaa4274ABCC481intron 9 + 3940gagcatttaccaaagtgtgt C/T gtgcagaagaatagccactt4275ABCC482intron 10 + 1504gggcaaggctgcattgcagt G/A gcttattcttgtctcgagtg4276ABCC483intron 11 + 1817ttttagggagttgagaaaca G/C atggcaaattttgctagttt4277ABCC484intron 11 + 3342actggaattattctggcttg T/C aggtacagagattgcatgtg4278ABCC485intron 11 + 3377catgtgtaatcaaaacctgc T/C ggacagaaatgytcctgagc4279ABCC486intron 11 + (3610-3625)gtcctagaggaaaaaatagg4280ABCC487intron 11 + 3737ataagttcatcgagctaaaa A/C tatatttgagataaaataat4281ABCC488intron 11 + 6953agagtagagacaaagaaatg C/A caccttgatctgtaagaggg4282ABCC489intron 13 + 442ctatgacaggttagaagtga G/C gtccttgggaccaacatagg4283ABCC490intron 13 + 459tgacgtccttgggaccaaca T/C agggctttcttgggaaggct4284ABCC491intron 13 + 633tgaacacttaaaacccacag C/A catgtaggcctggcttgcct4285ABCC492intron 13 + 645acccacaggcatgtaggcct C/T gcttgcctttgaaactagtt4286ABCC493intron 13 + 3306aatgttctcaacgagttaga A/C aattggattgaacaatatgc4287ABCC494intron 14 + 252taatttagaactttttgttt A/C cctcttccatgacttaattc4288ABCC495intron 15 + 124tggattctgtggtttcaggg C/T tctattccatgatattggta4289ABCC496intron 15 + 1552tttggacttctgcctgtttc C/T ccacagctttgtcaacagag4290ABCC497intron 16 + 157cctactggtgttccatgtcc C/A ttacaaagacctgcgaaaaa4291ABCC498intron 17 + 329cccaaattgtggttcatttt T/C aaaaaaatgtatttatctaa4292ABCC499exon 18 + 56attrgaggaggaaatgtaacc C/A agaagctagatcttaactgg4293ABCC4100intron 19 + 7202aattaaaaataatgtttttt T/Δ cacataacaatggttatatg4294ABCC4101intron 19 + 7445ttttggcataatttttaatc T/C actagaatgttctgattcat4295ABCC4102intron 19 + 9018tacgtgatggcctgaagaga A/C aaaccgtacattggttcttt4296ABCC4103intron 19 + 11388aagagttcagagattttggg A/C gttggaggaaaaaatagcat4297ABCC4104intron 19 + 11646cattatttttaatttttttt T/Δ cctcctgttggtgtcagaat4298ABCC4105intron 19 + 13517gagaaacttacattattttt A/T aaaaatgctataactagtcc4299ABCC4106intron 19 + 21033tgggagtgccctgggctagc C/A ctgaaacttcaggttttcag4300ABCC4107intron 19 + 21095agacttttggaagaagcaga A/T ctgaaggtaagactgagtaa4301ABCC4108intron 19 + 21634gtgctatttctgagcactca C/T ggccccattgggcatgggct4302ABCC4109intron 19 + 21715tgttttgctcaccccctaca C/T agcttgccctcatgcttctc4303ABCC4110intron 19 + 23090agcaacagacttggagactt C/A agcttctaaaagtttcatta4304ABCC4111intron 19 + 24297cgaatgtgatgaatgtggga A/C cctttttgagatagcagcac4305ABCC4112intron 19 + 25947gagtctaaattaaatatgag C/A aaaactagaaaccatttaaa4306ABCC4113intron 19 + 30193acagatttgcaagagtctac A/C aaagtgataatattctgtca4307ABCC4114intron 19 + 36938aagccgagtcaatctcttgg C/G tatcttctgtggactacttt4308ABCC4115intron 19 + 37322gttcccatgagggctgaccc C/T gcctcaccctggtaacccgc4309ABCC4116intron 19 + (38361-38362)cggggttagcttccctagct (T) gcggagggtttctgagaaaa4310ABCC4116intron 19 + (38361-38362)cggggttagcttccctagct     gcggagggtttctgagaaaa4311ABCC4117intron 19 + 38746taaagacatgctggtaatta T/C gtaaaataaagataagtcaa4312ABCC4118intron 19 + 42343tgtaagggcagaatcagcag C/T aacgattggatgttcccgga4313ABCC4119intron 19 + 44733agcaggctggggaaaaaaaa A/≢ tacagaggttatcattatgc4314ABCC4120intron 20 + (405-419)ggatagaaccaggtgtggtt4315ABCC4121intron 20 + (637-648)ccaacaatcctacagaaata4316ABCC4122intron 20 + 842caagctggggcacttttttt T/Δ tcccaagtgtttattttgga4317ABCC4123intron 20 + 843aagctggggcactttttttt T/C cccaagtgtttattttggaa4318ABCC4124intron 20 + 1347ggacctctgatttttttttt T/Δ cttttgcaaacatttttaaa4319ABCC4125intron 20 + (14553-14567)tcagcagcttgactgagctt4320ABCC4126intron 20 + 15487ggttttttccagtgtgatag C/T acatgtagaaagcagtactg4321ABCC4127intron 20 + 16161gcgttgagtcatgaagccga T/C agtgccgcttgtgcatcgca4322ABCC4128intron 20 + 30891acgtcccccactgttctatc C/T ttctcaagaagcaagcgttg4323ABCC4129intron 20 + 31180ccttgcacgtgctcatacat G/A tcatttgctattgttatcat4324ABCC4130intron 20 + 31283gtgttaaagctaaaaaaaaa A/Δ ccctgttagacattttgact4325ABCC4131intron 21 + 4204ttgaccctgccctgaaaccc A/T gttggagataaaacagtggc4326ABCC4132intron 22 + 1026gtgccctactccacgtaaaa A/C tcttctgtagctcaactgag4327ABCC4133intron 23 + 377gcctggtgcatgaggttgag A/G aaaattctcagcaggagagt4328ABCC4134intron 25 + 4122cccttttgattaaaattgca C/G/T tgggacaagaaccaccccca4329ABCC4135intron 25 + 6418ttgcactgaggtaatggctg C/A agaaattaaagtgagggtat4330ABCC4136intron 25 + (8765-8775)tgcatcctgtgatttttttc (T) 5-11 aatcctgccgcctggatctc4331ABCC4137intron 26 + 67tatgtttaattgcttttact G/C ttattgctttttttaattgg4332ABCC4138intron 26 + (101-109)taattggatgaaaggattgt (T) 8-9 cacccaatagagcatgtttt4333ABCC4139intron 28 + 391tagatatgatcttttttttt T/Δ aaatctctattgtgaagtag4334ABCC4140intron 29 + 2569atcctcttttttctaatacg C/T accactatctccacattaaa4335ABCC4141intron 29 + 7820gaaaaacaacctgtgtcctg C/T ttggaggttcagcatattct4336ABCC4142intron 30 + 6269tagatgttctttgggcattg A/G aaagatggtgttatctgttt4337ABCC4143intron 30 + 6320gtttaataaggtttaattag C/T tctactttgttaattacatt4338ABCC4144intron 30 + 6474ctttgatgctatggttttca A/G tccacagatgttcataactt4339ABCC4145intron 30 + 6519ttccactatgaattatattt C/T ctgccattttaacacacctt4340ABCC4146intron 30 + 6574aatggttttggtcctaaatc C/T acactggttcaaaactagac4341ABCC4147intron 30 + 6680aggtgtgtctcctgtatatg A/G cgtggttaggttttactctg4342ABCC4148intron 30 − 704acgtttatcagaaaacctgt A/C tctcttctagttcagctaga4343ABCC4149intron 30 − 228atctatgaatcagagtgatc A/G gaactaaaatggatctacag4344ABCC4150intron 30 − (14-5)acattctttttatgcttacc (T) 9-10 ctaggtatacttcaaaagaa4345ABCC4151exon 31 + 146agtccgttccgaaggcattt G/T ccactagtttttggactatg4346ABCC41523′flanking + 173atttttaaaggagtaggaca A/G agttgtcacaggtttttgtt4347ABCC41533′flanking + (430-440)tggatacatggttaaaggat4348ABCC41543′flanking + 556aaaggtgctttgatactgaa G/A gacacaaatgtgaccgtcca4349ABCC41553′flanking + 1144cctccctgaaattgcatata T/C gtatatagacatgcacacgt4350ABCC41563′flanking + 1426tttaggtgactgaaattgca A/T cagtgateataatgaggttt4351ABCC51intron 1 + 628ttctgccacacagagccgcg G/C gtggctttgtgtttatcaca4352ABCC52intron 1 + 1834tgagttccagtgacctcctc C/T gtttcaaactgctcaccgcc4353ABCC53intron 1 + 3055agaaagtctttaaaaaaaaa AΔ ccaacctttctattgtatac4354ABCC54intron 2 − 20280gaatgcatcgctactaagta T/C ttttgtaagttcagacacca4355ABCC55intron 2 − 20260tttttgtaagttcagacacc A/T tctagaatctgcttgaccgt4356ABCC56intron 2 − 19204tgaaataaagcattcgcaca C/T ctacccactttcttcgggac4357ABCC57intron 2 − 19043ttggctggcattaggctggc G/A ttacttcagctaacatgaag4358ABCC58intron 2 − 18824ttgaacactcttcaagatgc A/G tgcacagcactgaaccgagt4359ABCC59intron 2 − 18807tgcatgcacagcactgaacc G/A agtggtctggtgcagataaa4360ABCC510intron 2 − (18735-18734)atagaagcttaaactcacaa (A) cacgtactctacatagatga4361ABCC510intron 2 − (18735-18734)atagaagcttaaactcacaa     cacgtactctacatagatga4362ABCC511intron 2 − 15903taccaaagcctgctcatgga G/A gtagaaagcaagactgacat4363ABCC512intron 2 − 15901ccaaagcctgctcatggagg C/T agaaagcaagactgacatgt4364ABCC513intron 2 − 15847tggatggaacctcaaaggcc G/A tcttgcccagtccccattta4365ABCC514intron 2 − 15605aggagacgccacgacactga C/T agctgtacctgacctgaggg4366ABCC515intron 2 − 13571ccgattgtgccccagatacc G/A ctttatttgaggggtgtgcc4367ABCC516intron 2 − 13402taccctgctgttgtccggcc G/T ccaggaagggattggattgt4368ABCC517intron 2 − 13325cccagaggcctccgtgcagg G/C gaaaagcccttggttgccct4369ABCC518intron 2 − 7293tttgttaggataaaattgca C/T tgagtgcctgttctaaacca4370ABCC519intron 5 + 374ccgggctggtgagccagcac C/T gggaacataccaagtgcctg4371ABCC520intron 5 + (2212-2213)cgcctcctgcagtgctctct CT/Δ tggtgaatgctaactctgct4372ABCC521intron 5 + 3283acccagagagagtctgggtt C/T tggaattcagcgtagctacc4373ABCC522intron 5 + 3469ttggctttcttttgttgtgg C/T tttttgttttatttttgtca4374ABCC523intron 7 + 443cacttttattaaagacagta C/T gattacataacatttggccc4375ABCC524intron 7 + 458cagtacgattacataacatt T/G ggcccatcctagcaagcagg4376ABCC525intron 9 + 176caaaacaaaacaaacaaaca A/G acaaaaaaaaaataccacat4377ABCC526intron 9 + 214catatggagatgatgctgtg G/T tcctctccttactggacctg4378ABCC527intron 10 + 703tgtgggctggaattccttga T/C gttgccactgcatagattag4379ABCC528intron 10 + 3580catggggctggagctgtgaa A/G accagtaggtactggcatgt4380ABCC529intron 10 + 3655atcctttgaataactcttta G/A gggagagaaatgatggaaat4381ABCC530intron 10 + 3854gaagtttagaatcatgacac T/C tcggggaagataggatcagg4382ABCC531intron 10 + 5040ctttgaagacatgagagttt C/T ttggcaagaagatgttctct4383ABCC532intron 10 + 5316cagttaaatgtcattaggtc C/T gctttaggctggctgagggg4384ABCC533intron 12 + 234tgactgttgtcccagctgga G/A ccatttggtctcatgccttc4385ABCC534intron 12 + 300tgccacaggtatgcccgtgt A/G ttgaaaatgtcagagataag4386ABCC535intron 12 + 318gtattgaaaatgtcagagat A/G agagatgagcagacacccta4387ABCC536intron 12 + 1545gtagcatccctaaaccaaga C/T aaatgtctactatcagtccc4388ABCC537intron 13 + 20ggcaaggaatgtttggcttc T/C gtcatgctttccatcttggc4389ABCC538intron 14 + 278ttctatccagatatttttaa A/G actacaagtaagcgtgtgca4390ABCC539intron 16 + 1663tgactggagacttttttttt TM aaatattattagatcaattc4391ABCC540intron 16 + 1864gactggagactttttttttt A/T aatattattagatcaattca4392ABCC541intron 17 + 20ggtaatggccttttttgaaa T/G ttttagatttgtcatcaaag4393ABCC542intron 18 + 232ggacacctgcaggctatctg C/T tctcatccgttgtgtattag4394ABCC543intron 19 + 249ggaccagtaggaacagagcc G/A tccctgggccctgaccactc4395ABCC544intron 20 + 846tttaccagaagaaaaaaggc G/A gtggggtggggagacagcca4396ABCC545intron 20 + 1154tcttgagacgaaaaaaaaaa A/Δ tcagagcatccaggtttcta4397ABCC546intron 22 + (1424-1425)gaggaaatgcagcggaatat (AT) caactctggttttaacaggg4398ABCC546intron 22 + (1424-1425)gaggaaatgcagcggaatat     caactctggttttaacaggg4399ABCC547intron 24 + 132atcccacagaatctccagca A/G tctctcaaccgtgcttggaa4400ABCC548intron 24 − 874gtgctggagaggttaggatt A/G cggtcagtggtggtacaaag4401ABCC549intron 24 − 630tgatgataaaaattacccaa G/A cagttatatcacagcatttt4402ABCC550intron 24 − 102acagggtggcagctacctct G/C tgtggctactatggttgtcc4403ABCC551exon 25 + 120taccgagaaaacctccctct C/T gtcctaaagaaagtatcctt4404ABCC552intron 26 + 263ctgggcccagggctctgctc C/T gtgacttcggacaagttatt4405ABCC553intron 26 − 3257ccgagggtgaattgctgtgt T/C gtctcacactttgggagata4406ABCC554intron 27 + 873gttttttcctctgctctatc G/A ggattcttctcatttgaaga4407ABCC555intron 29 + (2733-2734)gtgtccaaaggaaggacacg (TGTCCAAAGGAAGGACACG)4408cttatgttctccttgtggccABCC555intron 29 + (2733-2734)gtgtccaaaggaaggacacg4409cttatgttctccttgtggccABCC556intron 29 + 2959acatgattttccacggctac A/G tagaagtccatcataggaat4410ABCC557intron 29 + 4020aataaaaaaataagggggga G/A gtgcacgcagggctagttga4411ABCC558exon 30 + 684cccctctgccgcctccccac G/A gccgctccaggggtggctgg4412ABCC559exon 30 + 947agtctatccacagagagtcc C/T actgcctcaggttcctatgg4413ABCC560exon 30 + (1145-1160)tcaccgcagtcgtcgcacag (TC) 6-8 ccctcaaagtctgcaacttt4414ABCC5613′flanking + 4attattttggattttgtaaa A/C ctcttcgtgtatcaaacaat4415ABCC5623′flanking + 2008cccgcagacctggcacagcc C/Δ tgttctcaaaggggagctcc4416ABCC5633′flanking + 2052cccagctaggacaggccagc A/G ccaggcagttaggaccgtgg4417ABCC715′flanking − 834gctaaaacactccaaagcct T/G ccttaaaaatgcgcactggg4418ABCC725′flanking − 729cctccttgcagatttttttt T/Δ ctctttcagtacgtgtccta4419ABCC73exon 1 + 125tagcagggaccccagcgccc G/C agagaccatgcagaggtcgc4420ABCC74intron 1 + 6200ctatgtgagacgttaagaag G/A tagaggtggccaagaaggaa4421ABCC75intron 1 + 7538agttctctttcttagcatgg C/A ctacagaggtgcaactacct4422ABCC76intron 1 + 13519gaaacttaaatcttgagtca T/C acaattgtgtctacatactg4423ABCC77intron 1 + 14110attacacagtattttttttt T/Δ aattttggggaaagtcgatt4424ABCC78intron 1 + 14293gccaggcagattcctgactc C/Δ tataacccagagcttatcag4425ABCC79intron 1 + 14316taacccagagcttatcagag C/G atttatgtccccaaagagaa4426ABCC710intron 1 + 14433cagaataacaatgatggctc G/A gaaaaatatgggtatttctg4427ABCC711intron 1 + 14824acgttttgacagttgcacaa G/C tttctttctttaagctttaa4428ABCC712intron 1 + 23401aatatttttgaaaatcacta C/G ggtatcctgcatagtgattt4429ABCC713intron 3 + 879gaaaaatttcagttcataca C/A ccccatgaaaaatacattta4430ABCC714intron 3 + 922acttatcttaacaaagatga G/C tacacttaggcccagaatgt4431ABCC715intron 3 + 933caaagatgagtacacttagg C/T ccagaatgttctctaatgct4432ABCC716intron 3 + 13704tttttccaaataaaaaaaaa A/Δ tcaggtgatatctgtaaatg4433ABCC717intron 3 + 13758tattaaagaacatgatgctt A/G aaacagattagggaaaacta4434ABCC718intron 4 + 240ctctgttgtagttttttttt TΔ ctcctaatcatgttatcatt4435ABCC719intron 4 + 376ttatgttcagcaagaagagt A/G taatatatgattgttaatga4436ABCC720intron 4 + 586tgtccagacaagagaccaaa T/C tgccgaggcatcatttaggt4437ABCC721intron 4 + 1089tttcaatctgaacattttac G/A taagtgaagactttgttaga4438ABCC722intron 4 + 1615aaagttaggtggtattgtat C/T tgtcttcctttctcaatgtt4439ABCC723intron 4 + 1946aatacaaacaaacttgagct T/C tgcctatacttttcaagaat4440ABCC724intron 6 + 783tatctaagttttggagtcaa A/G tagcactttgtttgaatccc4441ABCC725intron 6 + (1104-1131)tacagagatcagagagctgg4442ABCC726intron 7 + (731-732)gtagcaatgagaccattttt (T) cttcagttgagctccatgtt4443ABCC726intron 7 + (731-732)gtagcaatgagaccattttt     cttcagttgagctccatgtt4444ABCC727intron 7 + 1434gaatgtttggttgtaacctg T/C ataatctggcatgaaattgt4445ABCC728intron 8 + 752catgctctcttctcagtccc A/G ttccttcattatatcaccta4446ABCC729intron 8 + 1109tatggccaagacttcagtat G/A cgtggacttaattcttcctt4447ABCC730intron 8 + 1312atgaagacattcattttttt T//A ctccgtccaatgttggatta4448ABCC731intron 9 + (6521-6522)gtgtgtgtgtgtgtgtgtgt (GT) ttttttaacagggatttggg4449ABCC731intron 9 + (8521-6522)gtgtgtgtgtgtgtgtgtgt     ttttttaacagggatttggg4450ABCC732intron 10 + 2119gaacactttatagttttttt T/G ggacaaaagatctagctaaa4451ABCC733intron 11 + 3867tttttcttcaagaaattaga A/Δ gaggggagaaattggtttaa4452ABCC734intron 11 + 11844tgaatcaaaatcatctaaaa A/Δ gctttcagaaaccagacttt4453ABCC735intron 11 + 12144atattaaacagagttacata T/C acttacaacttcatacatat4454ABCC736intron 11 + 20975gtgtggatagtaaatgccag G/A gtaaatcacatagcatctaa4455ABCC737intron 11 + 27057atggaagagaagttttagta G/A aggggaggaaggaggaggtg4456ABCC738intron 11 + 27131gagagagacttttttttttt T/Δ aaggcgagagtttactacct4457ABCC739intron 13 + 152gtattaactcaaatctgatc T/A gccctactgggccaggattc4458ABCC740intron 13 + 287tttgcagtatcattgccttg T/C gatatatattactttaatta4459ABCC741intron 15 + (85-86)atacatatatatgcacacac AT/Δ aaatatgtatatatacacat4460ABCC742intron 15 + 106taaatatgtatatatacaca T/A gtatacatgtataagtatgc4461ABCC743intron 15 + 3341ggaagtataaatttgtaaat A/C actgagacccaaacttacaa4462ABCC744intron 15 + 5556tgctattgactaatagtaat A/T attttagggcagctttatga4463ABCC745intron 15 + 5919tggtagttctatgtggaaac C/A gtgaggaaaraattttatat4464ABCC746intron 17 + 2479caaaaaggtatggaagtcag A/C ggagaaggagacccctatgt4465ABCC747intron 18 − 81aagtatgcaaaaaaaaaaaa A/Δ gaaataaatcactgacacac4466ABCC748intron 19 + 751cattaataaaataacaaatc A/G tatctattcaaagaatggca4487ABCC749intron 19 + 820tgacatttgtgatatgatta T/C tctaatttagtctttttcag4468ABCC750intron 21 + 1532ttacctttaacttttttttt T/Δ agtttgatcagctctcttta4469ABCC751intron 21 + 1607atgcttttggagttgggtct C/T ataaatgtatagaaatgttt4470ABCC752intron 21 + 11260atgtggaacaatcatgacta T/C atgccttttactttctctat4471ABCC753intron 22 + (130-131)agaatcaatattaaacacac AT/Δ gttttattatatggagtcat4472ABCC754intron 23 + 1837ctgtcctaaagtttaaaaag A/Δ aaaaaaaaaggaagaaggaa4473ABCC755intron 24 + (7100-7112)agtttaacatgttacaaaac4474ABCC756intron 25 + 237actcttcccccttgtcaaca C/T atgatgaagcttttaaatac4475ABCC757exon 27 + 115gggtgaagctctttccccac C/T ggaactcaagcaagtgcaag4476ABCC758exon 27 + 334ggatgaattaagtttttttt T/Δ aaaaaagaaacatttggtaa4477ABCC815′flanking − 1099aaaggggctgaaggggtctt T/C cttttgtgttcccctgactg4478ABCC825′flanking − (424-422)caccccaccaccaccaccac CAC/Δ aaggtaacgttctgccccac4479 ABCC83intron 1 + 1212agcctgggcaacatagtgag A/G ccccccccgccctttctaca4480ABCC84intron 2 + 1003aggaggactgtgaatcccag C/A ctgcatgtttgggtcggatt4481ABCC85intron 2 + 1253catctcactaaggaagaatc C/T agtaaccagcaaggatgaga4482ABCC86intron 2 + 1382cccagactgcactcctgcag T/C gctgcctggctcctgtagtt4483ABCC87intron 2 + 2371tttcagagctgtctggaaat T/A tagggggcaggtgggagggg4484ABCC88intron 3 + 1957ccctacccctagcccagggg C/T ccccacatgagtatgaatgg4485ABCC89intron 3 + (2088-2089)agagaacccttcattaacca (CCA) gggcgtggctgaccagtgtc4486ABCC89intron 3 + (2088-2089)agagaacccttcattaacca     gggcgtggctgaccagtgtc4487ABCC810intron 3 + 2204taaagcacaagttatcaccc G/A tggatggatttgtccttttc4488ABCC811intron 3 + 2286ttatctccccttgaaaggac A/G ctccacagagccagaaattc4489ABCC812intron 3 + 2312cagagccagaaattctagaa C/G agggaaaagtggaggggagg4490ABCC813intron 3 + 2356ctgtgaactgcagggacaga A/G ggaaatgggtattgggagaa4491ABCC814intron 3 + 2359tgaactgcagggacagaagg A/C aatgggtattgggagaatgg4492ABCC815intron 3 + 2370gacagaaggaaatgggtatt G/A ggagaatggccagccctcca4493ABCC816intron 3 + 2382tgggtattgggagaatggcc A/G gccctccaaggggctgatgt4494ABCC817intron 3 + 4910ggggacagccttcagctgtg G/A aattcctccagtcctagaga4495ABCCB18intron 3 + 4969cattattccagtcctgaggc A/G tgagagcagaaggccgatgc4496ABCC819intron 3 + 5003ccgatgcttctgccctccat C/G ctaatgtcctcctgcaggga4497ABCC820intron 3 + 5019ccatcctaatgtcctcctgc A/C gggacccaaggtggatggca4498ABCC821intron 4 + 14ggtgagggtaagcaggccac C/T tgggccagggtggggtggga4499ABCC822intron 4 + 187agacactgcatctggcccac G/A tgtgctctaccccagggtcc4500ABCC823intron 4 + 204cacgtgtgctctaccccagg G/C tcccagagggagaggggggt4501ABCC824intron 4 + 254gttcgctgaggttggcggat G/A actttccgtagaaagggaag4502ABCC825intron 4 + 357tgtattcatatcgtcacyct G/C gtaaatgaatgagtaagtgt4503ABCC826intron 5 + 92ggcattaggtcaaaatcctg G/A tgggacaaaaggggaaactg4504ABCC827intron 6 + 4205tctgtagaaagtacatgggg G/A catgaagatcattggcttga4505ABCC828intron 6 + 5519gattcccagggaatgttaaa A/C aggaccgggtcttcctaaac4506ABCC829intron 6 + 5575tctgacccagtaccagccag G/C ggggcaagtttccatccccc4507ABCC830intron 6 + 6587gttgccatctgagatcttgc C/T ggaagtacacaagagaccct4508ABCC831intron 6 + 6747ttccactggccttttctgct C/T agtaattgctacattacagg4509ABCC832intron 9 + 191gaggaagctgcctcccggtg A/G ggacaggaagcgggcatggc4510ABCC833intron 10 + 1963cccaggagtccaacctccct T/G tgtccagctagaccatggtg4511ABCC834intron 10 + 2724cctgggacatgttttcttat A/G taaacagcatcaaaagatgt4512ABCC835intron 10 + 2938gcccgcccaygactcctcac G/C tgtccaagtcacctagggag4513ABCC836intron 10 + 3094tccgaggatgtgtttttttt T/Δ ccctccgttagtcagcagtg4514ABCC837intron 10 + 3368tcctgctcatatgcggcacc A/G tcagacttctgggcaggcaa4515ABCC838intron 10 + 8897ggtattgattaaaagcctca C/T gggcagagaaattcgccatc4516ABCC839intron 11 + 308tgtgtattgtagaagtgatg G/A gaaatccagaacagaaagct4517ABCC840intron 11 + 1171gccctctcatttcccttcca G/A tgctgagcgtttccagtgtg4518ABCC841exon 12 + 7gcctctgtccacagactttc G/A tgtgccacgt:cagcttcttc4519ABCC842intron 12 + 356accaagaatgaggccatccc G/T tccccacgtggctgccccat4520ABCC843intron 12 + 934tgggttcaaagatggaatgg G/T gcataactcagcaaaattat4521ABCC844intron 12 + 1370gggagggaggctggacaggg C/G atgaaggcagagcctggtgg4522ABCC845intron 15 + 412ggaggtgggacccaggatgg C/T gtttcttgggaccacaagga4523ABCC846intron 15 + 688actcccccggccccactcac A/G tctgccaccttccctccctg4524ABCC847intron 16 + 4464actcattccaagtattgatc G/A agaagagaggtaggtactgg4525ABCC848intron 16 + 4574ttgaagatcttaagttgttt T/C tggttcactcatttcgcaaa4526ABCC849intron 16 + 5011agctaaaagcaaaacagcct C/T tgacctggcaagcattccca4527ABCC850intron 16 + 7608tgtcctacttttcttttgac C/G cttataacttcctgacttcg4528ABCC851intron 16 + 7730ccagctcctagtgggctgga G/A ggaaggacatgcggttgggg4529ABCC852intron 16 + 8369ttgcaaactgagttagggce T/C ggagagcttactgtgtgctg4530ABCC853intron 16 + 9708tgcacttgccgcctacttat T/G ccagacccaatgattgggtc4531ABCC854intron 17 + 651tatagattaatgaggctctg A/G gtccctcaaaaccttccctc4532ABCC855intron 17 + 692cCCttacctctccaaaaaac A/G cttgagataccctagaggtg4533ABCC856intron 17 + 1541ctcaggatcttcctggagga C/T atggttcactcccatgagag4534ABCC857intron 18 + 580actaagcagatttctaccaa C/T tgcacctccccatccccttg4535ABCC858intron 18 + 658gaacaagcccctgagaatgc C/T ttccgcaccccctactcccg4536ABCC859intron 18 + 660acaagcccctgagaatgcct T/C ccgcaccccctactcccgcc4537ABCC860intron 19 + 93gcccttccatcgatcaccca T/C acccagccatctcactcccc4538ABCC861intron 19 + 123tctcactccccaggtgctta T/C ctgcactccagcctctccat4539ABCC862intron 19 + 219cataggggagagggcaggaa C/T ggagggaagggagagagccc4540ABCC863intron 19 + 845tagtatttaacctgcccaaa C/T gctgtgtgaagtgctgacct4541ABCC864intron 20 + 338tcccctccacaagcttagac A/G aacaggattctcctgtgact4542ABCC865exon 21 + 10tttggtgacagggcatcaac C/T tgtctggtggtcaacgccag4543ABCC866intron 21 + 192caaggatagcacaaatgacc C/Δ attgcagacttcagatggag4544ABCC867intron 23 + 17gaaggtgggtatatccaggg A/G tggccaagcagccacccctg4545ABCC868intron 23 + 67gttctgctagaacctgaact C/T ataaaggtcttcctgtcctt4546ABCC869intron 26 + 268gtgagcgtctgcacatccaa G/C taaagattgttttctcctcc4547ABCC870intron 26 + 308cgataagtgggtgtaatttg C/T ccatccccacccatgagttc4548ABCC871intron 26 + 348cagctccctgccctcccctc A/G ctctctctccctcagccagc4549ABCC872intron 26 + 807gacagctgctgagtcaggcc G/A agccggcagctgagaaaggc4550ABCC873intron 26 + 834cagctgagaaaggcggcagt G/C gtcagatgggcttgagaaac4551ABCC874intron 28 + (118-121)cctccaaaaaataaaaacaa AAAA/Δ cagaaatgaaggaaatagaa4552ABCC875intron 28 + 1348tggggtaagcggaagacggg G/A ttgaacgctttgagtttggt4553ABCC876intron 29 + 1253ctcttagggatcttgtctaa G/T taaagaagagcagagcaaag4554ABCC877intron 29 + 1589cagatcccagcttcctgtaa A/G cagcctcagatcaggccaaa4555ABCC878intron 29 + 2322gcgcctcacactcctataac G/A cgcacatgccctgatgcaca4556ABCC879intron 29 + 2348atgccctgatgcacacacat T/C ttcaacacgcacttactcta4557ABCC880intron 29 + 2418agacacgtcaccctcccaca C/T gtctccaccctgggggtgtg4558ABCC881intron 29 + 2494tcagtcccctcagacacatg C/A cctctctccacgcagagaca4559ABCC882intron 29 + 2735gcggccaaggagagtgatga C/T ggcagcccaggttgatcaga4560ABCC883intron 30 + 386gctcctggggctccagcctt C/T gcagcccttgtgtgtgtctg4561ABCC884intron 33 + 93ggcttcgcagtcacctcgtg G/T ccctccagggccgaggcctc4562ABCC885intron 33 + 358agggacctgggggcagacag C/T gaggccacccttgtattgag4563ABCC886intron 38 + 54cccagggacaggactggcct G/C ttgtggccgtcatcagtgca4564ABCC887intron 38 + 466aggacattctggccacatgc C/Δ tcatcctcctcctccaagcc4565ABCC888intron 38 + 529tggcccccaccgcgggtggt A/G ttcccaccatcctgacccgc4566ABCC91intron 3 + 38tgttgtttctccttaaagag C/A tatttgtttttccccccaaa4567ABCC92intron 3 + 305gctggccttctggcttgcag T/A agttgtattttaagaatcag4568ABCC93intron 3 + 320tgcagaagttgtattttaag A/G atcagagctcttgtgaggag4569ABCC94intron 3 + 631ttctgtggaaatcagaggct G/C tctaaaatattcctaatttt4570ABCC95intron 3 + 8644tggacgcactcaacattttc A/G agttattactccttcaactc4571ABCC96intron 4 + 757aggatatcatgaaacactga A/C tcttagtaaaaactatcttt4572ABCC97intron 4 + 1022tactgtggaatttttcttgc A/C acagagatatgtatttttca4573ABCC98intron 5 − 1217cagtggtagatgtgttttct A/G ttgccatcatctacaaatat4574ABCC99intron 6 + (100-106)tatgagttgttcaaataggc (T) 8-9 cagagaattgaatgctttct4575ABCC910intron 6 + 1347tcagtcgtattcctactaaa A/Δ caaaattttgtaagttatgt4576ABCC911intron 6 + 1618ctttttatttgctgcttacc G/A ttttactaaggttggatata4577ABCC912intron 6 + 1835cttttaataaatgcaaactg C/T acacctggtctataaaaaga4578ABCC913intron 7 + 407cctatagaatttttcttttc T/G tttttctcaaaaaaattaaa4579ABCC914intron 7 + 423tttcttttttCtcaaaaaaa C/T taaatgtttgttatttattt4580ABCC915intron 8 + 743ttctgtagatgaagcttaag A/T gctagatcttatttgaaaaa4581ABCC916intron 8 + 850tttttaacttattgtttgcc T/G tttcattttttaatagaaaa4582ABCC917intron 9 + 585cgaatttgctgcttttagag A/T aatctttgcaaataataaaa4583ABCC918intron 9 + 1394atttttcttcttgtaagtat G/C agtgatagagctgactgcag4584ABCC919intron 12 + 1167atttgtaagacttttaaaat G/A agataattgtgctggtgtct4585ABCC920intron 12 + 1195tgtgctggtgtctatatctt A/G ctgagaaaactagaatttat4586ABCC921intron 12 + 2123ataagtgctctcccagtgtt G/A attggacttagagcattttc4587ABCC922intron 12 + (2653-2656)caaaacagaataatgaaaag TAAC/Δ tattatctaaaataataaaa4588ABCC923intron 13 + (3043-3044)aagtcaaaatatattagtat4589ABCC923intron 13 + (3043-3044)aagtcaaaatatattagtat4590ABCC923intron 13 + (3043-3044)aagtcaaaatatattagtat4591ABCC924intron 14 + 85ttctgtgaaagtgtcccaaa T/A tgtgcctttaaattgttttt4592ABCC925intron 14 + 275agtgtcacatgtattttttc T/C ggtattcctatgtttatcaa4593ABCC926intron 14 + 453ctcatttcaaacttggctat T/C tggactctccccaggcattg4594ABCC927intron 14 + 3709atcccctagtgatgtacact G/A agcttgcctccatctttcct4595ABCC928intron 14 + 3813ctgatttatatattagctga C/T tttccaagttcagacatcta4596ABCC929intron 14 + 4000ttcttttacttcaatgtagc A/Δ ccaaatcagaaggtgacatt4597ABCC930intron 16 + 1466atcccactggatttaattac A/C ttgtgtagcttgtacaacca4598ABCC931intron 16 + 5357attttggaagagaaattata T/G aaccttccacaactgaattt4599ABCC932intron 17 + 1368aatcctggtgtttttttttt T/Δ ctttttcatttttcagtagg4600ABCC933intron 20 + 98aagtaactcaaggaaagatg G/A tttaacttgtgaaatcgtaa4601ABCC934intron 22 + 28ctcatagttcagaagagttc A/C gagcccaattcagaagagtt4602ABCC935intron 22 + 194tgaacctataaaattctaat G/Δ ccatctttggatgaggtgca4603ABCC936intron 22 + 1370ccagggacaaaagaagatga C/T gtaaacttaaggattgggac4604ABCC937intron 22 + 1487agcaagccaggaagaaagtc C/G attaagttgtatttagaaat4605ABCC938intron 23 + (455-462)atagccatgaaggataagaa AATTAGAA/Δ4606tgccatttgttatgtttcagABCC939intron 24 + (460-465)aactctttctcttcatctgc T/TTAAAA/TTTTAA4607gcaagccttgaaggagagtgABCC940intron 24 + 595gcatgcaaaataatgaagaa A/G acaatcttgtctgacattga4608ABCC941intron 28 − 926aaatatttcagaatttgggg G/A tgtagagcatttgccgtcat4609ABCC942intron 29 + 2692cttgtaagtctttttttttt T/Δ aaagtaatgaaaatttctaa4610ABCC943intron 29 + 5464agacaacactgcttttttgt G/A tgttcacaattcaacgacag4611ABCC944intron 29 − 1830sectggctgaaaggaaaaaa A/T tcatattgctgtaaatattt4612ABCC945intron 31 + 102tgcttttgctttccacttca G/A tatccagaeaactctctcat4613ABCC946intron 33 + 877aacatggaactatagtaaat A/G tagtttttttggggttcaga4614ABCC947intron 36 + 1281aatttacacttttttttttt T/Δ gcaggagaatattttgcaaa4615ABCC9483′flanking + 197aatggagctcatgcatgtgt T/G ttcaaatatatacatgcaaa4616ABCD11(5′flanking region −1772)agtcccagggctagggcaca G/A gcaccctcctgcctaactcg4617ABCD12(5′untranslated region p31 59)acaatccttccagccacctg C/T ctcaactgctgccccaggca4618ABCD13(intron 1 906)gggcacaatggcatccatcc C/T ccgaeggcctgtgtgtgctc4619ABCD14(intron 1 2924)gagacctggccccacccaat C/T gtaacctctggctctcggcc4620ABCD15(intron 1 3056)aagcctctctgtgtctgtca C/T cccccgcaggtggagctggc4621ABCD16(intron 2 2972)agaagtttcccttgctttcc G/A tcaagcttggctctgctcga4622ABCD17(intron 2 3258)gcgagacagcacctgcagcc G/A cttcgctccatggctgccat4623ABCD18(intron 2 4612)ggtccttcacaggacattcc C/T accacttcegccacacccca4824ABCD19(intron 5 2748)aatggcctgcgtgctggcct C/T gggcattgggagcctctcaa4625ABCD110(intron 6 212)atctgtgtggggtgtgtgca C/T gggcggcgetgtgagcgtgt4626ABCD111(intron 5 2835)ggcgtcagcggctgttgccc C/Δ tgcaggtggaggaaggcatg4627ABCD31(5 flanking region −2834)acatccctttcttgcctggc A/G gatttgaactctttgagtca4628ABCD32(5 flanking region −2118)tacagaatcacctttgtcaa G/A ccttaagcctttattgaaag4629ABCD33(5′untranslated region −40)gtagccgccgccgccgccgc C/T gccgcgtcccctcgccggct4630ABCD34(intron 1 −6763)atactttgccatttgagata T/C cagtttggagttgatagctg4631ABCD35(intron 2 731)ctttggacctatactagttt C/T cttaggcattgtgcttagaa4632ABCD36(intron 2 3551)accacagtggtctttttttt A/G tatttaaaaaaattattggg4633ABCD37(intron 2 5936)cagaactcacttccttattc A/G gtttttagataacattgttt4634ABCD38(intron 2 6083)tggttcttteattttatgat A/G tgtttgttatagctatctta4835ABCD39(intron 3 614)tctcttgtttctgaagtatt A/T tttcattttattttatgtga4636ABCD310(intron 3 651)gtgaaatgctagggtactgc C/T atacagctaccctaaatggt4637ABCD311(intron 4 395)aaagcatttcaaagaatcac G/A ttgagcatgtttattagaag4638ABCD312(exon 7 555)gacaacagaatagctaatcc A/G gaccagctgcttacacaaga4639ABCD313(intron 7 124)aaatatttaatgcttttata A/G gaaaattagagttgttgtaa4640ABCD314(intron 7 838)ggtcacagttgacctcgata T/C acagttttgagacaaaagaa4641A8CD315(intron 8 1150)aatcttgaatacttactagc A/C catatattgtgctagatagt4842ABCD316(intron 9 1493)tcatcttcttccataggctt A/G ggtgtggagaggagatagaa4643ABCD317(intron 13 1534)tctgttgagttggggttcct A/G tggaaacctcttccttcatc4644ABCD318(intron 16 4310)gaaaagtgaatgctgagtag G/T ttagccaggcttgatttaga4645ABCD319(intron 20 273)ttctaaaagttcagagaaac T/A ctgtagctcattattcctgg4646ABCD320(intron 20 1664)ctcaeaagaaaaaaaaaaaa A/C aaaaaacacatgatccataa4647ABCD321(intron 20 6693)cttaaggtttgtgttttact C/T tgagcaattagtatttccca4648ABCD322(intron 21 7171)atcataaacagagaaataat A/G tcttaaatgagctctgaaaa4649ABCD323(intron 22 1220)ctagaaatcaaaggcattta A/G aatatagccaagcctttatg4650ABCD324(intron 22 1358)agtagcaaaataatcatcac G/A ccagtgatcatgtgaaggag4651ABCD325(intron 4 4448-4461)aactgttttactttttaggg4652ABCD326(intron 5 268)gttttttggcattttttttt T/A aaccttcagtccaggttttc4653ABCD327(intron 5 891-902)aacaaatgcaaatatagtgt4654ABCD328(intron 7 1226-1227)gggaatggggggtgtatcta (T) tacaactttccatgtaattt4655ABCD328(intron 7 1226-1227)gggaatggggggtgtatcta     tacaactttccatgtaattt4656ABCD329(intron 8 1129)cagatttacttttttttttt T/Δ aatcttgaatacttcctagc4657ABCD330(intron 13 1595-1596)tgaaacataataaagcacac (TA) gttatcattaatactttatg4658ABCD330(intron 13 1595-1596)tgaaacataataaagcacac     gttatcattaatactttatg4659ABCD331(intron 16 7337-7351)caggttcgatctggggctaa4660ABCD332(intron 18 12)gttcctcaggtaagacctag C/Δ ttgagttatctttgatctaa4661ABCD333(intron 20 1652-1670)cacatgatccataatagagg4662ABCD334(intron 20 2262-2273)accttaaattagcaactatc4663ABCD335(3′untranslated regiontaaaataaagttgagcttag (T) 8-9 aaaaaaaaaacaaagcaaca46642072-2079)ABCD3363′untranslated regiongttgagcttagttttttttt (A) 10-1146652080-2091)caaagcaacaaattaactagABCD337(3′untranslated regionacttattttctgttcagatt (A) 16-1946663349-3368)ctcagatatcctatacaaccABCD41(intron 1 276)tggcattctttttttgaaaa G/A aagaacctcaggtgcacaaa4667ABCD42(intron 1 329)cttctcagttcttgacaccc T/C gtgggccaatgcaaggctcc4668ABCD43(intron 3 171)ttaagcacgttgatcttgct A/G ttggcccacgtgggactgat4669ABCD44(intron 3 449)cctacccctcattcagtagg G/A gggctaccacctgctcactc4670ABCD45(intron 5 273)gacaggggctacctgagagg G/T aacaggagtcagggctgagg4671ABCD46(intron 7 240)tagtcttagtggcctagcgt G/A gggcctgaaattgtcaaatg4672ABCD47(intron 7 267)gaaattgtcaaatgaatgaa T/C gcctcatcctcttgctggtg4673ABCD48(coding region 910tctatggagacctgagtccc G/A cagagcttagcaccctggtc4674(Ala 304 Thr))ABCD49(coding region 981atcagctgcttcacccagct C/A atcgacctgtccacgacgct4675(Leu 327 Leu) A8CD410(coding region 1102gcgagatcctgggcgagagc G/A agtggggcttggacacgtga4676(Glu 367 Lys))ABCD411(intron 13 191)tggattgggcccactactca T/C agcagctcctgaggcaggta4677ABCD412(intron 13 262)acgcgtatgtcaaacaccca A/G ggtcggattctggggcccct4678ABCD413(intron 17 848)cctctgctcctctggcccat C/G cttctccctgaggcagggct4679ABCD414(intron 17 946)gtgggaggagaagcagcggc G/A gcagagggcagggctttgat4680ABCD415(intron 18 41)ggcctgaggaggagaaagaa C/T ccaaaggctcagcctggcca4681ABCD416(3′untranslated region 2001)gcccaggtctaggtttctgt G/A ggggacactgaatctcccag4682ABCG11(5′flanking region −386)gcaataatcattggctagag G/A tattgtgatatgatgtcatt4683ABCG12(intron 1 199)caccaaatattggtgagctg C/T ctggatttgggagatgcagt4684ABCG13(intron 1 291)acttggggtccggtgtgagg A/C tcctgcactcggtttctgtg4685ABCG14(intron 1 318)actcggtttctgtgatggtg T/A gtgcaggggagtcacaagtt4686ABCG15(intron 1 468)ggtcccaacgggtttctaga T/C ccctccagagaagcctttgg4687ABCG16(intron 2 434)ctgggtacaggttttgttcc G/A gttggtctgctattgagtat4688ABCG17(intron 3 1839)ttaaaatgagttgtttttct C/G ctaaagcctttagggagttg4689ABCG18(intron 3 3076)tttgtcacttccttcgtctc C/T ggctctacttccctgggggt4690ABCG19(intron 3 3352)gttccttggaggaaacgtgg G/A gtacacagtggttccagtta4691ABCG110(intron 3 8030)acagtgaagcacaaggcagc C/T gaagacacagcaggcaggtc4692ABCG111(intron 3 8066)aggtcaggtctgtgtgcaca T/C tggcaggctgc a/g tgcagacc4693ABCG112(intron 3 8092)ggctgc a/g tgcagaccagcct C/T ggcccaggtggagaagcaga4694ABCG113(intron 3 8285)ctggacatgtgactcccctg C/T acccaccctcacaagcacca4695ABCG114(intron 3 8860)cagggtgatagggagtccaa T/C tggacacaggttcagtttgc4696ABCG115(intron 4 2319)gggggtgaacagagggcaga G/A gcctgggcatcttcactcag4697ABCG116(intron 4 2557)gaagggaagaagcagcagca A/G gaaagaagccccctggccct4698ABCG117(intron 5 139)tgacccagggcaccctagag T/A ggcgcccggctccgatcgct4699ABCG118(intron 5 177)gctgcccctgcccctccgcc A/C gggccacctggagcctcggg4700ABCG119(intron 6 13)cagttactgtaagtgctgtt T/C ccaggggtggtca g/a gaatct4701ABCG120(intron 6 27)gctgtt t/c ccaggggtggtca G/A gaatctccctttctggtttt4702ABCG121(intron 6 1191)gctaagcagagttaggcccc G/A gctagtccttgaatgagaga4703ABCG122(intron 6 1449)atgctggagcccctgagttc G/A gtgggcatacaaggggtggc4704ABCG123(intron 6 2282)ctcgcatcacgcagttttca C/T gatcctattaattgggtgag4705ABCG124(intron 6 3853)cctgggcttcagcaggggcc T/C cacacctgcaatgggtg c/t ct4706ABCG125(intron 6 3871)cc t/c cacacctgcaatgggtg C/T ctggggagagggtgcagatg4707ABCG126(intron 6 4175)tccaaagcccagatttggtg T/C ttttggggctcttttggaat4708ABCG127(intron 7 4)ctggtggaggaagaaaggta G/A ggagggcggctgctttgtgt4709ABCG128(intron 7 576)agctcaggaggtgtctggaa C/T gccacacagtgcaggagttt4710ABCG129(intron 7 1426)aattctccttctcaacttaa A/G gaaatattttatagaaaaat4711ABCG130(intron 7 2342)agagcctgcaatgggccgcc G/A agggacctgcccatgactca4712ABCG131(intron 7 2399)gaggggttgacagacaggat A/G tgtctg c/g tgtgttccagctg4713ABCG132(intron 7 2406)tgacagacaggat a/g tgtctg C/G tgtgttccagctgctggttt4714ABCG133(intron 7 2911)ccctctctgtgcccactgtt G/C tcccaacaccagcctgttct4715ABCG134(intron 7 4363)tataatagattcctagcaga A/G aacataattgtgagaggaac4716ABCG135(intron 7 4752)gctttcagagcccattcaca C/T aagggtctcattttattagg4717ABCG136(intron 7 5026)ccaggtctgtgggatttcag G/A ccaaaaaggagcgtagcaag4718ABCG137(intron 7 5532)gggttaaatattccgggcag C/T gccaagtcagattatctgta4719ABCG138(intron 7 5681)gctaaagtgcatggaaggca T/C catgaataaatcctttcagg4720ABCG139(intron 7 9243)gcctgagagcgctggcagta G/A gaagggtcgccagtgtggac4721ABCG140(intron 7 11371)gggctctcttggagcccttt T/G tctctcccagccctgcgtct4722ABCG141(intron 7 12420)gggatttcgaatctcaacac T/C ctgagctctgcgctttcccc4723ABCG142(intron 7 12985)ctattggcaggtcgtgaaca T/C tgcccttggatttgcaaata4724ABCG143(intron 7 20041)acatggccggcttcccttct T/C cctc g/a gaatggcctggaatt4725ABCG144(intron 7 20046)gccggcttcccttct t/c cctc G/A gaatggcctggaattcgatc4726ABCG145(intron 7 21058)acaagacttagaatttgacc G/A tgattttaaaactattctaa4727ABCG146(intron 7 26189)ttcttggatgtggccatgca C/T gggggcaagggtttgatgag4728ABCG147(intron 7 27453)atcatgtggtttgggggaaa G/C ctgggaccccacttggtaca4729ABCG148(intron 7 29810)attgtttctcctggttttgt T/C tgtgttgactttccctttaa4730ABCG149(intron 10 2116)aaacagggcttgagtcctcc G/A taagggacaggagaccttcc4731ABCG150(intron 13 1196)tgaaaagaaaatggatgagt G/A gaa a/c ccaaaagagagaaaat4732ABCG151(intron 13 1200)aagaaaatggatgagt g/a gaa A/C ccaaaagagagaaaatgtgg4733ABCG152(intron 13 2041)aagcagaggcttttccaccc G/A gagactcaagaagctgctcc4734ABCG153(intron 13 2490)gtggtgaagtagagctgagc A/T cacgggggagccctccatcc4735ABCG154(intron 13 2822)cagcaggctccgtgctgaag T/C cacagcaagccaggcccttg4736ABCG155(intron 13 2850)agccaggcccttggcctgcc G/A gagctggaagacccagaaca4737ABCG156(intron 13 2919)gcctcccaggagtagctaca C/T gggacccgaaggcagatggc4738ABCG157(intron 13 3506)ggcagcctgggctgccgaga T/C cctccctggagcgcccgccg4739ABCG158(intron 13 3538)cgcccgccgggaagccccag G/A ggggctggagctaca a/g gtgg4740ABCG159(intron 13 3554)ccag g/a ggggctggagctaca A/G gtggccttgcaggttttttg4741ABCG160(intron 13 3721)ccagctcatgggcaggggtg C/T ggagggaaaggcacccacag4742ABCG161(intron 13 3921)gaagaccagcagtcgatgcc A/G gctgggaagagggctctgcc4743ABCG162(intron 13 3979)acccaccagccttttccaga C/T agccttccagaagctgtttc4744ABCG163(intron 13 4291)gagccgctggagtagggtcc G/A cttgctatggctcccagggg4745ABCG164(intron 13 4968)tattgactggacaccttctc C/T gtatggggcactgggctagg4746ABCG165(intron 16 672)atcagtaacgggtcactaac G/A gatgctgctgagtggggcag4747ABCG166(intron 16 891)tggcccactgttgagggtgt G/A ggtgaccagaggggcctgga4748ABCG167(intron 18 1616)ctggaggagaagacaggata A/C agtctaagacgtg c/t tgtcac4749ABCG168(intron 18 1630)aggata a/c agtctaagacgtg C/T tgtcacagagttcagggtcc4750ABCG169(intron 18 1674)gcttccaaaggccgcatccg G/T gttgttctctgagc c/t gagga4751ABCG170(intron 18 1689)atccg g/t gctgttctctgagc C/T gaggacggctttgcgaacgc4752ABCG171(intron 19 446)tggctgacagtgaacacagc G/A gctgcttctccagaacttta4753ABCG172(intron 22 243)acccggagagccatggcagg A/C ccaagtgttctggacgttgc4754ABCG173(3′flanking region 1257)atggggcccacagccctgcc T/C cagaagcagctttggtctcg4755ABCG174(3′flanking region 1438)gggggaagagcttgggaacc A/G tgagggctgttaggctgcaa4756ABCG175(3′flanking region 1518)tgcagggtgaactggagtag G/C tgaggattctgcagttgacg4757ABCG176(intron 3 3754-3755)ctccaccctgcacctccctg (G) cctccttgatttccctcatc4758ABCG176(intron 3 3754-3755)ctccaccctgcacctccctg     cctccttgatttccctcatc4759ABCG177(intron 3 7848-7854)cagtttccagactttggggg (A) 6-7 tcccataagctgtcatactt4760ABCG178(intron 4 190-191)tgtcgagagctccccttgcc (C) tggttgatcctcagggttct4761ABCG178(intron 4 190-191)tgtcgagagctccccttgcc     tggttgatcctcagggttct4762ABCG179(intron 4 198-206)agctccccttgcctggttga TCCTCAGGG/Δ4763ttctacttagaatgcctcgaABCG180(5′untranslated regioncgcagctcaagcctcgtccc (CGC) 8-104764(−713) − (−741)ccccggggcatggcctgtctABCG181(intron 6 376-387)tcttgccttgagctcaagag (A) 10-124765tagccaggtttctgcgcatgABCG182(intron 7 19944-19945)ctgatgaggaggggaggggg4766(CACCAGGCAGCAGACTCTGATGAGGAGGGGAGGGGG)caccaggcagcagactctgaABCG182(intron 7 19944-19945)ctgatgaggaggggaggggg4767caccaggcagcagactctgaABCG183(intron 7 25136-25137)catgaacttgcctgaccatc (G) ccctgtgaggagctagggct4768ABCG183(intron 7 25136-25137)catgcacttgcctgaccata     ccctgtgaggagctagggct4769ABCG21(intron 1 152)tcatttgaaagtgggtatgc G/A gtttaaaactgacagttcaa4770ABCG22(intron 1 614)agctagtcataaataaatac G/A ccagagtagtaaggaagaga4771ABCG23(intron 1 10002)cctcatgaatggtatacatg T/A cccaacatatctctttcgat4772ABCG24(intron 1 10123)acagtggtccctttgggtgc C/A tatccccaaatccctgcata4773ABCG25(intron 1 10768)ataggaataattgagaacag C/A gtctgaagaactctgcagga4774ABCG26(intron 1 10791)ctgaagaactctgcaggaaa T/C g/a aeaetagttccctgctttt4775ABCG27(intron 1 10792)tgaagaactctgcaggaaa t/c C/A aaaatagttccctgctttta4776ABCG28(intron 1 14183)tcacttaaggctttgcaggg T/G gtctaggacacagaaagaga4777ABCG29(intron 1 14934)aacgtgtctttaaaatttcc A/G tcttgagtcagtgagctatt4778ABCG210(intron 1 14955)tcttgagtcagtgagctatt G/T aaattcaagcaataagttat4779ABCG211(intron 1 17251)ctgtttgggaacagcaactc A/C atcataggcagagagaaagt4780ABCG212(intron 1 17347)atttcaaacctgtttcacaa C/A ttgttaagctcatcttaagg4781ABCG213(intron 1 17626)gcaggtgcataacaacttcc T/G acataaagtctggagctata4782ABCG214(intron 1 18369)ctattgcttttctgtctgca G/T aaagataaaaactctccaga4783ABCG215(coding region 34atgtcgeagtttctatccca C/A tgtcacaaggaaacaccaat4784(Val 12 Met))ABCG216(intron 2 36)tgtaaaaagacagcttttta A/C tttacctacagtgaacctca4785ABCG217(intron 2 4230)caaccctaaattggagggcc C/T gggcgtggtgattgagaaag4786ABCG218(intron 24518)gttgacagacttttatagtg A/C gggacactgacctgcatgca4787ABCG219(intron 26278)atgtargtaccacgtcttca T/C attcttaaaggatgacccta4788ABCG220(intron 310)ggcaaatcttcgtgagtata A/G gagagtataagtaagcgttt4789ABCG221(coding region 421tgacggtgagagaaaactta C/A agttctcagcagctcttcgg4790(Gln 141 Lye))ABCG222(intron 6 3203)tcctattctgtrtraataaa A/G gcattgaatttaggtttgct4791ABCG223(intron 6 3287)gtcaggctgaactagagcaa A/G caatctaaaggcaagaatag4792ABCG224(intron 9 5974)tatactaataaatggtgtgt A/T taagtttttatctctaattg4793ABCG225(intron 10 1908)gacgcttatgtgcagcctat G/T ttgatgtctggaaaggctga4794ABCG228(intron 10 2094)ccctgagggctgaggtatct G/A gattatttccagacttgcta4795ABCG227(intron 11 20)tgtgagtaggtctttgttct A/G ggaacggggctgtccagcag4798ABCG228(intron 11 1447)tgttcttcaaggaaagcccc C/T gtcaaagaaggaaaagaagc4797ABCG229(intron 12 49)atgtctttagtcttgcctat G/T ggtgaagtcagttgcacctt4798ABCG230(intron 12 1586)tatgcagttacatggacaga C/T acaacattggagaccgaggg4799ABCG231(intron 13 40)gctctgataaggaartgttt C/T tttccttcatttcttcctgc4800ABCG232(intron 13 1823)tractcaagcaggcctgact C/T ttagtatttgctttttgtag4801ABCG233(intron 14 497)ccaargaaaacaaacaagaa T/C gaaagattgtcactgtaaat4802ABCG234(intron 14 815)taactctttggaaactrctt A/G aaatttaaaactgtttacct4803ABCG235(intron 15 110)ccaggggcactgaatttttc C/T gagcctacgttttctcatcc4804ABCG236(intron 15 566)gccgcaragtcatgtgttgt T/A gtttttaaattaacttggaa4805ABCG237(intron 15 639)aacaagaaacacttgaataa G/A ttgagaaaaaaccccgtttt4806ABCG238(intron 15 1197)tgaggagctgggattacagg C/T gcccaccaccacacctggct4807ABCG239(5′flanking regiongttgggatggctacactcac TCAC/Δ aaagcctgatggcccgtttc4808(−998) − (−995)ABCG240(intron 13 405)ctgctagtttattttttttt T/Δ aacatttttaatttatgttt4809ABCG241(intron 13 692-702)tcaatatgtttctgcttatc (T) 9-11 aatggttacttaatcctaat4810ABCG242(intron 15 645-650)aaacacttgaataa G/A ttgag (A) 7-84811ccccgttttcacataatgttABCG41(intron 1 84)ggcctgggtgtcccatgttc G/A gaaagtcctgcaccagtggg4812ABCG42(intron 2 77)gaacacagaaggtattctga A/G aggocattgacccccatcct4813ABCG43(coding region 679tggtgtccctcatgaagtcc C/T tggcacaggggggccgtacc4814(Leo 227Leu))ABCG44(intron 7 95)ggcctcctaggggtagagat C/T tcaccgtcgcctgccttccc4915ABCG45(intron 7 158)cttgccctcgggaagtgagt G/A tgaatctaaactgagctctc4816ABCG46(intron 8 106)ccccagaggcatrgcaacca A/G tgggtgctaggaagaaccta4817ABCG47(intron 11 1120)acgagataagtga t/c ggtcat A/T tggccagggaggaaggggac4818ABCG48(intron 11 1173)gggggacagcttgaacaaga A/G tgtggaggcaggatggacac4819ABCG49(3′untranslated region 2758)gagtgacaggcacatacatg A/C gaacaggccatctcagccct4820ABCG51(intron 3 40)ccctggcccccccgcccgcc C/A cgggggcttaggctacactg4821ABCG52(intron 4 841)gcttggaggcatcttgaatg C/T gcctcatccaaactggactg4822ABCG53(intron 4 1145)gagcaaatccagcccacagc G/A tgtaaaat c/a ctgataagtaa4923ABCG54(intron 4 1154)cagcccacagc g/a tgtaaaat C/A ctgataagtaattcagtggg4824ABCG55(intron 4 1690)acagagatgagaaggaggct T/C gggaatctaccctggctggt4825ABCG56(intron 4 1806)tcttttgttccagaatatat T/C tatatctagtttatttatgc4826ABCG57(intron 4 1878)atttcagatatgtccattct C/T rgggtgggtcaaagctacat4827ABCG58(intron 4 2092)gggtgtctggaaacaaaact C/T attaccatatgagtatcttc4828ABCG59(intron 4 2108)tccccctggggtttctgcag A/T tagaggtaatcagtacaggg4829ABCG510(intron 4 2230)agcttcttgattagaaattc G/A gtaaagaattttttttagtc4830ABCG511(intron 4 2318)ggagttacaggctttaagta G/C agcgaagagaattggaagaa4831ABCG512(intron 4 2367)ttaaatgtggctgggggtta C/T aaattgggtccccattaaag4832ABCG513(intron 4 2464)gattatatgtctttgatgtg A/G actcacactgagattytacc4833ABCG514(intron 4 2586)aaagcatttatgataataaa G/A ttrcaaaacccaaacactta4834ABCG515(intron 6 1318)cagagacatrcaaagtgcat C/T gctacccttgtgatcacaca4835ABCG516(intron 9 164)caactarrgagtraccaaca T/C gttaatatgaatgagctcac4836ABCG517(intron 9 365)gtaccgttagcttctctttg A/G agctgattttaggacagcca4837ABCG518(intron 10 64)tcatggagctagtgggactc G/A tgcagggagagctccagggt4838ABCG519(intron 10 2406)tcaacaagcctgcttactgc G/A gttagttgtgaccattgtct4839ABCG520(intron 10 2442)tgtctaagtaatttaatgtt T/G tcctatgagagctgaaggag4840ABCG521(intron 11 4150)aaggccctgaaatggctgtt G/T ctggctattgttccgagctc4841ABCG522(intron 11 4623)caaacagaaagaattttata C/T cttttgattgacagaaaata4842ABCG523(intron 11 4737)attttcacaatgaatgttgg T/G tcggtctctccttccttrtt4843ABCG524(intron 11 4791)ggttagttctaactttctac G/A ttggtaccttcaactttctg4844ABCG525(3′untranslated region 2578)tgaggattaaaataaaaaac C/T gtaggaatgggctcaacagt4845ABCG526(3′flanking region 1560)catagcactcagcaagaaac G/C tgtgctaaagactgaggttc4846ABCG527(intron 4 1078-1080)gggcacagctccctgggagc AGG/Δ agaactcccgatagcagagt4847ABCG528(intron 10 2321-2327)agcgggttgggtgagccctt TAACATT/Δ4848aggtaggtgtggtgttggctABCG529(intron 11 422-433)ggaattaagactagtcagac (A) 10-124849gcctgcaggataaaagactgABCG530(intron 11 3988-4004)ctttttttgtagtctggtcc (T) 15-174890cttttcctgttcttactctgABCG531(3′untranslated regiontaccctaaaacttaaagtat (A) 11-1348912719-2731)cctaccgaaaaaaaaaaaaaABCG81(5 untranslated region −19)aagagagctgcagcccaggg G/T cacagacctgtgggccccat4852ABCG82(intron 1 898)cctttgactgaattcgggat A/G tggcaggatttgaagcagga4853ABCG83(intron 1 1548)cctcacaacctgaaaggcca G/T tgtaaattgagaaattcta4854ABCG84(intron 1 1611)tggtacgggggagccacttc C/T agcccgagccacaacctgtc4855ABCG85(intron 1 3245)tgggacaatgaagcaatgtg T/C acagtgacagcggagagggc4858ABCG88(intron 1 3430)gggttgaggtgggaatggaa A/C tctggagttctactcactgg4857ABCG87(intron 1 3509)tacacaaatcagcttaaaga T/A ctctcatgtacacaccacca4858ABCG88(intron 1 3980)gaaaataaaccctggtcaga C/T gcttgaggtcagcctccctc4859ABCG89(intron 1 4123)aagggtgttctgggctcccc G/A taagtgtttgrrgggtgcat4880ABCG810(intron 1 5354)cagcttctaaaggagcccct A/C atctctcctgtct t/c ccacag4861ABCG811(intron 1 5368)gcccct a/c atctctcctgtct T/C ccacagggcctccaggatag4882ABCG812(coding region 161ggaggtcagagacctcaact G/A ccaggtagaggcacgcctgg4863(Cys 54 Tyr))ABCG813(intron 2 86)gaaataaaagggtgggccca C/A cttgcaggccctctgccc c/g c4864ABCG814(intron 2 105)a c/a cttgcaggccdtctgccc C/G caaggacagagtccagtcca4865ABCG815(intron 4 43)gacccccaggtccaagaagc C/T acagtgtccatgccccgctc4866ABCG816(intron 6 1035)caggaggacaggccgcccct C/T gccctctgtactcacattct4887ABCG817(intron 8 1085)cacagaaaggrcacctccct C/A cctgtgctcaggtggcagcc4868ABCG818(intron 6 1184)gcacctgccgacctggccat C/T ggggaataatttaaagtaac4889ABCG819(coding region 1199tggggcggtgcagcagttta C/A gacgctgatccggtaattat4870(Thr 400 Lye))ABCG820(intron 8 137)gaaaaaaacagcatccagca G/A ggcgttggtggcttatgcct4871ADCG821(intron 9 412)ttctcttttcctttccctta T/C tttttaggttactcagagag4872ABCG822(intron 10 343)aggaagcagaggttcagaga G/A gctacgtggctcrccaaggc4873ABCG823(intron 10 614)cttttaaacgtttataataa T/C ggcagcgaaggtgctggctt4874ABCG824(coding region 1695gcctccttcttcagcaatgc C/T ctctacaactccttctacct4875(Ala 565 Ala))ABCG825(intron 11 82)tgctttcatctggagatgga C/T acttatcacttagatccaac4876ABCG826(intron 1 2882-2893)tctcttagaaatggataaga (T) 11-134877gacagagtctcacgctgtggABCG827(intron 1 3654)tttatctttcccatttttt T/Δ ctgtataatttgggtcttt4878ABCG828(intron 1 5045)tcagagcacagaggttttt T/Δ atagaactctctccggtcca4879ABCG829(intron 9 292-302)tggctttactgtgcctattt (A) 10-124880tgagagacctgggcaatatgABCG830(intron 9 417-418)tttcctttccctta t/c ttttt (T) aggttactcagagagggcaa4881ABCG830(intron 9 417-418)tttcctttccctta t/c ttttt4882aggttactcagagagggcaaABCG831(intron 10 28-34)ggcagggttgagagcaagtg (C) 7-9 acccaccagggtgggggtaa4883ABCG832(3′untranslated region 2118)tcctggggacagtgaggaca A/Δ tgaccctacagatgctcagc4884ABCE11(5′flanking region −158)aactcagattctcggcacct C/T cagcagctggcttcgccaac4885ABCE12(intron 9 237)ctgaaattatatgcaaattc C/T gtagctttataggaagcaga4886ABCE13(intron 9 4203)ttgtgtaggaagctgataca T/G taatttgacatatgagatgt4887ABCE14(intron 10 1811)ccaagaaacttcagctttct C/T ttcacttaaatataggaaac4888ABCE15(intron 17 2301)atatccagaaacagatggta T/C gtgcagaacaggttgtacag4889ABCE16(3′untranslated region 1810)tggatgattagactgactct G/C agaatattgataagccatt4890ABCE17(intron 1 5349-5363)tttgtctgggttggttgggg (T) 13-164891gagactgggtctgactctcaABCE18(intron 1 5845-5854)tacatttgtcaaaatttata (T) 9-10 gcagataatcatttcatctc4892ABCE19(intron 5 836-851)taaattcacatgattctgta (T) 14-164893aggatcctcctgactggcagABCE110(intron 8 1153-1169)tctttcaaacttatatttgc (T) 13-144894catagtttcatgtttgatgaABCE111(intron 9 1023-1024)ttgctctgtttcaaatctct (T) attcatgggccagcagctcg4895ABCE111(intron 9 1023-1024)ttgctctgtttcaaatctct     attcatgggccagcagctcg4896ABCE112(intron 9 2339-2346)agtgtagatggacctcgggg (A) 8-9 ctagttaaggaaaagtaata4897ABCE113(intron 9 3213-3221)ttccaattttccattgttac (T) 8-9 cttgccagattactcctgaa4898ABCE114(intron 10 284-299)tcctctgcattttggcttct GCAGTATTATCTGTAGT/Δ4899atttgtcattttcaaattaaABCE115(intron 10 840-853)ttttttggttctttctttc (T) 13-144900aatcttggaggaatctttttABCE116(intron 16 1163-1172)gattagaaatccaggttaaa (T) 9-10 gttttgcacaaaaatattac4901ABCE117(intron 16 1372-1382)taaaatttaatcaaaattga (T) 10-114902ctcttagtcctcaaacccttABCF11(5′untranslated region −60)gccagccccatcggggttcc C/T cgccgccggaagcggaaata4903ABCF12(intron 1 101)gcacgagactgaccgggccc C/G tgcgggagttactgcgcatg4904ABCF13(intron 20 69)tgactttaaccgaccacctc C/T ctctcttctcgggcagaaaa4905ABCF14(intron 23 35)agtgtgccctcatccctgct C/A catggggaccaagctgtagt4906ABCF15(intron 7 342-354)acagagcgagactccgtctct (A) 10-144907gaaaaaaaaaaaaaacatttABCF16(intron 7 356-369)cgtctaaaaaaaaaaaaaag (A) 13-154908catttcatcagacctgtcttABCF17(3′untranslated region 2425)tcagccggccccgagagtga A/Δ gctttccttcccagaagtct4909ABCF18(3′flanking regionattaatttgatcaattgtct (T) aatatgtcgtactctagatt49101067-1068)ABCF18(3′flanking regionattaatttgatcaattgtct     aatatgtcgtactctagatt49111067-1068)OAT11(5′untranslated region −127)gcagctcggactcagctccc G/A gagcaacccagctgcggagg4912OAT12(5′untranslated region −20)gaaggcctcagcccccagcc A/G ctgggctgggcctggcccaa4913OAT13(intron 3 150)caatagaacaaccttttctc G/A ggctcatgccgccctgaccc4914OAT14(intron 4 211)tctctggcttcccccactc A/C gttctccagcctgcctgctc4915OAT15(intron 5 33)gagacttcccatgataacct C/T ccagggcttcacccccaaac4916OAT16(intron 8 168)gaaccagatgcccccagcct C/T gactcagtcccagtctccac4917OAT17(intron 1 58-71)gtacatggagaaattaactg4918OAT18(intron 3 1306-1319)tcaagagtgtggagggggca4919OAT21(intron 4 842)ttgacctccaaaagtgtttg G/A attacaggcatgggccattg4920OAT22(intron 5 183)ccacatccatcattcgagac A/C a/c actcgtctcagctgccatg4921OAT23(intron 5 184)cacatccatcattcgagac a/c A/C actcgtctcagctgccatga4922OAT24(coding region 1269actagactgctagtgtcctc C/T ggtgagcccagtcccatagg4923(Ser 423 Ser))OAT25(3′untranslated region 1792)ataaatgtgtacatgagtgt A/G tgaacacaaatacataaggt4924OAT26(3′flanking region 1386)tgtagcagcccacatcgcca G/A tgttcacacctgagagagag4925OAT31(5′flanking region −463)ttcctgagaggcaaatcccc T/C tcccctactcgggaggtgcc4926OAT32(5′untranslated region −16)cctgcccacegctctggctc G/A tcttgccccagtgccatgac4927OAT33(coding region 153 (Pro 51 Pro))cctgtccaccactgtcgccc G/A ccccacaatgcctccacagg4928OAT34(intron 2 177)gccccaagacccttggcttc T/C tcccactcagagtccaagca4929OAT35(intron 2 6201)gctcatcctctctggtcctt T/G tgccccagcacaggttcctc4930OAT36(intron 3 79)tctgctccacccgtgccccc G/C caaagaggcacagagctggg4931OAT37(coding region 723tggcgttggctgcagttaac T/A gtgtccattcccttcttcgt4932(Thr 241 Thr))OAT38(intron 5 524)tcgaagtacaaaggaaagtt T/C aaagagaagcctgagcctgg4933OAT39(intron 7 386)gaccaatgggtttcagactc G/A aagacaaacattctgtttat4934OAT310(intron 9 81)attgtcctgtcctctaccca G/A gggagccctcctttatgaac4935OAT311(5′flanking regiontacatttggtccccaggggg (G) aagcggctgctcaggagaga4936(−661) − (−660)OAT311(5′flanking regiontacatttggtccccaggggg     aagcggctgctcaggagaga4937(−661) − (−660)OAT312(intron 8 211-212)tctgacttggactgggccaa AA/Δ gtctggtggtatctggatag4938OATP11(5′flanking region −916)acagagtcgatgttcaataa G/A tatttgttgtatctgtgaga4939OATP12(5′flanking region −843)tagtgccgcgactatgcctt G/A atgtgtgtgtgtttgggctt4940OATP13(5 flanking region −526)aaatgtgtgcctgtatgtta T/C acatctgtacatatatttcc4941OATP14(5′flanking region −172)acaaacacaactcaaagtat G/A tgtgttattaaaagtagcta4942OATP15(intron 1 206)tcgattcaggcaagttagtc C/G taaatggctttgagagactt4943OATP16(intron 1 454)caacataacaataatttcct G/A taagaaaaatggccattttg4944OATP17(intron 1 999)gtttagcaaggttagatatt A/G atgtggatgttaagacaaaa4945OATP18(intron 1 1223)ttgctagaagctagtaggac C/T agctttataaatacagagat4946OATP19(intron 1 1326)aactagttaggcaacccatg T/C gttttaggg g/a aaaagcaatg4947OATP110(intron 1 1336)gcaacccatg t/c gttttaggg G/A aaaagcaatgaggtcatgat4948OATP111(intron 1 1498)atagtttgctcttaagaata C/T actctgagaaggtttatagt4949OATP112(intron 1 5041)ttatgctcccgaggagttag C/T tctctaaatgcataaggaga4950OATP113(intron 1 9532)aaagactgggagcacttccc A/G atgacaaatactagactaga4951OATP114(intron 2 961)aaaaagttatatagaaatat A/G agtgtcactcctttctagtt4952OATP115(intron 2 1110)gtctactagtgttcaactcc T/C ttagatcttagcctgtatca4953OATP116(intron 2 1419)aaagcctaagaaggatgcag T/C gcaatagcctatgtgagaag4954OATP117(intron 2 3339)tatggtttgcaaaaaactta T/C tcgtatatttgtttttttca4955OATP118(intron 3 66)caggaaatgaagt.tgcactt T/C cctctctaggagcaatgctt4956OATP119(intron 3 205)tcagttttgtcaatttacac A/G atggggatttgggacctttt4957OATP120(intron 3 6377)aatgaatagactttgagtta C/T tggatttttagtggataaat4958OATP121(intron 3 7238)tgaatgtcacattttttaaa G/A tttgtgttccttatctcata4959OATP122(intron 4 1016)ttttattctggattcatgtt T/C gtggaaattgcagtagtcca4960OATP123(intron 5 110)tccacaatgatgagtagagt A/G tcttggcacagttggccttc4961OATP124(intron 6 496)agtgtctgaattataagcca A/G ttttatagttggttgggacc4962OATP125(intron 7 1934)aaagtgaaaggaaattaaaa G/C tgagaacttgagcctgaatg4963OATP126(intron 7 2140)tagaatgtaccaaatgaatc A/G gcatctctgaggatgggacc4964OATP127(intron 7 2365)tgaaatcttctttatcaact C/T gattttcctccagactttac4965OATP128(intron 8 88)tcaaactcctaagttgaagt G/C ttttaggatattttttgact4966OATP129(intron 9 534)tcatattttgtattttaaag G/A ttatctgggttttactgaaa4967OATP130(intron 9 1286)tattcttctgagataaatca T/C tgaaggagtggctatgtggt4968OATP131(intron 11 215)ttcactcctattcctcgcta C/T ttttcttccttatttcttag4969OATP132(intron 11 663)ttcttcttcttttggagctc T/A aaagtagagttcagttaatc4970OATP133(intron 11 999)atcatcactgcatgagagtt A/G gaattatctaactttgtgat4971OATP134(intron 11 16727)tttcttttatttacaaactt A/G tttacttttcaggtgtatga4972OATP135(intron 12 48)ctatcagaacaatattatta T/G tattattttttattacactt4973OATP136(intron 12 686)tatgttttgataaactttgc C/A gtacaaataaagaaaattga4974OATP137(intron 12 708)tacaaataaagaaaattgaa A/G tatttccaaataaatcaagt4975OATP138(intron 13 418)tctctggtctccaaaatcat A/G tattttctccctcttta c/a at4976OATP139(intron 13 436)at a/g tattttctccctcttta C/A attttgctgaaacaatcttc4977OATP140(3′untranslated region 2130)gtctttaagaacctaaaaaa C/A ctcttaactcaaaataataa4978OATP141(3′flanking region 57)agtgactaaagtttttctta C/A aaacaagtgtctgaatcaaa4979OATP142(3′flanking region 572)aatacactatggttatttat G/A tgtactataaatggagtgag4980OATP143(3′flanking region 788)atttcctaaatgatcagatg C/T atcatatgaaaaaagaaagc4981OATP144(3′flanking region 1356)aggtgactgacataaatggg G/A gcagaggacataatgaggtt4982OATP145(5′untranslated regionattttctaatctgtattaaa (A) gcgttccaggtatttttgta4983(−189 − (−188)OATP145(5′untranslated regionattttctaatctgtattaaa     gcgttccaggtatttttgta4984(−189 − (−188)OATP146(intron 4 725-726tgattttaatagcggggaa AA/Δ caggcaagtacgctatagtt4985OATP147(intron 4 1082-1083)attgagtcaggaaaccaaaa CA/Δ gtttcaaaaattgaaaaat4986OATP148(intron 4 2301)aatgtcatgtctttttttt T/Δ aatgcagagtgtacaaagga4987OATP149(intron 9 241-46)attgtatgtgcatgtgggtg TGTGTG/Δ4988catgattgtctttgtgatatOATP21(5′flanking region −2574)ggataaggcaacccctatgt A/g tcactgctgcaggagaggga4989OATP22(5′flanking regoin −1723)tctttcagacttcaaaggcc A/G tgatatttcatcagagctgt4990OATP23(5′flanking region −1180)tgcttatttaacaggcataa T/G ctttggtctcctgagccaga4991OATP24(5′flanking region −811)tatgtgcatatgtgtataca G/A gtaaaagtgtgtatatatgt4992OATP25(intron 1 7188)aatcatttgaaatttaagaa A/G aaaatatgttcagagaaaaa4993OATP26(intron 1 7331)gtgaaatgaggaacaaagtg T/C ccaccttttttcctgaata4994OATP27(intron 1 7391)agagagatgtgaaatagtat T/G tttctggggaagtaggggaa4995OATP28(intron 1 7886)ttgttagtagaaagaaatc G/A aagcctaaaactaaaggaag4996OATP29(intron 1 7958)ttgctattatataatttttt T/A a/t aaaaaagatttcctaatat4997OATP210(intron 1 7959)tgctattatataatttttt t/a A/T aaaaaagatttcctaatat4998OATP211(intron 1 8036)ggaaaaatggggtgaaatt A/T atcaaagggcagcttattac4999OATP212(intron 1 9164)acattatattctatataaaa G/T agtcagttgaagtaaaaagt5000OATP213(intron 2 193)tgattaagtatttctttggc G/A aaattttgatgcttaatag5001OATP214ttgagtaacatttaggccaa G/A tggcagtcataaggaaaaag5002OATP215(intron 2 14865)agaggaattaatcataagag G/T tttatttggctaaagtgaca5003OATP216(intron 2 14931)gttagttaataacagaaaaa A/T tatcagaaattttaaaaaat5004OATP217(intron 2 15417)ttctaaaataagtaagctaa A/T tattctatattatactacta5005OATP218(intron 2 20823)ttgtataagagatacaaaac A/C aattcctactaggggaaata5006OATP219(intron 2 20852)ctaggggaaataaagcttca G/C taaggaggtggcattaagct5007OATP220(intron 2 21360)ttcaaaagctgtatttctca T/C tagtgctttttgtgaataaa5008OATP221(intron 2 21467)tatatacacaatacctgtcc A/G gaagatgtggtataagccaa5009OATP222(intron 2 21621)tatcaatacttatgaagaga A/G ctaactattctaactaggga5010OATP223(intron 2 22760)ttccccacctcctgttggtt C/G tcctcttaaacttctccttg5011OATP224(intron 2 23199)cctatctgcacataacatta C/T aaacttatggcaattata a/g a5012OATP225(intron 2 23218)a c/t aaacttatggcaattata A/G aactcaatacatattatact5013OATP226(intron 2 23330)gcccttgttcctgttcctct G/A tacctgcctcaactacatag5014OATP227(intron 2 23673)ctggagacggtagctcaaac T/C gaggatgaaaatagacattt5015OATP228(intron 3 89)ggttatcaactggggtaaat T/G tatctctcacaggcaatttg5016OATP229(intron 3 224)tgctaaatattctataatgc A/G caaagaatgatgtaactgaa5017OATP230(intron 4 97)ccctttaaataggcagttac C/A ttttgagaagatacccacta50108OATP231(intron 4 568)ttcatgatccaaattgtggc A/G acgtatttccaggcaacaag5019OATP232(intron 4 599)aggcaacaagatagaagaag A/G aaagaataagaagcaacaaa5020OATP233(intron 4 753)aaaatagacattattccaag T/A taccaagttcccggttaaaa5021OATP234(intron 4 781)ttcccggttaaaaatcccaa G/C tataattactgtggaaggaa5022OATP235(intron 4 1196)aaggaccacaatctagatca G/T cattgctctaatatgccat5023OATP236(intron 4 1229)tatgccataatatgtgacac T/C tttgcacctggtatttctac5024OATP237(intron 4 1623)catctagttgaaatggatta G/C attttatttttactacattt5025OATP238(coding region 388attctaaagaaactaatatc A/G attcatcagaaaattcaaca5026(Asn 130 Asp))OATP239(coding region 452taatcaaattttatcactca A/G tagagcatcacctgagatag5027(Asn 151 Ser))OATP240(intron 5 165)ttaatatacacagttcgccc A/T ttaacaacacaggtttaaac5028OATP241(intron 5 189)acaacacaggtttaaactac G/A c g/a ttttcacttctatgcaaa5029OATP242(intron 5 191)aacacaggtttaaactac g/a c G/A ttttcacttctatgcaaatt5030OATP243(intron 5 507)atataactttgctttcattg C/T aaaaggcaaact a/g ttatatc5031OATP244(intron 5 520)ttcattg c/t aaaaggcaaact A/G ttatatcatttaaagacttt5032OATP245(intron 5 856)agtcatgataaacctaatag A/G ataaaacaacaaaaaagaaa5033OATP246(intron 5 1157)acagataattttacttgtt T/C gtgcttttctgtatgatatg5034OATP247(intron 5 1226)ccttgattgtaataatctcc A/C c a/c tgccaagagtggggccag5035OATP248(intron 5 1228)ttgattgtaataatctcc a/c c A/C tgccaagagtggggccaggt5036OATP249(intron 5 1304)actgttctcgtggtaatgaa G/T aagtctcacaagatctgatg5037OATP250(intron 5 1348)ttataaatgagagttcccct G/A caaaagctctcttgcctgcc5038OATP251(intron 5 1407)ttgctcttccttcatcttcc G/A ccatgattgtgaggcccccc5039OATP252(coding region 521gtcatacatgtggatatatg T/C gttcatgggtaatatgcttc5040(Val 174 Ala))OATP253(coding region 571gggagactcccatagtacca T/C tggggctttcttacattgat5041(Leu 191 Leu))OATP254(coding region 597ctttcttacattgatgattt C/T gctaaagaaggacattcttc5042(Phe 199 Phe))OATP255(intron 7 33)agaacaaggtaccatgataa C/T gtcttctaagacacatgc5043OATP256(intron 7 33)agaacaaggtaccatgataa C/T gtctccctcccaaactgact5044OATP257(intron 7 1260)gtaatctcacatttctctgc A/G tttacacttggtaaaacttt5045OATP258(intron 7 2273)ttctcacgtcctatctagcg C/T gattatgacccttagttact5046OATP259(intron 8 207)gtggaagagaattaggtttg T/C actttttagcagggagaaac5047OATP260(intron 8 546)tcgggagaagtttctcccta T/C gtaattagagtaatattt a/c t5048OATP261(intron 8 565)a t/c gtaattagagtaatattt A/c ttttggtaattatctatcta5049OATP262(intron 8 668)taagtaatgtaaattaggat G/T catcagcatttgacagtgcc5050OATP263(intron 8 739)tggagaaccattgagagtca A/G taaacaaagagaatgacttg5051OATP264(intron 9 112)attttagtaatacaggataa G/C tataattttcttgtattctt5052OATP265(intron 9 266)ttagaggtagtatctgtata A/G ttggatcttataatttagtg5053OATP266(intron 9 305)tgctaagatctgagacaaac C/G cttttgtaattataatcatt5054OATP267(intron 11 10224)tacacttgttccataaaaaa T/C tcctctatattattcctagt5055OATP268(intron 11 10359)attaatagattcaacgtgag G/C ticccttaaactttagccta5056OATP269(intron 11 10916)cttatatagaaagaaatcca C/G aaaactattttaccttttat5057OATP270(intron 11 10997)aatatattagtttgaacaag T/C gagacttcactaaatataat5058OATP271(intron 11 11018)gagacttcactaaatataat G/A caatgtatttgcagcactgt5059OATP272(intron 12 442)aacattccaaaacttttaat C/T ga c/t t c/a5060acagcatgacttttaOATP273(intron 12 445)attccaaaacttttaat c/t ga C/T t c/a5061acagcatgacttttataaOATP274(intron 12 447)tccaaaacttttaat c/t ga c/t t C/A5062acagcatgacttttataataOATP275(intron 12 907)aatgaaaagaagctggcaga T/C tgaaacatactgaatgagag5063OATP276(intron 13 65)tatatatatatatatatata C/T acacacacatacatatatta5064OATP277(intron 13 870)aattctgagtatcctatttc G/A atgtatccaatctgtggcac5065OATP278(intron 13 1935)taaaaaaaaaaaaagtctgc T/C tttacagcaattgagccaag5066OATP279(intron 13 2261)aacgaatcctccaaattttt G/C aacttttatttaatcaaaat5067OATP280(intron 14 248)tcaaggataataaccaactt G/A tcaaaaatcagagataatag5068OATP281(intron 14 2463)atttgtttactaatatggaa C/G cttcttcaagacatattttt5069OATP282(intron 14 2857)tcatcatgtatttccaggac A/T cctggcaagatgctcctcag5070OATP283(intron 14 11458)atctccagaggtcctgctgt C/T tccccaaagtccactgaccc5071OATP284(3′untranslated region 2243)ataataaaacaaactgtagg T/C agaaaaaatgagagtactca5072OATP285(3′untranslated region 2404)tcttaataaaacaaatgagt A/G tcatacaggtagaggttaaa5073OATP286(3′untranslated region 2515)cagagtttgaactataatac T/G aaggcctgaagtctagcttg5074OATP287(3′untranslated region 2539)gcctgaagtctagcttggat A/G tatgctacaataatatctgt5075OATP288(intron 1 457-458)taattggcaaacataaaaaa (A) caggtgtctcaaagtcacat5076OATP288(intron 1 457-458)taattggcaaacataaaaaa     caggtgtctcaaagtcacat5077OATP289(intron 1 753-7538)gatcagcattacaaccaaga (G) atggagaatgacattcagga5078OATP289(intron 1 753-7538)gatcagcattacaaccaaga     atggagaatgacattcagga5079OATP290(intron 1 10032-10035)tgtgtgattctatattactt ACTT/Δ gtttcaaatttctctccaca5080OATP291(intron 1 10058-10061)ttcaaatttctctccacaaa TTTA/Δ tttttctattaaattgtaat5081OATP292(intron 2 413-423)caaaaaacaggatttaaaaa5082OATP293(intron 3 1595-1603)ttgccaagtaattcaagtgc (T) 8-10 gtatttaaaacaacttttca5083OATP294(intron 4 10-23)cctctgtgccactatcagta5084OATP295(intron 5 1567-1572)gtgaatataaattacttgta CTTGTA/Δ5085aattaaaaaaaaataagtagOATP296(intron 5 1577-1585)attacttgtacttgtaaatt (A) 9-10 taagtagaataattaagagt5086OATP297(intron 8 1939-1941)ttctctaactccttctactc CTT/Δ atttcaagcagatgcaactg5087OATP298(intron 10 3077-3078)aaattctttatctacttttt (CTT) ttccctctttctctgctttc5088OATP298(intron 10 3077-3078)aaattctttatctacttttt5089ttccctctttctctgctttcOATP299(intron 11 11011)aacaag t/c gagacttcactaa A/Δ tataat g/a5090caatgtatttgcaOATP2100(intron 12 1160-1169)agcatgacatggtagagatg (A) 9-11 gcatttttaacatttgttaa5091OATP2101(intron 12 1310-1312)tccatcttaatataaaatgt TGT/Δ ctactcaaaaggagaagtct5092OATP2102(intron 13 9-34)tatatatatatatatatata5093OATP2103(intron 13 35-64)taaaaaaaaaaaaaaaaaaa (TA) 10-21 c/t5094acacacacatacatatattOATP2104(intron 13 1379-1387)aaaattattcaccacaatac (A) 8-10 caaagtaaagttatgaacac5095OATP2105(intron 13 1916-1928)aattctcttaaaataatgtt (A) 11-13 gtctgc t/c5096tttacagcaattgOATP2106(intron 14 588-596)caattatactttacctcttt (A) 8-10 ctaatttcaaattcatatat5097OATP81(5′flanking region −1413)aataggggcttaataactct G/C aaacttatgatttctcatat5098OATP82(intron 1 38962)atgaaattagtttaaaaata G/A caaccttaactatactcctc5099OATP83(intron 2 253)acagacttaccaacaaagaa T/G tatccttcccaaaatgtcta5100OATP84(intron 2 329)actcatggtttgcaaattaa C/G tttttaggaaactttatctc5101OATP85(intron 2 2568)ccattctggtgctttctttc G/A tgaaactattttccatcagt5102OATP86(intron 2 2679)ctcttattgctcttcttcca T/c gttttaatctaaataattta5103OATP87(intron 2 2753)caggaaactttcacaaagcc C/A ctaattaatttaagctccct5104OATP88(intron 2 3132)tggtttaatgtaggagagtt T/C accttcacagttaaattaca5105OATP89(intron 2 3193)aatgtcttgggcatatttgc A/G ttcatttggggca t/c tcagtt5106OATP810(intron 2 3207)atttgc a/g ttcatttggggca T/C tcagttctactagatacaaa5107OATP811(coding region 334gaactggaagtattttgaca T/G ctttaccacatttcttcatg5108(Ser 112 Ala))OATP812(intron 3 76)agaattttatttttatcctt G/A taagtgggcagttacctttt5109OATP813(intron 3 2443)tcaatttcatgttgctctta C/T agttatcggtattctaaaga5110OATP814(intron 4 67)taatcacgtctataaagttt C/G tgatattctttaacaaaatt5111OATP815(intron 4 91)tattctttaacaaaattgat T/A taagaacaaataggaagaac5112OATP816(intron 4 197)ggtttgaactgcacctgttc G/A cttctctgcagcttttgtcc5113OATP817(intron 4 813)tttaacagaataaaaaaaaa T/A attttgtaacgacaeaagae5114OATP818(intron 4 974)atatgcaccttccaaatccc C/G tggatttttaaatatgtaat5115OATP819(intron 4 1003)tacatatgtaatgtacataa G/T gaatattatgcetettttgt5116OATP820(intron 6 155)cattaataatcagaatacca A/G egeaetttagctcctattta5117OATP821(intron 6 750)atccaactggggtttagatt T/G cctctttctgcctctcctcc5118OATP822(intron 6 780)gcctctcctccctctgcacc C/T tctcttttcctcagcaaaca5119OATP823(intron 6 1248)ctatgccctgtaatctcaca C/T ttccctttatttaaaattgg5120OATP824(intron 6 1500)tcgtgtctgtgttagcatat A/G ataactcatcagggtttgtg5121OATP825(intron 6 2008)ctaacataaatgagtaaaga A/G tatcaagggcaggaaattag5122OATP826(intron 6 2087)actactctccccatacacac T/C ccaactcatgtgctccccag5123OATP827(intron 6 12305)tcatctatggaggactgcaa T/C cattatcattatttcccaga5124OATP828(intron 7 363)taacaaatgataccagccat C/G atactattctctggtaatag5125OATP829(intron 7 411)cctttattttttgagaacct G/A gtggatgatattaaga c/a gta5126OATP830(intron 7 428)cct g/a gtggatgatattaaga C/A gtatatagatcactgtaata5127OATP831(intron 7 634)aaaattatctatatacatat A/G taatcttacctaagtattca5128OATP832(intron 7 1791)tgtttttttaagggtagtga T/C gtgaatagtaaagcgaattt5129OATP833(intron 7 2000)agttgagcaaattgctctca G/A gtagcatcatgtcacttgaa5130OATP834(intron 7 2043)cttttattgatccatttttta A/G tggatcaacattgtagtgag5131OATP835(intron 7 2171)atttattttgagcaaaggtc G/A c g/a actct c/t5132cttagaaagcctOATP836(intron 7 2173)ttattttgagcaaaggtc g/a c G/A actct c/t5133ttagaaagcctcacOATP837(intron 7 2179)tgagcaaaggtc g/a c g/a actct C/T5134ttagaaagcctcacaaatccOATP838(intron 7 2219)atttgtcactttaagtctta T/G ataacttatatttacaaaat5135OATP839(intron 7 2261)cagatattaatatatctttt A/T ttattgaaatatgttatttt5136OATP840(intron 8 150)acaaaatttctccatcttgt A/G ata t/a cctcgttgttctgcat5137OATP841(intron 8 154)aatttctccatcttgt a/g ata T/A catcgttgttctgcatttga5138OATP842(intron 8 1303)ttttttttgagatggagtct C/T gctctgttgcccaggctggg5139OATP843(intron 8 1372)aagctccgcctcccaggttc T/G ccacccttctcttaaagaaa5140OATP844(coding region 1272tccttcttgtttcaacttct A/G tatttccctctaatctgcga5141(Leu 424 Leu))OATP845(intron 10 63)tcacagatttgatttaataa A/T tacttatcaaatcttcctat5142OATP846(intron 10 911)cttgcccaatatcctaccaa C/T gtattattaaacggcatgga5143OATP847(intron 10 972)tcctagtttccttgaagata G/A gctaceactttagtaaactt5144OATP848(intron 10 1101)tccctggtcctgtgttgtcc A/T g t/c agtgaagacctgaaagag5145OATP849(intron 10 1103)cctggtcctgtgttgtcc a/t g T/C agtgaagacctgaaagagag5146OATP850(intron 10 2027)cccattttcatgagtggcta A/G g/a ttttgtcccgtttcaaact5147OATP851(intron 10 2028)ccattttcatgagtggctaa/g G/A ttttgtcccgtttcaaacta5148OATP852(intron 10 2372)tgtatttggcaaatgtattt G/T ttaatatttcaaaeactatt5149OATP853(intron 11 10538)caecagaggatcaatgtaaa T/G gaaatctcttaaattaaaca5150OATP854(intron 12 55)ataaatattaatgttaaata C/T taaagactgaatgcaattaa5151OATP855(intron 12 1802)taaaatgaatcggtaaeace T/G tcatgtetaaatcactgtca5152OATP856(intron 12 2612)ataggcatataatactcttt C/A ttccctctgtatatagggag5153OATP857(coding region 1833aacagctgtggagcacaagg G/A gcttgtaggatatataattc5154(Gly 611 Gly))OATP858(5′flanking regiontacataacatatacctatat CTAT/Δ gttatgtgtctgcttatata5155(−1590) − (−1587)OATP859(5′untranslated regionagcatcagcaacaattaaaa ATATTCACTTGGTATCTG/Δ5156(−28) − (−11)tagtttaataatggaccaacOATP860(5′untranslated regiontattcacttggtatctgtag TTTA/Δ ataatggaccaacatcaaca5157(−7) − (−4)OATP861(intron 4 213-214)ttc g/a cttatatgcagctttt (T) gtccaaccaaacagaaggag5158OATP861(intron 4 213-214)ttc g/a cttatatgcagctttt5159gtccaaccaaacagaaggagOATP862(intron 4 505)tataecttcctctttataaa G/Δ atgcaaaatgttatagcatt5160OATP863(intron 4 616)aatgaagtggaggaaaaaaa A/Δ tgatttcaagttttctgtct5161OATP864(intron 4 804-812)acatccatgtttaacagaat (A) 9-11 t/a5162attttgtaacgacaaaagaOATP865(intron 4 855)agattgtttaaccaaattag G/Δ aaactattattcaacacact5163OATP866(intron 7 619-628)ttttatatatgaattaaaat (AT) 4-5 catat a/g5164taatcttacctaagOATP867(intron 7 1773-1779)attttctatattatgaactg (T) 7-8 aagggtagtga t/c5165gtgaatagOATP868(intron 8 1270-1290)tagtgtgccacccttctctc (T) 19-23 gagatggagtct c/t5168gctctgtOATP869(intron 10 665)aactcaaaggcttttttttt T/Δ ccatgtgacacatatcctgt5167OATP870(intron 11 247-250)aaaaatcttaaggcacacac TGAT/Δ tgacagttgccttgattgta5168OATP871(intron 12 1622-1630)aaataaattgttggcatcta (T) 8-10 atttttctaagggtcgctgt5169OATP872(3′untranslated regioncctgatgcctttaaaaaaaa A/Δ tgaaacactttggatgtatt51702464-2465)TAP115′flanking − 673agctaagagtcaaagcaccc G/C ctttttccaccagcctcgcg5171TAP125′flanking − 646ccaccagcctcgcgtgcctg T/G tcccttcacggacactctag5172TAP135′flanking − 563ttgcaagcgctggctgctac A/c ggcgacctccctgcgctccc5173TAP145′flanking − 236gctttgcgcgcggcgctaac G/T tgtgtagggcagatctgccc5174TAP15intron 3 + 408aaggaaactgaggccaagac C/T ctaaatgctgaaactgcaca5175TAP16exon 4 + 153ccctcaccatggtcaccctg A/G tcaccctgcctctgcttttc5176TAP17intron 4 + 289gtatttctttagcatccaag G/T ggcatagctgtgtctctttc5177TAP18intron 4 + 291atttctttagcatccaaggg C/G catagctgtgtctctttctc5178TAP19intron 5 + 1139ttccttcaggttaatgactg C/T ggttctttgtgtcccctcca5179TAP110intron 7 + 375gtctctgcccttgtctttgc C/T gcttcttctatctctactcC5180TAP1113′flanking + 71agcgcacttttcagctgcgg G/A tgtctcctcttttatcatcc5181TAP1123′flanking + 129aactgcatcaccttttccct T/C aagctttttaattcctatga5182TAP1133′flanking + 459cattcagggaggcccaggtc G/A tgtgacgtcgaCagttgctg5183TAP21intron 3 + 8tctcctttggcaggtaggtg G/A tgggcagctgggtccatttg5184TAP22intron 4 + 104cttcecccgtatgccaggac C/T tggggatgcttttctcttgt5185TAP23intron 10 + 219gcagcagtggtgctccctcc A/G tgggcagccccgtcaggtcc5186TAP24intron 11 + (317-319)atggtgcccaggtggatgtg GTG/Δ tccatctcattcctgtcttt5187TAP25exon 12 + 19agctgcaggactggaattcc T/C gtggggatcgcacagtgctg5188TAP26exon 12 + (356-357)aggtggggtggggtggggtg GG/TGGTGGGGTGGA5189ggctgtctgtgtccaggaaaOCTN11intron 1 + 6602aggcgagccaggttatgtgg C/T gaaggataaggcctcttccc5190OCTN12intron 1 + 6790gacaaaaggggaaaaccttc C/T gtgataggcaggtttgtgga5191OCTN13intron 1 + 14019cactgtctcccactgggccc G/A ccatgtcactgttaaccaca5192OCTN14intron 1 + 14136ccggtttcctaagaaaagcc T/C tttctaaaggacccctctta5193OCTN15intron 1 + 14266agctttccaaaaagacactt G/T cggcaccataactccccaaa5194OCTN16intron 1 + 14412cttggggcaaacggccactg C/T gtgtgcatggctcttcctgt5195OCTN17intron 1 + 15776acataggagacacttctttc G/A gatctcagtattcagaacaa5196OCTN18intron 1 + 15817ctgtgcttctgcgaataagc A/G gactacttcggatactgtaa5197OCTN19intron 1 + 15889agagccagttttggagcccc G/A tctggcaagcaggcaggccc5198OCTN110intron 1 + 16063acctctgtctgctgcagaat A/G aggtgtgatataaatatgtg5199OCTN111intron 2 + 1105atatttccacaaggtccttg C/A gtacactgctccatgctttt5200OCTN112intron 3 + 1022cttctgtcaagttgccagga T/C ggaaatattccaactctact5201OCTN113intron 3 + 1217tccccttcctgcagggggaa G/A gagcggggcaagattttctt5202OCTN114intron 3 + 1596aagccagagaagctctctcc G/A tgggaatgggaacaaggtgg5203OCTN115intron 3 + 1720ggagcctccaagcctcccct G/A tgtgagcgggtgaggcaggg5204OCTN116intron 3 + 2104tatgagactcgttgtgttgg G/A ttctcaggtctgaaagttta5205OCTN117intron 3 + 8323cctttccccttttctaagtg G/C tgatagtttgaactctaact5206OCTN118intron 4 + 926tttttggaactcacaattta G/T actagacctcatggttgccc5207OCTN119intron 4 + 1055cacctgtctgacgagatagc G/A caggtcaggtgggctcactc5208OCTN120intron 5 + (1197-1202)caacaacaacaacaacaaca ACAACA/Δ tttgggagtgtctaacacttc5209OCTN121intron 5 + (2071-2083)caaaaaaagaaactaaggca5210OCTN122intron 5 + 2781tgatcattcctagaaaaaag G/A acactcacatttggagagga5211OCTN123intron 6 + (882− 917)tcctactctatgatggcagc (AC) 15-185212gatgatcgtcagaactggtaOCTN124intron 6 + 924acacacacacacacgatgat A/C gtcagaactggtagatttag5213OCTN125intron 7 + 511attattgatagtaatagaaa T/C acatatttcttaataataag5214OCTN126exon8 + 124ggtcaggaacatggcggtgg G/A ggtcacatccacggcctcca5215OCTN127intron 8 + 3514acacacacacctgaaaacat G/A tatgaattctcaggaaaggt5216OCTN128intron 8 + 3902aagcaagatgaggatctgtt T/C ttctcctgtgtgagtaaagc5217OCTN129intron 8 + (4064-4089)gagtctcatagccctgtgga5218OCTN1303′flanking + 115aaccaaatgattatatgcag T/A attcctatccagaaaacctt5219OCTN215′flanking − 225cggcgctagaggagcgagtt C/T ggactcggaccccaaggcct5220OCTN225′flanking − 124gctggcagaggccgggcctc G/T ccaggtccccaggacaggcc5221OCTN235′flanking − 13ggcgccgctctgcctgccag C/G ggggcgcgccttgcggccca5222OCTN24intron 1 + 232ggtggtcagtctggcctccc G/A tcctgatggccactttgaag5223OCTN25intron 1 + 314atggccctgtgtgtccagga C/T ttactctagttggggttggg5224OCTN26intron 1 + 5O55catgtggtacctagcagcat G/A tctgactgttgatacggtca5225OCTN27intron 1 + 6437gaagcttggcctcacacaca G/C aggccggcaccctgtcatca5226OCTN28intron 2 + (173-174)tagtaagaagegccaacaaa TC/Δ atctgactccgtaattcttg5227OCTN29intron 2 + 608agcaggttatttgtataatt C/A taaagcttttaactcaagga5228OCTN210intron 2 + 4370taatttattgatatccaagt G/A ccctctataatagatgctca5229OCTN211intron 5 + 969caccagaaaggggtcctgtg C/T gcaaaggtcaggcaggagtg5230OCTN212exon 10 + (1028-1044)aaaacagaatcactctggca5231OCT11intron 1 + 7715tagtcctgactcacacatgg G/T tctgtgcttttcgtcctcct5232OCT12intron 2 + 97ggtggagaacatgaccagtt G/A gaattaactgcagaagctgc5233OCT13intron 2 + 797gtggagttgtgtgaacaact C/G tttaaaagagtgtggggagg5234OCT14intron 2 + 1768cgtgaactggagagggtctg T/C gggcactgcccggctgagct5235OCT15intron 3 + 1244gcagatggtaaaggagcaga C/T gcggaaagcgacggtcaggg5236OCT16intron 4 + 865agcgtccagtggtaggaaag G/T ctccacaggtggcaatccca5237OCT17intron 4 + 1028gtcatctctgctcttctccc A/G cttcttcatttttatagtac5238OCT18intron 4 + 1040cttctcccacttcttcattt T/G tatagtactattggtattat5239OCT19intron 4 + 1485agcctgcccttcccctgcct C/T gtccttgtgaaacagggatc5240OCT110intron 4 + 1997tgagggattacagccccaac G/A tggggagggcaggctgcact5241OCT111exon 5 + 9tggtgttcgcaggtgtgtgc C/T ggagtcccctcggtggctgt5242OCT112exon 5 + 20ggtgtgtgccggagtcccct C/G ggtggctgttatcacaaaaa5243OCT113intron 6 + 379gaggaagttccattcctcat A/G tctaaacaccctagagaccc5244OCT114intron 8 + 2125tattgacccaaatctgttct C/A acaatgtaaatatgactgta5245OCT115intron 6 + (2935-2953)cttcagtctctgactcatgc5246OCT118intron 7 + (6-7)ttttatctcacctggtaagt (TGGTAAGT)5247tggtaagttgtctgctttcaOCT116intron 7 + (8-7)ttttatctcacctggtaagt5248tggtaagttgtctgctttcaOCT117intron 7 + (1780-1781)gttttcttttcccttttttt (T) catggagaaagaacagagaa5249OCT117intron 7 + (1780-1781)gttttcttttcccttttttt     catggagaaagaacagagaa5250OCT118intron 8 + 3247ccaggccaaacaattccatt G/T tcatggccactgggccaagg5251OCT119intron 8 + 10521cccttaaccaatgaacgcca G/A tggcagatccctcattctga5252OCT120intron 10 + 393tcagattctttagtaacttt G/C ttcacaaaattcttttgaca5253OCT1213′flanking + 1755tgaatgatgtttttcaaatg T/C gtattaaaaatgtcctctct5254OCT1223′flanking + 1799ctttcttagaatcctcttgg G/Δ caaaacttctgaggaaggcc5255OCT21intron 2 + 1329tggcagcagaagggaagagg G/Δ ataaaagtggaggcacaggc5256OCT22intron 2 + 1887cctctgtcaaggtaagtact C/Δ attattcttcccccaaaggc5257OCT23intron 9 + (340-343)cagcaggcccctaactctct CTCT/Δ gctgatttccacccttcctg5258OCT24intron 9 − 398atacataattcattactttt A/G tttgctagaaatgatccaag5259OCT25intron 9 − 386cattacttttatttgctaga A/C atgatccaagtttctgactt5260OCT26intron 9 − 88atagaaaaatgctaaaaaaa A/A gttttaaacaaaaataaggg5261OCT27intron 10 + 1725tggaagaggcctttgaatcc G/Δ agcggaggtcacacactcgc5262OCT28intron 10 − 195caagataattttaggaataa C/T tctgtcgacatgagttatca5263OCT29exon 11 + 328gttttctggagggttttttt T/A ccatctttgtatttttttaa5264OCT210exon 11 + 427aggcaaacaaaatagaaaaa A/Δ gtgtgaaaaacagtaaagtt5265OCT211exon 11 + 455aaacagtaaagttgggagag G/A agcatctattttcttaaaga5266OCT2123′flanking + 34agaatgtatgtcaagaattt T/A agataggcctttcagtaaca5287NTCP1exon 1 + 307tatggcatcatgcccctcac G/A gcctttgtgctgggcaaggt5288NTCP2intron 1 + 607cccagcacccactccagata G/C gccagccccatctcagccac5269NTCP3intron 1 + 702gcagaaatcagcaagggctc G/A ctcctggagacycagcacac5270NTCP4intron 1 + (3950-3966)gagaaataggcatgtaaaga5271NTCP5intron 1 + 9597aaggacatattattcaggct C/G tgagtgtcataatttatttt5272NTCP6intron 2 + 4808cctatggagaagcaactacc C/T ggggccacttgtctcagcag5273NTCP7intron 2 + 5032acacctggagactagcagag G/C cagctttcccaccaggatca5274NTCP8intron 2 + 5046gcagaggcagctttcccacc A/T ggatcatateaaattatgtg5275NTCP9intron 3 + (8-21)aagaaagggtctcactctgt5276NTCP10intron 4 + (484-495)gattcctcaactctagttac5277NTCP11intron 4 + (728-754)caggacattcaaacccactt5278NTCP12intron 4 + 747taaaaaaaaaaaaaaaaaaa A/C aaaaaaacaggacattcaaa5279NTCP13intron 4 + 1339ccccagtggaaacactaaat C/A aaagcaacgtatttctttgg5280NTCP14intron 4 + 1545accacggacaagaagaggta G/C atcaattgggggttggaggg5281NTCP153′flanking + 559caagacaatatagttttcgg G/A tatcagtttggcaaatgtgc5282PEPT11exon 1 + 25ctgccaggagcacgtcccgc C/T ggcaggtcgcagyagccctg5283PEPT12intron 1 + 88cgagggccgggaggcgcgaa G/A ggtacgcggcggcgggaagc5284PEPT13intron 1 + 106aagggtacgcggcggcggga A/T gcggggcgacccgaaggccc5285PEPT14intron 1 + 248cgaggttgcgatcctggccc G/A cccgcccgtggggcactgta5286PEPT15intron 1 + 326tggagcyggacgggacccag C/A gggtgacggcaggggcggca5287PEPT16intron 1 + 1238tttagcatttccagcagatc C/T aatcccgagagctgttagag5288PEPT17intron 1 + 3001tcttatatgctgggaagaag C/T gtcagtaagaaaaagcagcc5289PEPT18intron 1 + 5673ttgggaagtgccacagccac G/C gggcacagggacagggtctt5290PEPT19intron 1 + 5679agtgccacagccacggggca C/G agggacagggtcttccacag5291PEPT110intron 1 + 5917aaattcacaaaatgtacttc C/T ataagaaggctcgttaaaag5292PEPT111intron 1 + 5966ctaggcatttagaacttcta C/T aatctgcccctagtgacaag5293PEPT112intron 1 + 9255tggtcatttcaggcctcttc A/G gcctatgattttagatagtt5294PEPT113intron 1 + 10278catgacccatgtaggcggga A/G aagcagccctgtagcagcag5295PEPT114intron 1 + 20251aagaagagcctgtgtttatt C/T agtgattgcaatgtgttggg5296PEPT115intron 1 + 20509aaacaccacttctgcatttg C/A gctttctaagatagcaatcc5297PEPT116intron 1 + 20532tttctaagatagcaatcctg T/C tgacacaggtacattaagat5298PEPT117intron 3 + 55agagcgggagtggccataac C/Δ agtcctaactttgtttcccc5299PEPT118intron 5 + 1720atcctctcttttactggaaa C/A aataaagctacaaaagaacc5300PEPT119intron 5 + 1790gctactgttttatgttttcc G/A gatggtaaattattagatgg5301PEPT120intron 5 + 1860agtttgcatttgactatcac G/A ctgcattcctgtgagctggc5302PEPT121intron 5 + 1943aggcccactgagggaaactg G/A ggaaaagagaggccttctac5303PEPT122intron 8 + 1478tgttttcagatcttagtagt A/G catggaataggaccgttttc5304PEPT123intron 8 + 1898ttaaatattagtggtaaaag A/G aaacatagactcaatctctt5305PEPT124intron 10 + 388ttaaatagtttagacatttt C/T gatttrctaaagaaaactgc5306PEPT125intron 11 + 985atccataaggtactcagtga C/T tggcctgtatgaagaactca5307PEPT126intron 11 + (1022-1045)gagtcaagagtctcactctg5308PEPT127iniron 11 + 1320tgtgagccactgcacctggc C/T aatttcctgactttctatga5309PEPT128exon 16 + 107tggagagatggtgacacttg G/C cccaatgtctcaagtaagta5310PEPT129intron 18 + 6048tttgttgttgggtttttttt T/Δ gttgttgttgttttgttttg5311PEPT130intron 18 + (6141-6142)tcactgcagcctccgccccc (T) gggttcaagcaattatcctg5312PEPT130intron 18 + (6141-6142)tcactgcagcctccgccccc     gggttcaagcaattatcctg5313PEPT131intron 18 + (6241-6242)tatttttagtagagacgggg (G) tttcaccatattggccaggc5314PEPT131intron 18 + (6241-6242)tatttttagtagagacgggg     tttcaccatattggccaggc5315PEPT132intron 18 + 12102gtgggaattciagctaaggc C/T cgtgtggatctgtctcaggt5316PEPT133intron 18 + 12203gacctgagtttaattcatag C/A cattttctcccagcacctaa5317PEPT134intron 18 + 12307gaaaggttaaattattcttt A/G cactgctgaggtgtacacta5318PEPT135intron 20 + 79tcacaaacacttaggacata A/G tatgatttaactagagtgat5319PEPT136exon 23 + (348-370)gagacagagttttgctcttg5320PEPT137exon 23 + 790ccacattggtcatcttccct A/G tcacacaaatgatgttattt5321PEPT1383′flanking + 2aaataaatttctgttcttaa G/A cctaagtgttcatgtatctc5322EPHX11intron 1 + 110tgcaaaatgtgtcttactag C/T ttctagtgcataaaatattg5323EPHX12intron 1 + 143aaatattggtggagctcttc G/A ctgtgctgggccagtcacca5324EPHX13intron 1 + 1097aatccagagagggagataga T/G tggaagttcaagggtggaca5325EPHX14intron 1 + 1717ttccaagacagagcgagggg T/C gctgctggggcgtggtttgc5326EPHX15intron 1 + 1772aactcgatgctttctcctcc G/T tctgggtcctaactgcagtg5327EPHX16intron 1 + 2054gaaatgtaacaggcaacact A/G tggacacagaaagtagatta5328EPHX17intron 2 + 1414atttccaaaatctgtttggg G/T gtaactgaaacacttgggaa5329EPHX18exon 3 + 174taccctcacttcaagactaa G/A attgaaggtatgtttgcaaa5330EPHX19intron 3 + 6583ctgtcaataccatgaagggg G/C ggcgggggcactaagggtgg5331EPHX110intron 4 + 34agaggttccataactgcccc G/A tcctcgccaagggtgggccc5332EPHX111intron 4 + 63aagggtgggcccggtgttcc C/T accaggctctccttccggcg5333EPHX112intron 5 + 154gcagtgcctgaggcacgttg G/A cttggatcctcctgtctgta5334EPHX113intron 5 + 276tgctggaccaagctctggga T/C agccctgagcagaactcccc5335EPHX114exon 6 + 130gatgtggagctgctgtaccc C/T gtcaaggagaaggtattcta5336EPHX115intron 8 + 206ggtgcctggctcccgggcgg C/A cctcagtaccgctccccagt5337EPHX116intron 8 + 353tggccctcccagaaaagaga A/G ggccctcagtgaggggagag5338EPHX1173′flanking + 708aggtgcagactcatgcactc A/G gccctgaagaggtgagagag5339EPHX215′flanking − (523-522)aaagtcactggatatgcccc (C) tcccccgccccccaacacgg5340EPHX215′flanking − (523-522)aaagtcactggatatgcccc     tcccccgccccccaacacgg5341EPHX225′flanking − 522aaagtcactggatatgcccc T/C cccccgccccccaacacggt5342EPHX235′flanking − 521aagtcactggatatgcccct C/T ccccgccccccaacacggtc5343EPHX245′flanking − 516actggatatgcccctccccc G/C ccccccaacacggtcttatg5344EPHX255′flanking − 515ctggatatgcccctcccccg C/G cccccaacacggtcttatgt5345EPNX26intron 1 − 74tggctgcttctcaatgaata T/C gaacagtgtctgtttccatg5346EPHX27intron 3 + 72gagcattaggtcagaatcca T/C tgaagtgagctttgagatca5347EPHX28intron 4 + 473gtgtgtctctactttaatct A/G caaaaggtgattgaatggag5348EPHX29intron 5 + 276caagagtgggatgttcaagg C/T catcctgacctcacttttga5349EPHX210intron 8 + 8tctgctcctcccggtgggtg T/C gctgtcttgcagctgtctta535OEPHX211intron 9 + 1573atgtcgtgaagactgatgaa C/T gatggacggctgcactgctc5351EPHX212intron 10 + 207gaacaggatggagatgagct T/C gtttatttgtcttttaatga5352EPHX213intron 12 + 911tgaagagacctcgacatgtc G/T catcccacatactacaggga5353EPHX214intron 12 + 2425atcttctcagctgagcaaac C/T gaggctcagagggcttaacc5354EPHX215intron 12 + 2460ttaaccccaactggcccaag G/A ccaggtacatgattgggtca5355EPHX216intron 12 − 281aagtcctttcaagagattat T/C ataagtagtaccttctcatt5356EPHX217intron 12 − 268agattattataagtagtacc T/G tctcattataggaatattga5357EPHX218exon 13 + 50cctgagtcggactttcaaaa G/T cctcttcagagcaagcgatg5358EPHX219intron 13 + 1739ttgtcgtaacagggttttca G/T atgagcatatttcctttgta5359EPHX220exon 14 + 33atgcataaagtctgtgaagc G/A ggtaagagacatgcttggga5360EPHX221intron 14 + 314tgattgagagcttacctcta T/C gggggtcacctcgtgtatgc5361EPHX222intron 14 + 878attcccttattccttcacac C/T gtctgtcactcattcattca5362EPHX223intron 14 + 948acacaggctgggtatgaagc T/C ggggctgcatgctcagctac5363EPHX224intron 15 + 259agagggttttcactactttt C/T agtcatggctcctcagagaa5364EPHX225intron 16 + 459tcttcatttgtcaagcagaa G/C atgagtttccaatctctggg5365EPHX226intron 16 + 645gtaagtgaacacactgctac G/A tgccagacttcctgccagac5366EPHX227intron 1 16 + 985gtcattatcatcatatgacc G/A atgaaaatgaccaaactgca5367EPHX2283′flanking + 12aggtggccttacacacatct T/C gcatggatggcagcattgtt5368EPHX2293′flanking + 374tgttcacggagaatgcacgg C/T atggggatgaaccctttccc5369EPHX2303′flanking + 544tagccacctgcctttctccc G/A gcttccctagcagagtttgc5370COMT15′flanking − 1287cgtatgatattccccattct G/A agtccagaatacctagaaat5371COMT25′flanking − 1217tgtgagtatgggaaggggaa G/A cttttctgtctgttgtcccc5372COMT35′flanking − 503caggggctccaggaggacga G/A tgtgtatcctcccattgctc5373COMT45′flanking − 425gagaagttgggaagtctggc C/T agtggggccggtgcctggtg5374COMT55′flanking − 277cccagccccagtttccccac C/T tgggaagggggctacttgtg5375COMT6intron 1 + 12058gtggcccatggaagggaggg G/A agggggccccgacggggcca5376COMT7intron 1 + 12070agggaggggagggggccccg A/G cggggccacagtaaaggagt5377COMT8intron 1 + 18831tgtgtatgttcttggtaaac C/T agcccttggtcttacacatc5378COMT9intron 2 + 832cctctcctttggccacccgt G/C actacccccaactccgggcc5379COMT10intron 3 + 90ggagaagctgttatcacccc A/G tttccagggggctgggaacc5380COMT11intron 3 + 425ccccaaggtgggcggttcgg T/G gattcagagagggcagctct5381COMT12intron 3 + 671ggctcctgctctttgggaga G/A gtggggggccgtgcctgggg5382COMT13intron 3 + 676ctgctctttgggagaggtgg G/T gggccgtgcctggggatcca5383COMT14intron 5 + 75tcagcctcagcctctccaaa G/C agccaggcattccagtagag5384COMT15intron 5 + 310tccagacaccagggcagaaa C/T ggcacaggaccaaggagatg5385COMT16intron 5 + 346agatggggtggggaagggcc G/A ctctgggcccagcctgctct5386COMT17intron 5 + 3023aaggcagccgccctgctcaa G/A gcctaggccattgtcctcct5387GANT1intron 1 + 429ctcggaaagctgagctcagg G/A agacagctgtccccggggtg5388GANT2intron 5 + 1411ggtgacctggtgccatcccc G/A accaggagacgcaggtgccc5389GANT33′flanking + 626cactgacctccttgccctga G/A agaaggccggctcctgtgct5390PNMT15′flanking − 367aagaggtgaatggctgcggg G/A ggctggagaagagagatggg5391PNMT2intron 1 + 35ctgaggcacgagggacaaga G/T gtcgtcggggagtgaaagca5392HNMT15′flanking − 211cagaggcagatgacagtctt C/T cgttaaagatttcactgctg5393HNMT2intron 1 + 5409aatataactgatataattgg A/G acatttcatgttggcctagt5394HNMT3intron 2 + 2561cacttgtgcttggacaagaa A/G agaaggcctacaagaaaaag5395HNMT4intron 2 + 2895caatcagaaatgtaagaaaa A/C ctccaagaaaaatttaagtt5396HNMT5intron 2 + 3977accaaacttggaagtgtaaa G/A ttatgcatgtatgttcatgt5397HNMT6intron 2 + 5296ttaacatagtgagtttggag T/C cccaggattttattttcctt5398HNMT7intron 2 + 13317caaccctcatgaattcttag C/T tgggatgggtccctataaca5399HNMT8intron 2 + 14682gtagatgagcaaatgagttc A/A ggagagatttaaatacccta5400HNMT9intron 2 + 15406gtctatgcattcatgcatcc G/A tctaaccagctgtctaccta5401HNMT10intron 2 + 28943atgtgacttaaacttcaggt A/G tatcaatatcccttgaatgt5402HNMT11intron 4 + 49cagaaagaagacttttcaga A/G tatatatataatgaatatct5403HNMT12intron 4 + (1942-1943)tttgagaaaaatttaaggta (A) tcttctatggcccacttcca5404HNMT12intron 4 + (1942-1943)tttgagaaaaatttaaggta     tcttctatggcccacttcca5405HNMT13intron 4 + 2405ccctgtgaccaagcagataa C/A ctcatgctttatttagtcca5406HNMT14intron 5 + (80-81)cctgtgtttgaaagaagctt (TT) atatattttgtcttcattat5407HNMT14intron 5 + (80-81)cctgtgtttgaaagaagctt     atatattttgtcttcattat5408HNMT15intron 5 + 235ctttcttttgggaaaatatg T/C ctttgtcttctatatatgaa5409HNMT16intron 5 + (702-703)tacttacaggttgattttag (AT) acacagcagactctgtcttc5410HNMT16intron 5 + (702-703)tacttacaggttgattttag     acacagcagactctgtcttc5411HNMT17intron 5 + 749ttacaccagaccccatactt T/G aacaccatatgtcacaaaat5412HNMT18intron 5 + 1101gtaggcagcctattcttgat T/G atattcatcaatcatacaga5413HNMT19intron 5 + 1137acagaaaaagtattgtagac G/A gaaataacaattcattgaga5414HNMT20intron 5 + 1348aagggagcatgaatagtcca C/G aagtaactgagaactgatta5415HNMT21intron 5 + 1673caaaagaaagggagtaaaga C/G tcaacaatcagttagctttt5416HNMT22intron 5 + 2022attttatttggggctttcta C/T gtctctctctcctaagccta5417HNMT23intron 5 + 2285tgtcatacttaactcttaaa G/C atccagagtaaatgatggag5418HNMT24intron 5 + 4159taccagttgacccagcaacc C/T tcttatagagtagtttaaat5419HNMT25intron 5 + 4501aatgatccacaaaattacta C/G tcattgttttctttcaatga5420HNMT26intron 5 + 5251cacacaracacacacacaca C/G caaatggaagcagccagaca5421HNMT27intron 5 + 5802gaaaaagaaaatctggctta C/T atcatgttgaaaacaaaagt5422HNMT28intron 5 + 6189tccaattccaccttctccta G/C agcatatcctgcagttacct5423HNMT29intron 5 + 6297gtcttggttcatctcttgag T/A taaattagatctgggaactt5424HNMT303′flanking + 458tatgtcactctcaagaactc C/T tataagaccaagagtcatct5425HNMT313′flanking + 993ctgaaaatgaacactgaacc G/A ttaatcatactgatatgtac5426HNMT323′flanking + 1793gtggagcacagcattttagg G/A cttgatatttgcttattata5427HNMT15′flanking − 228ataattttcctgacgagctc A/T agtgctccctctggtctaca5428HNMT2intron 1 + 44ccccactaatgtgagtcata T/C agatggagtctcagggcacg5429HNMT3intron 1 + 149ggataaaaacgaatattggt A/a tagcgattccacagtttaca5430HNMT4intron 2 + 155agataggcccatgtgtgtgc a/A tgttagtaaatttgtgtatg5431HNMT5intron 2 + 433gctgtagccatccaagccta T/C agaacttggctgtgagtgtg5432HNMT6intron 2 + 10826atcatctgactggtaagttc C/T agttctgtggtaactcaagt5433HNMT7intron 2 + 13630atttcatggagggaagtcca T/C ggtagaagcaggctgctagg5434HNMT83′flanking + 71ggctcagtggttggggccca A/G tggttcatctaggacgggac5435PEMT1intron 1 + (297-299)attgtgtgagactcagaggt TGT/Δ ccgtgttagtctttgggatt5436PEMT2intron 1 + 817tcatgaagcctgtaaggcac A/G tctctgccccaagcagcttc5437PEMT3intron 1 + 830aaggcacatctctgccccaa G/A cagcttctaatccagttctt5438PEMT4intron 1 + 1035gagttctctgaaggagctaa T/C accagttagtgttttgaaga5439PEMT5intron 1 + 1573agtgggcaggggagactaac C/T gggtgtgtgaggggtgggct5440PEMT6intron 1 + 1759gatttttcttaaagaaagaa A/G gaaagaaacatacaacatac5441PEMT7intron 1 + 2768gcatcttgctgtccacaggc C/A ggggcacctccaggattcag5442PEMT8intron 1 + 2785ggccggggcacctccaggat T/C cagaagatgactccagtagg5443PEMT9exon 2 + 162agctcagcagacctcctggc C/T gtggtgggtagctcctttcc5444PEMT10intron 2 + 4598ccgtgggttttttttttttt t/≢ cttcatttctttggttgctg5445PEMT11intron 4 + 39actgtccagacgygagtatc C/T cactgcttggtgagccccac5446PEMT12intron 4 + 1317accgtccccagctggcccca G/A cctcctgacatgggcctctg5447PEMT13intron 4 + 1355ctggagccaggctgcagccg A/C agtgcctggccatcctggcg5448PEMT14intron 4 + 5925gtccaggcactgtggcccta C/T gtgggagtctccagtctcca5449PEMT15intron 4 + 6028ggcagtggtccaaggaccag C/C atggactccctcttctcacc5450PEMT16intron 4 + 6078atctgtaccctcgcggactc C/T acctggcttcgtgccatcac5451PEMT17intron 4 + 6089cgcggactctacctggcttc A/C tgccatcacccccgccagat5452PEMT18intron 4 + 6379tcaggtgtcccctccctcat C/A cctcctcaccctgccctctc5453PEMT19intron 4 + 7339tgtaaggaatcctgccaaga C/T ggcagatgcacacggggtca5454PEMT20intron 4 + 7619ctcctgcacatgtgctccag A/G gaggaaaggcatttgacagg5455PEMT21intron 4 + 8858ggcatgtgtgtgtgtgtgta T/C gtgtgtgagtgtgtgcatgt5456PEMT22intron 4 + 9029tttctggaccagaaagcgtc G/A tcctctgccagggcctcttg5457PEMT23intron 4 + 9056gccagggcctcttgcacttg C/T gggaaagctgagctgagctg5458PEMT24intron 4 + 9512ctgagctgggcagcagcatt A/G ctctgtgtgctgctggcact5459PEMT25intron 4 + 9523agcagcattactctgtgtgc T/C gctggcactggcctggtggg5460PEMT26intron 4 + 9622gacaaagtgtacaacaaggt G/A tctcgaactgggtcagctca5461PEMT27intron 4 + 10776ccattcctgggtcttctttg G/A aggctgaatgaaattccatg5462PEMT28intron 4 + 10912tctgccccactttgctcaga G/C gtgcaacaaggccttcagga5463PEMT29intron 4 + 11590ggacactggcctgatgcaga G/C gtgtggtctctctcctgcag5464PEMT30intron 4 + 12090ggccaggycacccctaocag G/C ctgagtcccacctgtccagc5465PEMT31intron 4 + 12263tacccgccttcccagatgga G/A cgggctgctcatgggactta5466PEMT32intron 4 + 12448tctggtcccctctcctgctt C/A tagtttcctgggctaaaatc5467PEMT33intron 4 + 12730tgggaccagtgccgccacca C/T ggcccaaggacctggtgttc5468PEMT34intron 4 + 13240gggctccaggcacacagcgg T/C cccagtacacctgtcgcttt5469PEMT35intron 4 + 13494tccgtggaactcagagatgg T/C acctccctgcgaggtggggc5470PEMT36intron 4 + 13817aactctcccctgctgctgag A/C cagatcttggagcctcggcc5471PEMT37intron 4 + 14773ccgccctgtgcttcatgccc C/T ctatgcctctcactgcctgg5472PEMT38intron 4 + 14951gtcctgaggcccctcccacc G/A gagcctggggtgccctcaca5473PEMT39intron 4 + 16896gctgtgactgtcttggagac T/C gggtcttggcgggcctggtg5474PEMT40intron 4 + 19439ccaggagcctctgaggcagc C/A ggggcttctcaaccacacac5475PEMT41intron 4 + 19557attttgtcagcatgtcacgt C/T cctttcataatgaagcaagg5476PEMT42intron 4 + 20051acagcactgcgggagccacg A/C catctgcagacgcatttgat5477PEMT43intron 4 + 20816tggactctctggcgtccatc C/T agccacttcagtgcyacgtg5478PEMT44intron 4 + 21196ggctggctgggccctgggat C/C atcytgacaggctttagtgg5479PEMT45intron 4 + 21528acaggtgggagccgaggctc C/T ggaggtgggcogggctgagc5480PEMT46intron 4 + 21596ccgcttccccgtgctctggc C/T gtagcagaaagtgtcccact5481PEMT47intron 4 + 22672agcctcccactgccttgtgg C/T tgaggggagggggccgggtc5482PEMT48intron 4 + 22713tctaacgctgtcttctttgt A/T ctgaaaaccaaacaccttct5483PEMT49intron 4 + 23010tgccgggcagcggggaggga C/A ggcgagtggttcccccaagt5484PEMT50intron 4 + 23588gtgcaggcgccctgcatccc C/T gcagccaagttctgggcgga5485PEMT51intron 4 + 23627gacactgccctgagccagga C/T ggtgaggtgggacgccttcc5486PEMT52intron 4 + 23941tgaggggttgggactctaca C/A aggagagtggactcacgggg5487PEMT53intron 4 + 24091gacacctcttcactgtcagc C/T ctgagacacgcccctgccct5488PEMT54intron 4 + 25348caggccagttggaatcctac C/A tagagtgaaagcatctcagc5489PEMT55intron 4 + 25603taagcagttaacactgatgc C/A tgatgaaaattccaacagca5490PEMT56intron 4 + 31540cctccaggtggcaggaacac T/C gtgaggagcatgcaacgtgc5491PEMT57intron 4 + 31637gtgggctgggacgccaggac C/A gtgaggggcttcaaggtgtg5492PEMT58intron 4 + 31642ctgggacgccaggacggtga C/A gggcttcaaggtgtgtttgt5493PEMT59intron 4 + 35593ggaggagctgaaagagctgg C/A gctcgggatcaggtggttca5494PEMT60intron 4 + 35647actttgaggcaccaccgcac C/A tgtccgtgcgtgagggagac5495PEMT61intron 4 + 35862tcccagtggtggctctgtcc C/T cgtctcagccgagcactcag5496PEMT62intron 4 + 35882ccgtctcagccgagcactca T/C cgyccagggtggctggactc5497PEMT63intron 4 + 37141ccacaggccggatgccttga T/C acttctcagctgcagggctg5498PEMT64intron 4 + 38862tggagagaccacctcagaca C/C caaggacgggcatgccatgg5499PEMT65intron 4 + 38872acctcagacagcaaggacgg C/T catgccatgggtcccggcag5500PEMT66intron 4 + 39140atgtctcaaatctccctccc C/T gggaaatctaggcacaggtc5501PEMT67intron 4 + 39635caggcccaggagcaggtggg C/T cctcctcacaggagcagggc5502PEMT68intron 4 + 39713actctgagcatgctggctcc C/T tccttctttccagggcagca5503PEMT69intron 4 + 40436cctggttgtgcttcggaccc C/A gaggcagacagaggaggcct5504PEMT70intron 4 + 47485acaatgactgttggagccct C/T gagcaggctgtgtcacgtgg5505PEMT71intron 4 + 48131actgggggatcctgaatccc C/A cctcctgatgccagtggagc5506PEMT72intron 4 + 48558cacagtgtgaactgttaggc C/C acagccacatcttgccggag5507PEMT73intron 4 + 48702gagatgggggcggttcggga C/A gcaaaagcaggaaggcagaa5508PEMT74intron 4 + 50302gcatgtgcatgggcagaggc T/C gttcccatctgagtggyacc5509PEMT75intron 4 + 54102ggccgcgtgctcctgcagcc A/T tgggctcctctggcagttct5510PEMT76intron 4 + 54220cccagggacagatcttctcc C/A ccagaogtctctttctgcct5511PEMT77intron 4 + 54371gcagataatgtgcagctggg C/A tgcatgtggttgttgctccc5512PEMT78exon 5 + 79tggcctgctactctctaagc C/C tcaccatcctgctcctgaac5513PEMT79intron 5 − 6796ggaggaagtcagcttcttac A/C gatggtggctcccagctttc5514PEMT80intron 5 − 6636ttttctcctctcaccttttg T/C gttcagaggcagaggtgtgc5515PEMT81intron 5 − 6448gttgggccaggctctgacag G/A accctcgggaccagctcctg5516PEMT82intron 5 − 5218ggagccCtggctgaagaagc C/G ttacgaccaaggcctggagg5517PEMT83intron 5 − 4824ggacaggccgggggttgagc G/A gctgcatgaaggagggaggg5518PEMT84intron 5 − 4249tcaccagagtgatttcctcg C/A ggcaggtgcctggggtagcc5519PEMT85intron 5 − 4230gaggcaggtgcctggggtag C/T cactgggcggggtccatgag5520PEMT86intron 5 − 4182ggagagtaaggggtgggggg G/A cacttaggacagggaagctg5521PEMT87intron 5 − 3369ccaggtggggccgtgtgcct G/C tggcctggtgtgtygcccag5522PEMT88intron 5 − 2625cagggaagctgggccctgaa C/T gagctgggcttttgggccac5523PEMT89intron 5 − 1200attattgtgagcatgggaag A/T gcacatttggtcacacatgt5524PEMT90intron 6 + 606gcctggctagacgcccacca A/G tgaccctgatgatggcagca5525PEMT91intron 6 + 1229tttggtccaggaagggggac G/A gcagccaggagcgtctggat5526PEMT92intron 7 + 716atggagatgtgctcccccgg C/G gggtcagaggacctgcggtc5527PEMT93intron 7 + 1537ctctgggggacgcataagcc G/A cctccagaggacatcagcca5528PEMT94intron 7 + 1718gggcttccaggtgtctgagc T/C ccccggcatgtaggacccca5529PEMT95intron 7 + 2695ggctttgggggaccctggac C/T catttctagaaaacagcctt5530PEMT96intron 8 + 140ccagggctcccaggtcagag C/T ggccatggtagcttacaatg5531PEMT973′flanking + 179tacttaggaggcgtcagggg C/T tcacctggccatggccatgg5532PEMT983′flanking + 394gatgacactgtcattcctaa A/G tgaatggccttgtgctgacc5533ALDH1A11intron 1 + 564cattatttcttcagccaagt T/C tgttgccattggagcagatg5534ALDH1A12intron 1 + 710gttctgagagtaactctgaa C/T tttgcctgtttcacactgct5535ALDH1A13intron 1 − 3868ccctttttatatccagaata C/G agcctaaacttctttctctg5536ALDH1A14intron 2 + 2933taagtatgctatactatatt T/C gatagatatactatactata5537ALDH1A15intron 2 − 1646caatgtgattaactgaatgc C/T gcaaatatgcactgtatatg5538ALDH1A16exon 3 + 54caggcttttcagattggatc C/T ccgtggcgtactatggatgc5539ALDH1A17intron 3 + 157taggccccttaacattgaac T/G attctcaaatagtaatctgc5540ALDH1A18intron 3 + 339tgagtctcctagaatgatat G/A ttaggtttattcaagcattt5541ALDH1A19intron 3 + 655agcagttagatgagtcagag C/A ataatatagttgggggaggg5542ALDH1A110intron 3 + 735gaagccaatttaacataaac C/A aataccaagatcaggtttca5543ALDH1A111intron 3 + 863gcaagtatggttaatcaaag G/A accatttattactcaaatat5544ALDH1A112intron 3 + 1757agatgacaagatttcttcta T/A ttcaaaaattccctagcaca5545ALDH1A113intron 5 + 90ttctctaaaacagatggatg C/A ttatgtatttgttaaatgtg5546ALDH1A114intron 6 + 213caggaagccaaacacaaagg T/C ttggtgtcaaacagtcaact5547ALDH1A115intron 6 + 1323ttttgaattaaattcttata C/T tgtaacttttaaacttttta5548ALDH1A116intron 7 + 638gcaaaagaaagtggtggaag C/A atactgtaccatgcaaaaaa5549ALDH1A117intron 9 + (1462-1463)aatggaattctatgtttttt (T) gttgtgattatttatctatc5550ALDH1A117intron 9 + (1462-1463)aatggaattctatgtttttt     gttgtgattatttatctatc5551ALDH1A118intron 9 + 1757tgatctagaatttagtttct A/G taaatgaatagaatccagtg5552ALDH1A119intron 12 − 1383aatcccacttattactctcc T/G gagagcttcaagtgcctata5553ALDH1A1203′flanking + 40ttttaagtacaagttttggt T/C acagtgatttcttcttgtca5554ALDH1A215′flanking − 716cagggatcctcattctgagc C/G cgaggcgagggggactcgca5555ALDH1A22intron 1 + 314cggtcccgactgccgcgggg G/Δ aaggcgtcggaaccgcttag5556ALDH1A23intron 1 + (664-675)ataacgaacgttgacatctt5557ALDH1A24intron 1 + 1370gcatgcagcttagaagtttt A/G ttttatgagggtctctaacc5558ALDH1A25intron 1 + 1557ggtacgtttttcagaattta A/Δ tttggaagctcttccagttc5559ALDH1A26intron 1 + 1934tcagctctttagtgagactt C/G taaattttctaagacaagca5560ALDH1A27intron 1 + (1971-1980)agcatagtggacaagcagta (T) 9-11 aaacgtgaagagcagaagct5561ALDH1A28intron 1 + 2295tactgtaagacaatatgtta T/C tgttttttgtcttgctaaac5562ALDH1A29intron 1 + 2387ttgggacccacatagagtca C/T tacttaaaataaatgaccag5563ALDH1A210intron 1 + 2841aggaatgtgctttttaaaac T/Δ agatggtgttagtcaaggag5564ALDH1A211intron 1 + 3035gacttttataattttgtata A/G ctgatattataggaatacac5565ALDH1A212intron 1 + 3319aaagagttatgttttttttt T/A ctgcatctgatattatatgg5566ALDH1A213intron 1 + 3474ttgtctttttatttattcat T/C taaacttctgttttctgggg5567ALDH1A214intron 1 + 4186ccttccaaacctttacttaa G/C attgtctgttttggtcataa5568ALDH1A215intron 1 + 4222cataaattgtcagtcaaact A/G catgttaatagaggacttca5569ALDH1A216intron 1 + 4254aggacttcaggttttttttt T/Δ aaatactttttcataactat5570ALDH1A217intron 1 + 4397cccttccactacatgggcct A/G tgttaccatgtggaattatc5571ALDH1A218intron 1 + 5935aactccaggttgcaaataga T/C gtttctggtattttaagtag5572ALDH1A219intron 1 + 6206ttttgaaagccctcctagca T/G ttctttaatttctttattga5573 ALDH1A220intron 1 + 9559agataaattgatgaattatt C/T actctgtgctgctgatagat5574ALDH1A221intron 1 + (9631-9632)taaaaagaatttctaaaaga (AAGA) ccttttttttgaataactct5575ALDH1A221intron 1 + (9631-9632)taaaaagaatttctaaaaga     ccttttttttgaataactct5576ALDH1A222intron 1 + 12731ctgaaatagaaacctttcag T/A gtaccttgcagagcagtgaa5577ALDH1A223intron 1 + 13442cagtgtcataaagatccagc G/A gaaatcaaaatgtttcatat5578ALDH1A224intron 1 + (14173-14176)tctaaaaaaataaataaata AAAA/Δ gagaaaattaagtttaagat5579ALDH1A225intron 1 + 14586actcatttattggttcaaag C/G cttcttcaacctaggatat5580ALDH1A226intron 1 + 14595ttggttcaaagccttcttca A/G ccttaggatatgcattgagg5581ALDH1A227intron 1 + 14711gtttgagacattaacttcta A/G ttcaactgaagatgctagtt5582ALDH1A228intron 1 + (15327-15337)gaagagcacagtagaaagac (T) 9-11 aaccctagcaatactattga5583ALDH1A229intron 1 + 17258atcagtacaatgtgttgggc A/G tacaacattaatttaaaat5584ALDH1A230intron 1 + 18277taatacaaatcatttgaagc A/G tttactattaaaaaaacaaa5585ALDH1A231intron 1 + 18734ctttgagcacctactgcatt T/A taagtgctgttaagatgtgg5586ALDH1A232intron 1 + 19081ttaatcacctcaatctttaa C/T gaatttcttgatttttcttt5587ALDH1A233intron 1 + 21514aatcaggatatggggggttc G/A ttctttattctgccacaaat5588ALDH1A234intron 1 + 21732cattttaaaatagtgcttta A/G taggacttggctgttaaagt5589ALDH1A235intron 1 + 21865tggcataggtttaaaaatgt C/T tgttgtaggactcttttcca5590ALDH1A236intron 1 + 26282taaagaaggagaaaaaaaaa A/Δ ctaatctgagactttgcagg5591ALDH1A237intron 1 + 27805ggatgatgctacccaaggaa T/C tgcacacttccagacagtac5592ALDH1A238intron 1 + 28204tcactccattttttaactgt C/G cttcctaaatgtgtggttaa5593ALDH1A239intron 1 + 28521tctttgttacacttcttaaa T/C cggggtatcagataatcttc5594ALDH1A240intron 1 + 49478gaataaaaggatagygacat G/T ggtaagaccactttttccct5595ALDH1A241intron 1 + 49834acctctcaattttctcatgt G/T taatagagagaaaaccctgc5596ALDH1A242intron 1 + 50351yactgactggttcataagtt C/G agaaatttcactgtggtgct5597ALDH1A243intron 1 + 51181tgttattaccatagtagttc C/T gtaacacttggccgttgact5598ALDH1A244intron 3 + 654ttaacctctcttgagtaaaa C/A gaatccttcagaaccagagg5599ALDH1A245intron 3 + 668gtaaaaggaatccttcagaa C/T cagaggggatggtacggacc5600ALDH1A246intron 3 + 712catacacttctgctccgttt G/T ccctgtcattctgtgagcca5601ALDH1A247intron 3 + 1273tattcatactgtgaaaaagg T/A gtttcatggtgaagaaattc5602ALDH1A248intron 3 + 1743ccacacctaaatgagattcc C/T gttttaaacactctcaagct5603ALDH1A249intron 3 + 2891tgcacatatatactcattgt A/G gtttttactaggaactagac5604ALDH1A250intron 3 + 2919ctaggaactagaccaaactg G/A cagtactagaaatcttttta5605ALDH1A251intron 3 + 3054tggaaagttctggggactta G/C tatctctccatttctcttcc5606ALDH1A252intron 4 + 290cattgtgctagattaggtgc T/C ggggtaggtatgaaggggca5607ALDH1A253intron 4 + 380ctccttgccctcctgaaaca T/C ataagatctactctttggaa5608ALDH1A254intron 4 + 461gattatggctgattttcagt G/T tctttttaatatttttctct5609ALDH1A255intron 4 + 506tctatatttctcgaacggcc G/A tgaattactttcataatcta5610ALDH1A256intron 4 + 1952ttggtccccactccacctgt C/C atttcattattaaaacaaca5611ALDH1A257intron 4 + 2079ctctatttggcctaacggta C/T cttggttttcttttacttcc5612ALDH1A258intron 4 + 2519ttgggtcataagagctctct C/C catggtgtctcaaacagagy5613ALDH1A259intron 4 + (2840-2851)tttgtctctgcatacttggc (T) 11-135614cacagtgaagtctggaatatALDH1A260intron 4 + 7231aataggatacaaatacacaa A/T gatagtgattcagatcctaa5615ALDH1A261intron 4 + 7958taaaatcgtttttattgtta C/T taggtatataaaatttgcta5616ALDH1A262intron 4 + 8090tctgattttatcactgttta C/T agattgcttagtcatactca5617ALDH1A263intron 4 + 12823tgttagcctgtagctaaatg C/T ttttcaaatatgtgaacggt5618ALDH1A264intron 4 + 12939atgaggtccgacttttaaga T/C ttttgtctacattttcttcc5619ALDH1A265intron 4 + 14935tattgatggagttcttttta T/C aaatggacttttaccttctt5620ALDH1A266intron 4 + 15321gcatttgggtgtctgagaga C/T atatccagaaatatgctatg5621ALDH1A267intron 4 + 15412tttcaagtttatttctgttt T/C tttttttttttttttttttg5622ALDH1A268intron 5 + 1888aatccaaacatctgtacttt G/T tagtggacaagatttatgtc5623ALDH1A269intron 7 + 9166gaaaagctactttattcaaa C/A ataaaagtattttaagaaaa5624ALDH1A270intron 7 + 9914aagctggagaaaatactagg C/T tttcctcaacagtgatttcc5625ALDH1A271intron 7 + 18942tttggaggggaactaatccc G/A tgacttctaggttatctctt5626ALDH1A272intron 7 + 19820ttcacccctcattttaggtt A/G ggggaggtggcttgctacag5627ALDH1A273intron 7 + 19826cctcattttaggttagggga G/A gtggcttgctacagttttag5628ALDH1A274intron 7 + 19913cgtgaatcattcagtatttt A/G tttaaaaataccagtttgaa5829ALDH1A275intron 7 + (20110-20111)catgatttattctctaacta (ACTA) tgctaagtcaaagattctgc5630ALDH1A275intron 7 + (20110-20111)catgatttattctctaacta     tgctaagtcaaagattctgc5631ALDH1A276intron 7 + 21857acaatgaaaattaagaaagg A/T gaagagggaagaagcagaga5632ALDH1A277intron 7 + 21929tacaagacacaggcatcttt A/G actagtttactgggatctct5633ALDH1A278intron 7 + 23308ggctttgacttcggaaacct G/T tgggttataacaaagtactg5634ALDH1A279intron 7 + 23554gacattggtgaaaaccaggg C/T tgtttaggagtgtcctgtcc5635ALDH1A280intron 7 + (23701-23703)catctgagatttgccttgtg GTG/Δ tttaccgagttagtgggtgc5636ALDH1A281intron 7 + 26479gatacatgaacaatttgttt T/C atcctcatgatatctttcaa5637ALDH1A282intron 7 + 26561taaaggccacaatgcagtga T/C tgaaatctccagttacattt5638ALDH1A283intron 7 + 26662tttccttagtccttccatca C/T gaaactaaagctgtcttcca5639ALDH1A284intron 8 + 76tttatatctccacttttgat C/A ggacactagcaaaagatatt5640ALDH1A285intron 8 + (700-711)ccctccacttgttgccaggc5641ALDH1A286intron 8 + 724ttttttttccctccacttgt T/C gccaggcagagctgctttcc5642ALDH1A287intron 8 + 800cagattgcttgaatttcagc C/A ccagcttggaatttgcagag5643ALDH1A288intron 8 + 1251gatttctgtgaaaattgaga C/A gatctggcaacctggggctc5644ALDH1A289intron 8 + 1627ggcccctccccaggcaaagc C/A gtgagaacatggctgtttcc5645ALDH1A290exon 9 + 141tggagcgggccaagaggcgc C/A tagtggggagtccctttgac5646ALDH1A291intron 9 + 778aaccagtctggacagatccc T/C tgtagcttgtgaaagtgtag5647ALDH1A292intron 9 + 801tagcttgtgaaagtgtagga A/C gtgaagggctggctcacttc5648ALDH1A293intron 9 + 868tctgaaggcctcgtgtactt T/C agtggggtggggagggccac5649ALDH1A294intron 9 + 1338aatttttgcctctttttact A/C tcaatacaacttgctaagtt5650ALDH1A295intron 10 + (227-229)ctatgtgcttatgattatta TTA/Δ gccaacagaacaatcagaat5651ALDH1A296intron 10 + 316ctaaatgtgggtcactggga T/C gttaaccaggagagagaatc5652ALDH1A297intron 10 + 368ctttacatctgtgcaagaga C/A ggacaaggagcaaatcagcc5653ALDH1A298intron 10 + 660gtaaacttgcattgaaatgt C/A gaaagcaggtaaaggaatga5654ALDH1A299intron 11 + 104tggggaataccaaaagcaac C/T aaagttcaccagaaaagggg5655ALDH1A2100intron 11 + 229aaacttctaaaagaaatacc A/G tgccagtcagattatgtgct5656ALDH1A2101intron 12 + 117catacattcaacaaacattt C/T gtggagcacatgctactata5657ALDH1A2102intron 12 + 691gatagggaagatcactgtga A/G ctggaaaaatctgggaaacc5658ALDH1A2103intron 12 + 1934catcttgtctagattgcatg T/C ttgtttgtttgtttgtctct5659ALDH1A2104intron 12 + 1973ctacttacccccaaaacatg T/A tttctctttcttaaatgacc5660ALDH1A2105intron 12 + 2722ccagagtgactccagtatac C/A tcactgcccaggacccacag5661ALDH1A2106intron 12 + 3855cacttgaaagcaaccataat T/C gtgaggtttctgatgctgta5662ALDH1A2107intron 12 + 4185ttgctttaagcgaaatgaac T/C atacggacaggagaacagcc5663ALDH1A2108intron 12 + 4991acaggaacacttagacatgc A/G acccactcccaccctccgtc5664ALDH1A2109intron 12 + (5018-5019)cccaccctccgtcttggggg (G) aggaaagcacactactgtcc5665ALDH1A2109intron 12 + (5018-5019)cccaccctccgtcttggggg     aggaaagcacactactgtcc5666ALDH1A2110intron 12 + (5051-5052)actgtcccaaagaactaata (A) ctgaaccagtgctgccttgt5667ALDH1A2110intron 12 + (5051-5052)actgtcccaaagaactaata     ctgaaccagtgctgccttgt5668ALDH1A2111intron 12 + (5300-5302)ttaaagttttaaaaaaactt CCT/Δ taaaaactactcatgagatg5669ALDH1A2112intron 12 + 5405catcccaggacttgctgttc G/C caggtgataaactgcacctc5670ALDH1A2113intron 12 + 5435aactgcacctccccaggact C/A ccgctgcactcacatgcagc5671ALDH1A21143′flanking + 449tttgggccgggaacaatttt T/C caaggttgtaaagccaaatt5672ALDH1A21153′flanking + 597acctgggatattcctgaccc A/C atctggttttcttttaccca5673ALDH1A21163′flanking + 669atagagactggaagtcatca T/C gtgcagttcaccgcttctga5674ALDH1A21173′flanking + 1122cgtgctccactgagctcctc T/G gtcacaccccattcttgccc5675ALDH1A21183′flanking + 2214tgcagctgtaaaaagaaatc T/C gtaaatggtgaccgtactac5676ALDH1A315′flanking − 1425cagtgttagccagccgatat C/T ggtcaaggctgccccgctcg5677ALDH1A325′flanking − 1379ccattatcccctttccccgg C/T ctcagctgtgcactccaggc5678ALDH1A335′flanking − 1270aacttacccctctatccagc T/A ctatccagaaggacaccagg5679ALDH1A345′flanking − (1214-1213)acggaggcctcaaaacagga (GGA) aaataaggagacccctcccc5680ALDH1A345′flanking − (1214-1213)acggaggcctcaaaacagga     aaataaggagacccctcccc5681ALDH1A355′flanking − 1103gcacagcttttgtcaggagt C/T cgtgcctccggtctttgttc5682ALDH1A36intron 1 + 986gccttaactttccccacctt T/G ggcttctcttgatttttgct5683ALDH1A37intron 1 + 1462gtacaggatttcaaaatact G/A tatatagaaaccagacagta5684ALDH1A38intron 1 + 1661cctgttgtcttggtgggtgc G/A caacctttgccagttaaagg5685ALDH1A39intron 1 + 2360agaggatagaagtcccttct A/G atttagagggcctctttctt5686ALDH1A310intron 1 + 2516tgaaaacatattctttttga G/A tttagctgagtggcctgttg5687ALDH1A311intron 1 + 2624cctgagacaccttacagctc C/T gtcctgcttccatgtcattc5688ALDH1A312intron 1 + 3255tttcatctttctacaaatgg G/C cccctcttcctggctgcact5689ALDH1A313intron 1 + (3643-3656)aacattctatcaacttttaa5690ALDH1A314intron 1 + 4265ccaaaagccctctcttttaa T/C atgacattaataagacaatt5691ALDH1A315intron 1 + 5187caagatggataagacgtcac C/T taaggtccttagcatgttga5692ALDH1A316intron 2 + 43ctctaagtaattcaattatg G/T atgaccaaaggataaggaaa5693ALDH1A317intron 2 + 127cagggcctgggctagctgcg T/C gaattggcatgtggttctca5694ALDH1A318intron 2 + (285-300)atcaattatttggacctgga5695ALDH1A319intron 2 + 778cgtgtgcagagtaggcttgg A/G ttttatcttgcccatgagtt5696ALDH1A320intron 2 + 1216actcggtagagtcactcctg A/C ctggtgtcccacatccactc5697ALDH1A321intron 3 + 81accatggggtatgggaaaaa A/C gatcacggtcctggttttgt5698ALDH1A322intron 3 + 236gctcagcttcttgaccaagt T/G gttgtctataggcagttgag5699ALDH1A323intron 3 + 1467ggcccggttgtaggggagga G/T atctcctttctggcctttga5700ALDH1A324intron 3 + 1725ccacatgttccccgggtgag A/G gtagctccctcccagggtaa5701ALDH1A325intron 3 + 3777gccagaagtagatgccccca A/G ttcagctgctgcattactgg5702ALDH1A326intron 3 + 3829caagtcactgggccgttagc G/C tccgtgcctgcaccttgaag5703ALDH1A327intron 3 + 4299tcactttccacagccacact G/A gccagcctggccgagaagga5704ALDH1A328intron 4 + 84agagccccccctgactgttt C/G cctaaggcaccattcccaac57O5ALDH1A329intron 4 + 126ccactccctctccaaatggt A/G ctgccaattcttcttctaag5706ALDH1A330intron 6 + (290-291)tagagaattttcaggggggg (G) tcaaccaagagggagccaaa5707ALDH1A330intron 6 + (290-291)tagagaattttcaggggggg     tcaaccaagagggagccaaa5708ALDH1A331intron 6 + 705aacagctggtgatgagccaa T/G tttccactttcctttggtga5709ALDH1A332intron 7 + 56ggggcgtgttatttgacacc C/T gtgagcttttcctttgacag5710ALDH1A333intron 7 + 1107gatgctgttactctccttgg A/G gacagacactgccctgtgga5711ALDH1A334intron 7 + 1610aagagccacacagaaccacc C/G ccctactgggctgttggaat5712ALDH1A335intron 7 + 1820cacctgtaagtggagcggct T/C agaccaaggatcccaggatg5713ALDH1A336intron 8 + 963cagaaaggacaggaggagga C/T acaggctctcaggaaggaaa5714ALDH1A337intron 8 + 1824accattcttatccactaagc G/A tgtcccccaagatcttattc5715ALDH1A338intron 8 + 2384cgcctccctcgcccctcccc C/A tccagtggacttggcagtgg5716ALDH1A339intron 9 + 24atccccctggtgtgtgtgaa A/C ccatggtgcttgtctagggg5717ALDH1A340intron 9 + 91gcctacagggtccctctccg T/C gaaaggaatgctgacctgtc5718ALDH1A341intron 9 + 219actgaggcatgggaggaggg C/G gctattcccagggcagaagg5719ALDH1A342intron 9 + 435ccagacggagagagcctggg G/A caggagaatgtatctccagg5720ALDH1A343intron 9 + 1472ttgacttttgaggccagata C/T accgatttcttccaagagaa5721ALDH1A344intron 9 + 2038taaacaatgtgttcctacgg G/A ctctccagggagtgtggagt5722ALDH1A345intron 9 + 2124caaacagggtctgccagatg G/A catatgcccagcagccaggg5723ALDH1A346intron 9 + 2154agcagccagggaggacctgc G/C gttgggcgaagcccctgtgt5724ALDH1A347intron 9 + 2197cttttggcccctcagggagg G/A gaagagcagctcagcagcat5725ALDH1A348intron 9 + 2466ttcttagttcctcatgtttc C/T ctctagaatgttttcgtgtg5726ALDH1A349intron 9 + 3655gattggtcaagtggcatgca C/T ggtttatgccctctctcctg5727ALDH1A350intron 9 + 3954gggtgcgcttttgacaactg C/G tcagtagcgtgttcacaagc5728ALDH1A351exon 10 + 88tggaatgcgggggctcagcc A/G tggaagacaaggggctcttc5729ALDH1A352intron 10 + 8tgccaaagaggaggtacaag G/A gggctgtggcaaggctacga5730ALDH1A353intron 10 + 307ctctctgattttctaacaca A/c ccggtccccgagtcagtcat5731ALDH1A354intron 10 + 378gtgggttttgccaggaatca G/A ttcaagaacctgtggattca5732ALDH1A355intron 10 + 975aatattgtgtcattccttcc C/G ctggtagttattatgyaaac5733ALDH1A356intron 10 + 1088cagtgccaggagccaggggg C/T cttctccagatgactctgag5734ALDH1A357intron 11 + 105ttgtttacattgtatattat A/G taccaagccctgtctcagtg5735ALDH1A358intron 11 + 274agggctccagtacctgtgcc T/G gtggcccctgtgctgtactg5736ALDH1A359intron 11 + 1088cagtgccaggagccaggggg T/A cttctccagatgactctgag5737ALDH1A360intron 12 + 96ctccaatctgctgacacccc G/A tcccccccacaccgccgctc5738ALDH1A361intron 12 + 1537gggccttggttggggccttt G/T tgtggctctcttttgagatt5739ALDH1A362intron 12 + 1660gtccccctcccacctcagtc C/t tgctttgtagtccatccctg5740ALDH1A363intron 12 + 5642tctgtgctaacgtctgcttc T/C ctcatgccccctaggctggc5741ALDH1A364exon 13 + 104gggctccttcctcaaacatc G/C gacggcggaatgtggcagat5742ALDH1A365exon 13 + 281ataggttgtctgtgaaatcg C/T agtcctgcctggggagggag5743ALDH1A3663′flanking + 743gtgagcaggaaactgtagga G/A aaggatattttccctcattt5744ALDH1A3673′flanking + 1145gcctcccagctaccccaccc A/G cctcaggagyggtcattcca5745ALDH1A3683′flanking + 1185aacctagggtgctgagaatc T/C gggtgggattaccagcaaaa5746ALDH1A3693′flanking + 1600acaccacgccctgcaaattg T/C tgggaacttgtcggtggcaa5747ALDH1A3703′flanking + 1847caggagccctgcggctgccc C/G ggttctgtgaaatggcagtg5748ALDH1B11intron 1 + 134cgttgcactgtaggactctc C/T ccacgtcccctaatcccatc5749ALDH1B12intron 1 + 367gcagttcccgcggatagaga A/G ggtccggtccttcccgctgt5750ALDH1B13intron 1 + 405tgtgggtgaactgtaaaaaa C/T tgcctgtattcaggaggata5751ALDH1B14intron 1 + 2002cttcaactaatctgggaaca C/T tacactctgtttaattttca5752ALDH1B15intron 1 + 2157tgggaaagctgaaaagggat G/T ctgagacctgtggttggggg5753ALDH1B16exon 2 + 192ccgacggtcaaccctaccac T/C ggggaggtcattgggcacgt5754ALDH1B17exon 2 + 265cgtgaaagcagcccgggaag C/T cttccgcctggggtccccat5755ALDH1B18exon 2 + 329gcggggccggctgctgaacc G/T cctggcagacctagtggagc5756ALDH1B19exon 2 + 614acttgccccggcactcgcca C/T aggcaacactgtggttatga5757ALDH1B1103′flanking + 168aaagtgcaactgtaagaccc G/A tayagaaaaactctggttcc5758ALDH1L11intron 1 + 252cgcagcgccaggactggccc G/C ccgaggatctggccggccgc5759ALDH1L12intron 1 + 544ctcaggggctgcgctggagt C/T ccagctccagccactgcgct5760ALDH1L13intron 1 − 6596cagatttttcttaaggtgca C/G tagccactgaggatattttt5761ALDH1L14intron 1 − 6513caattatggtttatcttagg G/A acatgtttatagagatagta5762ALDH1L15intron 1 − 6478atagtattcttacttagctt G/A cattctaaattttgttccct5763ALDH1L16intron 2 + 240gtggcattagggtcctggag A/G agggctatagagaagcccag5764ALDH1L17intron 2 + 1326gaggaggagaccggagagga G/C agccagtccagtcagggccc5765ALDH1L18intron 3 + 386gtcctactctaacttccact G/A ccgctgctctgggcagcaca5766ALDH1L19intron 4 + 271gggcccgttcaatagacaag G/C aaggctaaaggcagggactg5767ALDH1L110intron 4 + 356taggattctatttctctctc C/T ttcactcgttgattctcctt5768ALDH1L111intron 4 + 608gtgctctgataggctgtctc A/C gtcacatgcttcctgctygg5769ALDH1L112intron 4 + 664ggtcacatggcctgagcggc A/G gggcggctcagtcacctggg5770ALDH1L113intron 4 + 785gagggctgcttgcccctgcc C/G gaggacaggctggcagggac5771ALDH1L114intron 4 + 874ccctggggagcccttgctgt T/G tgggcgcagcaggaagagca5772ALDH1L115intron 4 + 1349tccctcaggctcttgctcac G/A tgggcccagactccttggct5773ALDH1L116intron 4 + 1799ctggggctgggaaggaggca G/A ggtcctattgctggggatag5774ALDH1L117intron 4 + 1815ggcagggtcctattgctggg G/A atagcaacccactggatctc5775ALDH1L118intron 5 + 272aaaycccacaggyagataag A/G gtgggagttagggggcaaaa5776ALDH1L119intron 5 + 301tagggggcaaaacgtcagcc G/A tagtgcgagcagtcttcaag5777ALDH1L120intron 5 + 343caaggtgtgagggacagtgc G/A ggtctctggagcaatagcca5778ALDH1L121intron 6 + 926cctgcctgggctactggctt C/T gggggcttcttctcacccac5779ALDH1L122exon 7 + 41aacgctgaacactteaggcc T/C ggtgcccgagggagacgctt5780ALDH1L123intron 7 + 305cctagaatcagagagaagcc C/T tcccagggagcctgggttca5781ALDH1L124intron 7 + 837gtccggacaaaccccatggg C/T gtggtacccccagccgtgtt5782ALDH1L125intron 7 + 866cccagccgtgttgctgtgtc C/T ggcctaccagagtgaggcgt5783ALDH1L126intron 7 + 884tccggcctaccagagtgagg C/T gtggcagtatggggcctggc5784ALDH1L127intron 7 + 1118aatgttccagaaaatcatgc G/C aggcagtaagggcagaggaa5785ALDH1L128intron 7 + 1168aaagtaaaggttcaggagaa G/A tctagcctggggctgctccc5786ALDH1L129intron 7 + 1451cagggcacccacagcatctg T/C ccagagacctgcaaagacag5787ALDH1L130intron 7 + 1489caggaatgcaaagaaggcaa T/C taagtgtcttaagaggaagc5788ALDH1L131intron 7 + 1579tcagggtgggaggggagtga G/A gagagaccagctgagcacac5789ALDH1L132intron 7 + 1691ctggctgggctttagcttgc A/C gaaagctccagaacatcttt5790ALDH1L133intron 8 + 1632tcaggtttgcatttgttcac T/C gtgcacattcagagttccag5791ALDH1L134intron 8 + 1799gctcaagtcctcctctagct G/C ttcaccgtgcagccccctaa5792ALDH1L135intron 8 + 1986ggtggaggggcctggcctgt G/T gctgttcaggagaacgctcc5793ALDH1L136intron 8 + 2002ctgtggctgttcaggagaac A/G ctccaagagcctgctgtggg5794ALDH1L137intron 8 + 2627aaagaggagagccgggggtg C/T ttgtgccaggggttggggga5795ALDH1L138intron 8 + 2646gcttgtgccaggggttgggg G/A aactggttctgattgggcct5796ALDH1L139intron 8 + 2925ctgctgccctccataggtcc C/G agactgaatccttcagagga5797ALDH1L140exon 9 + 4caggtcttgctttgcagagt G/T tttggcagcggatcctcccc5798ALDH1L141exon 10 + 109cagctgttagtgaggaagct G/T cgaggggacgatgaggaggg5799ALDH1L142intron 10 + (671-672)tggcattttcctctgtctga (AG) gtcctcttagcccaccctaa5800ALDH1L142intron 10 + (671-672)tggcattttcctctgtctga     gtcctcttagcccaccctaa5801ALDH1L143intron 11 + 8caccgatggaagtgtgagtg C/A aggcccagcaccccttctcc5802ALDH1L144intron 11 + 447atgagccaaagcacgcctat G/A gtagatacacacgtgaacat5803ALDH1L145intron 11 + 601ctcaaaatgagtcatttgag A/G ggagttaatgaaagactcat5804ALDH1L146intron 11 + 639catctgcaaagggagaggga G/A ggggtagggacacagacagg5805ALDH1L147intron 12 + 66ctgggcagtggcacgggggg G/Δ acttctgtggaggccctttt5806ALDH1L148intron 12 + 478ctattaaaaaaaaaaaaaaa A/Δ tttaagccagggagaaaggg5807ALDH1L149intron 12 + 684tcctgggagaagagagggtg C/T ggccagatgagccgagaaca5808ALDH1L150intron 12 + 767cgtctaggggtgcgaagcca A/G gttatggcgtggtcccaacg5809ALDH1L151intron 12 + 1014tcataggttccagtcccctt C/T gcaagcccctcaattctaga5810ALDH1L152intron 12 + 1359ctggttctgcctcagctcag C/T acagcagaggCtgygtctag5811ALDH1L153intron 12 + 1734ggtggtccaggctgctggtg G/T tcagtagggccggccgagcc5812ALDH1L154intron 12 + 1901ttcagcagcctaactgaatt G/A acaatagaatagtcctgcaa5813ALDH1L155intron 12 − 470gggatggggccacctctcca T/C ctctggagatgccaggctca5814ALDH1L156intron 12 − 334aagggcagcctcttgggcca T/C gacccctttgctgtctgcag5815ALDH1L157intron 12 − 325ctcttgggccatgacccctt T/C gctgtctgcagcaagtgggt5816ALDH1L158intron 12 − 221gaaggaagcgagggaagatc G/C aggaaaggagagagggacag5817ALDH1L159intron 12 − 4cccgcttcccctcaccctgg T/C caggttggcagatctcatgg5818ALDH1L160intron 13 + 34tcccacccagtgtgagcaca T/c gcagactggcccagccatat5819ALDH1L161intron 13 + 58gactggcccagccatatagg A/G gaactccaagggcagcacag5820ALDH1L162intron 13 + 125ccacaactggtggcttggaa T/C gacacctgtttattagcttg5821ALDH1L163intron 13 + 126cacaactggtggcttggaat G/A acacctgtttattagcttgt5822ALDH1L164intron 13 + 281acctgcatccagacgagttc T/G ggtgttgacagagttcagtt5823ALDH1L165intron 13 + 299tcgggtgttgacagagttca A/G ttccgtgtggatgcagggct5824ALDH1L166intron 14 + 121catttatcaaacagccatcc A/G tgtgcttcttgagcacctgc5825ALDH1L167intron 14 + 167gccaggcattgttgtaagga C/T ttgaggacaattgtatttaa5826ALDH1L168intron 14 + 205taatctcccagtaacactgg A/C tcagtcaggtccacggtggg5827ALDH1L169intron 14 + 219cactggatcagtcaggtcca C/G ggtgggaaacaagagtaaac5828ALDH1L170intron 14 + 2275tctcatctgtgatgcatccg T/C cagacctctgctcccagcct5829ALDH1L171intron 14 + 2431agaatgactgagtgatcaga C/G ctagagagccccagccccgg5830ALDH1L172intron 14 + 2660agccaagcatttcttgggga C/T accaagaaaccttgcttggt5831ALDH1L173intron 14 + 2740aactccaccctcaccgtcca T/C gcagctccccaggagcgtca5832ALDH1L174intron 14 + 2756tccatgcagctccccaggag T/C gtcagagggcagaggagggg5833ALDH1L175intron 14 + 2805ccgcacagcaggagaatggc T/C ccaagggagggagggacggg5834ALDH1L176intron 14 + (3636-3637)tctcctgggtgtgtgtgggg (G) tgtggggcagctcccctatc5835ALDH1L176intron 14 + (3636-3637)tctcctgggtgtgtgtgggg     tgtggggcagctcccctatc5836ALDH1L177intron 14 + 4347tccaggacagaaacagcagg C/T gtgagctgcctctcagaggg5837ALDH1L178intron 15 + 380atgtcccttatgtggcttcc A/G agaccagaagtcctggagag5838ALDH1L179intron 15 + (1055-1056)gccacaatctgcagctactc (C) tcccagcttgctgctgggct5839ALDH1L179intron 15 + (1055-1056)gccacaatctgcagctactc     tcccagcttgctgctgggct5840ALDH1L180intron 17 + 15gaaaaggtgcgtggctgggg G/C tggagcagaggaggggctgc5841ALDH1L181intron 17 + 44aggaggggctgctgtgagtg C/T gcctgggacatgycagtgct5842ALDH1L182intron 17 + 51gctgctgtgagtgcgcctgg G/A acatggcagtgctgtccaca5843ALDH1L183intron 17 − (2224-2223)ctggtgtcatctcccagact CT/Δ gtcactaaaccacaatatga5844ALDH1L184intron 18 + 140agcgtcatcacaagcatagc G/A tggcaggcagcaggcttagg5845ALDH1L185intron 19 + (51-52)tggttcactgggacagcagc GC/Δ ctggctggagggggttggag5846ALDH1L186intron 19 + 399tcaggtcagcctgggcctga C/A catggacaggggccctggag5847ALDH1L187intron 19 + 608ccaccagatttatccactca A/G ccacacctggaagagcaggc5848ALDH1L188intron 19 + (669-670)atgggccatcctgaytcccc (C) ttgggaggtttgtaatgcct5849ALDH1L188intron 19 + (669-670)atgggccatcctgagtcccc     ttgggaggtttgtaatgcct5850ALDH1L189intron 19 + 1794gtcctgtctgggggtcttaa G/C ggagtcatgagacttccaca5851ALDH1L190intron 19 + 1969tgatcggggtgcggtttggg G/T cgacaggacaggagcagaga5852ALDH1L191intron 19 + 1972tcggggtgcggtttggggcg A/G caggacaggagcagagaata5853ALDH1L192intron 19 + 2083tgagaagagcagaggggtgt G/T ccgggtgctcgagtcacacc5854ALDH1L193intron 19 '2119acacctgtgtctgattaggg C/T tgattaggggtcagagttt5855ALDH1L194intron 20 '1388ttaccctcttcccactcccg C/T tggactgtgagttccatgag5856ALDH1L195intron 20 '1564cccaggaaccaggaacagtg G/A ggagccatcaccccgccctg5857ALDH1L196intron 20 '1873tcagtgttaaaacatcattt G/A tgtatgtatgaaaaatattg5858ALDH1L197intron 20 '2427actaggattggatggacttg G/C gatcaggtctcagctctgtc5859ALDH1L198intron 20 '2458cagctctgtcacctgccaac C/T ggcggccccatttccctcaa5860ALDH1L199intron 20 + 2544ccaggtgggagagccatctg C/T agcgtggtgacacccatcac5861ALDH1L1100intron 20 + 2573gacacccatcacacgggtgc C/T gtgacccggtgcttatgtcg5862ALDH1L1101intron 20 + 2574acacccatcacacgggtgcc G/A tgacccggtgcttatgtcgg5863ALDH1L1102exon 21 + 33agccaactgttttcacagac G/A tggaagaccacatgttcata5864ALDH1L1103exon 21 + 87ccttcgggcctgtcatgatc A/G tctctcggtttgctgatggg5865ALDH1L1104intron 21 + 323ccatgcattaaaccaccccc C/G acactgagtggctttggaata5866ALDH1L1105intron 21 + 361ataatcagagatttatttta C/G tcacggtctaggttcaatga5867ALDH1L1106intron 21 + 478gtcttgcgfggaggcttcctc C/A gcgtggcagcctcggggttg5868ALDH1L1107intron 21 + 1086caacccaatcttgcccccgg C/T gctgcagcccggcacatttt5869ALDH1L1108intron 22 + 235gggcctggaggagacactcc A/C gccaggaggcactgggggcc5870ALDH1L1109intron 22 + 313atagcagggaggagttggcc G/A tgaagacccaggggcccgtg5871ALDH1L1110intron 22 + 1214tgggcccacttatgaatcct G/C cccgagttccctcagctccc5872ALDH1L1111intron 22 + 1226tgaatcctccccgagttccc T/C cagctccctcctaaccctag5873ALDH1L1112intron 22 + 1623ggggcttcccactgtccaga C/G aaggcggtgggagctgggga5874ALDH1L1113intron 22 + 1698attctggggagtCCtggccc A/G ctatccactgccagggataa5875ALDH1L11143′flanking + 145cagagacaggaggaaatggg C/T gtgggtcatctcaggcccca5876ALDH1L11153′flanking + 239tgggaaacaggtgggaagac G/A gggattgagctgggtgagcc5877ALDH1L11163′flanking + 288ggaagcagctcagactccct C/T agcagatggggccgggccct5878ALDH1L11173′flanking + 1513agggtcggctcagaccccgg A/C gtgctcctggcatgtccagc5879ALDH1L11183′flanking + 1707cggtgggacttgccctagca C/T gtgccacttataccagaaca5880ALDH1L11193′flanking + 1709gtgggacttgccctagcacg C/T gccacttataccagaacaga5881ALDH1L11203′flanking + 1745acagatgagtccatgtcaac C/T gcttcctgagttccctttgt5882ALDH1L11213′flanking + 1843ctgcctctcagcccacagcc G/A ggccgctcacactcctccca5883ALDH21intron 3 + 1766aaattggtggctcatcctgc C/Δ tggcccccttcctcctcctc5884ALDH22intron 8 + 52gaaggtagccctggccacct G/C tgttgtggctccagccgatc5885ALDH23intron 8 + 69cctgtgttgtggctccagcc G/A atcctgtcgcccccccagtg5886ALDH24intron 9 + 5197gctttcttatgaccttggtc C/A atttcccagttgtcttgttg5887ALDH25intron 11 + 114gagctgggctcagtttctcc T/C gggtcagggtgtgatgtcga5886ALDH263′flanking + 411ggatatgatttctgcccctc T/C tctgctgtgggtaaacagct5889ALDH273′flanking + (432-433)tctgctgtgggtaaacagct TC/Δ tgtttcatgcatttactttt5890ALDH283′flanking + 488ccaataagaatgtgcttgaa G/T gtttcatgcatttaatttgt5891ALDH3A115′flanking − 758crgcaggcgggtgagggtgg C/A gggaagcgcctggtgagagg5892ALDH3A125′flanking − 308agtctggaaagctggaagag c/T tccatgccaggctgaatcaa5893ALDH3A135′flanking − 294gaagagctccatgccaggct G/A aatcaatcagcagcccccac5894ALDH3A145′flanking − 3gtcccctcttggctcttgcc G/A ttccaggagccccagttacc5895ALDH3A15intron 1 + 2323actgtctcctttctttcgga C/T ctttgggatgtttacaatac5896ALDH3A16intron 1 + 2499cccgatttgccactatactt T/C cgtgtattggtagcaggaat5897ALDH3A17intron 1 + 2943caggggctagcaaggcagcc A/G gggcccaggcgtctgagtga5898ALDH3A18intron 5 + 72cacacatgactgcacctcat G/C ctgtgggtccactctgagta5899ALDH3A19intron 7 + 633cgcgtgggggtctctgcgcc G/A tccaactctggcttgtttcc5900ALDH3A110exon 8 + 36cggacgtggacccccagtcc C/G cggtgatgcaagaggagatc5901ALDH3A111intron 9 + (40-41)gctgcctccctctgggcccc (C) agggctgggcacactcaccc5902ALDH3A111intron 9 + (40-41)gctgcctccctctgggcccc     agggctgggcacactcaccc5903ALDH3A112intron 9 + 322cacagtgtggatgccctggg G/Δ acaccctagacattggccac5904ALDH3A21intron 1 + 39gggtgtggggaaactggccc C/T cgccgcgcacttgtggactg5905ALDH3A22intron 3 + 2491tgccgcgaagaaattggcac T/A gctgagttctacatgcagtt5906ALDH3A23intron 3 + 2595ttctgtacatcaacttgtga T/A ggattgaggccagttctggt5907ALDH3A24intron 3 + 2775taccgctttgcccctgacca G/A gggtaaattcttcaataact5908ALDH3A25intron 3 + 3424aggcacttctgcacacaccc G/A cgtctcatgcattttccctg5909ALDH3A26intron 3 + 3676atgttgaagagattgctgat G/A ttagacgttaggatttattt5910ALDH3A27intron 4 + 481tagaaaataagaggtttcag G/T ttctctctgctaaatccggt5911ALDH3A28intron 4 + 769atcctgctttatacctgaac G/A tcttgcaggcagagccaaaa5912ALDH3A29intron 4 + 796iggoagagccaaaagccaca A/G ccaggagagtctgtaccgaa5913ALDH3A210intron 5 + 254attagttgtggcatatactt T/G ttttaaaaaagttaaataat5914ALDH3A211intron 6 + 137aatcctgctttctggtatac T/C gtacctgtagcttttgttat5915ALDH3A212intron 6 + 923aggctaatgaatggtaagag G/A aaggggctatcctgattagc5916ALDH3A213intron 7 + 331tgcttttctgatgttaatcc A/A cagggcattgctgaataaca5917ALDH3A214intron 8 + 643tttagaacatgacctgcctg C/T ctctcccacatgtgagatga5918ALDH3A215intron 8 + 666ttcccacatgtgagatgact G/A actcagctttttatttctcc5919ALDH3A216intron 9 + 2129tgttttcatttttaaaaaaa G/T gtttgactttggaattcatg5920ALDH3A217exon 10 + (1894-1895)ttggcttgtctactaataca CA/Δ tctgcttcaaaatgaacata5921ALDH3A2183′flanking + 31gtatttgtcaactttttttt T/Δ ctcattttaaaattcttagc5922ALDH3A2193′flanking + 106gtgtgttgggggtggtggtt G/A gtagctatagtaaataggtt5923ALDH3A2203′flanking + 1630aaaagcacgtgggaaacaca A/G ttaatcatgtcttaccgtat5924ALDH3B115′flanking − 1455ctgcctgtccacacccacag C/T agcttgcacatcatccccac5925ALDH3B12intron 1 + 464catgaatgactctgggaaag A/G atcattcttagcaatggact5926ALDH3B13intron 1 + 2269aaatggaatccaaacagcaa G/C agacctcccctcaccggtca5927ALDH3B14intron 2 + 1349actgagcttctgccaccggc C/T gcctgccggccttcatgaga5928ALDH3B15intron 2 + 1820tccgtgtggaaggcaccttc C/G cccagcctcagtggctagga5929ALDH3B16intron 2 + 2046aacctcaggcgctgcctcag C/G cagggagccagcctggcccc5930ALDH3B17intron 2 + 2939aagcacgcactgaacatgga G/A tgagtgagtgaacgaatgaa5931ALDH3B18intron 3 + 7tgcccaagaacctggtgagc C/T ggccgggctgaggcgggcag5932ALDH3B19intron 4 + 36gccccttccggtcacccttc T/C ccgctcgaggcctcagggcc5933ALDH3B110intron 6 + (116-117)attctcctctctctctctct CT/Δ ggaccaggctgggagcagtc5934ALDH3B111intron 6 + 263cagaccctcatacgtgaccc T/C gctgccccccaggctcttag5935ALDH3B112intron 6 + 1298gtagacagagctggactcca T/G ccttgggtgataagggatcc5936ALDH3B113intron 6 + 1411gccagggtcacaagcagagg C/T gggaggagccaaggggtttg5937ALDH3B114exon 7 + 185acctgcgtggcccccgacta C/T gtcctatgcagccctgagat5938ALDH3B115exon 7 + 339tgcgggcattgctgggctgc G/A gcgtgtggccattgggggcc5939ALDH3B118intron 7 + 249ccagggctccagggctcagc G/A tgctaagatgaactcccatc5940ALDH3B117intron 7 + 277atgaactcccatcccaccac C/T ggctatcctgaaaggctgta5941ALDH3B118intron 7 + 498gaccaaggtcgggggattct C/T tgtgtcccacaggccctgag5942ALDH3B119intron 8 + 14cagccaggtgggggtgcggc C/T gggctgggcagggtcaggag5943ALDH3B120intron 8 + 49caggagcccgcagtgggcag C/T acaagtggtggcagcagggg5944ALDH3B121intron 8 + 111tcaggactttgggatggtgg AfT cctcttggctctgtctctgc5945ALDH3B122intron 8 + 3219atcctgatggggctcaaggc A/G gcctcacgcacatcctgttc5948ALDH3B123exon 9 + 33gtgctgacccagaccagcag C/T gggggcttctgtgggaacga5947ALDH3B124intron 9 + 946tcccaggcccccgagctgac C/A cttcttggtggccgtggccc5948ALDH3B125intron 9 + 1067aggctccccaagcctgggtc C/T ctcttgcccccacccactct5949ALDH3B126exon 10 + 137ccgcaatcgccgcgccgcct G/A aggatgctgctggtggccat5950ALDH3B127exon 10 + 397cgctcccaaccatgagagcc G/A aggtgggaggcatgggaaac5951ALDH3B1exon 10 + 1198ctcttccccatgctgctcat C/T ctcctgggccccatccactc5952ALDH3B129exon 10 + 1475caggggtggacctgagtttc G/A tctcctgtctctctggctga5953ALDH3B1303′flanking + 15cctggcaatacttacatctc A/G gtgatttgctttctgtgcat5954ALDH3B1313′flanking + 60caacaggactctggaccaag G/C ccctggcgttgggtaacaat5955ALDH3B21intron 1 + 98agggaaggggatgtgtgccc G/A tggcccgtgggtcagggggc5956ALDH3B22intron 1 + 157atggctgcaggggccatggg T/C acggggcttgctcaggagag5957ALDH3B23intron 1 + 354tctgtggacagacaaggatt C/G ggtcgggggcaccagggctg5958ALDH3B24intron 1 + 851tatgacaggtccatcaggcc T/G caccttcctgtgtgtcttat5959ALDH3B25intron 1 + 894ctcagcatctgcccccacag T/G gcttttgcacacgttggttc5960ALDH3B26intron 1 − 463aaagaaccctccgagtccct C/G gtttagtcccagaagggagg5961ALDH3B27exon 2 + 61gccttcaactgagggcgcac G/A cggccggccgagttccgggc5962ALDH3B28intron 2 + 8ggacctgcataaggtgggcc A/G tggagagtgggccccggcag5963ALDH3B29intron 2 + 23gggccgtggagagtgggccc G/C ggcaggggctggagcagcgt5964ALDH3B210intron 2 + (180-181)ttcactcctgaacactcaca (A) gccaccctgtgatgcaggct5965ALDH3B210intron 2 + (180-181)ttcactcctgaacactcaca     gccaccctgtgatgcaggct5966ALDH3B211exon 3 + 72gactacgctctcaagaacct T/G caggcctggatgaaggatga5967ALDH3B212intron 8 + 375ctgcagcatcctaacctcac C/T gtcgcgactcaaggctgccg5968ALDH3B213intron 8 + 463aatcacccccatggcacccc G/A accgtcactgagagggtgct5969ALDH3B214exon 9 + 33atgctggagcggaccagcag C/A ggcagctttggaggcaatga5970ALDH3B215exon 10 + 428aggtgtcctcactcacccca C/T cctccccaattccagccctt5971ALDH5A115′flanking − 1303gaaattgattaaactctact G/A ttatcacttctgccatatgt5972ALDH5A125′flanking − 301gtgaaaaggtgacagcagtc C/T gcaggtgcatctactggcga5973ALDH5A135′flanking − 221ggtcgcgccaggagagaagc C/T gcgcggcgcttagggcaagg5974ALDH5A145′flanking − 175agggcggcgcggcggtgcag C/G gagaaagacgcggagagagg5975ALDH5A155′flanking − 174gggcggcgcggcggtgcagc G/A agaaagacgcggagagaggg5976ALDH5A16exon 1 + 106gcggcctggtccctgcctcc G/C ggcctgcgcccggcccggcc5977ALDH5A17intron 1 + 326cctaaccgtggaggggcggg G/A agaaaggggaggggtgtcag5978ALDH5A18intron 1 + 5551gtctgtacaaaaaaaatttt T/G ttttaattagctgagcatga5979ALDH5A19intron 1 + 5555gtacaaaaaaaatttttttt T/Δ aattagctgagcatgatcat5980ALDE5A110intron 2 + 306gttttggttgtttttttttt T/Δ aaacttgtttttgtacattt5981ALDH5A111exon 3 + 107cggagacattatccacaccc C/T ggcaaaggacaggcgggccc5982ALDH5A112intron 3 + 201gtggtggcagtgagtggaat G/T atgcatttctaatgcctgca5983ALDH5A113exon 4 + 42atcacccggaaggtgggggc C/T gccctggcagccggctgtac5984ALDH5A114intron 4 + 2306atcgtgcttataaatcagtt T/C tgctaggtataaaatccttg5985ALDH5A115intron 4 + (2334-2346)tataaaatccttggctcaca (T) 11-135986acttgattatcttaaatgtaALDH5A116intron 4 + 2456tataagtcaacttttttttt T/Δ acctagatacacaaaagtgt5987ALDH5A117intron 4 + 2501tttggtttttttcccccttt A/G tctttaaagaccaataatgt5988ALDH5A118intron 4 − (64-46)cagtttggtaaattgttggc5989ALDH5A119intron 4 − 27ttcagtttggtaaattgttg G/C cacatgtttgctgtttctct5990ALDH5A120intron 5 + (4621-4824)tttgaatagataaacactta CTTA/Δ tatggttgaaaaattaagac5991ALDH5A121intron 5 + (4677-4678)accatgacaagtctcaccct (C) accccaaccctgactcactc5992ALDH5A121intron 5 + (4677-4678)accatgacaagtctcaccct     accccaaccctgactcactc5993ALDH5A122intron 7 + (432-443)tgaaaacaaaaaagtcattt5994ALDH5A123intron 7 + (3243-3244)cagtccttgtgtgtgtgtgt GT/Δ cccccaaacacactgctgga5995ALDH5A124intron 7 + 4987tttttgaaaaagaaaaaaaa A/Δ tggaactagttatagttttc5996ALDH5A125intron 8 + 2717gatcacctggaactcacagg C/T gtggtaggagacgtgcagcc5997ALDH5A1263′flanking + 2711cagtgagtgccttggggaag G/A agccagcatgtgaaatgatg5998ALDH5A1273′flanking + 2777gtccatggtgtgcgcttata G/A aatgtttgctaagctgaact5999ALDH6A115′flanking − 1303ctctaaagcagaaccaagag G/C aaaagcatgggagtatacca6000ALDH6A125′flanking − (1273-1270)ggagtataccaaaacaactt AATT/Δ gttacttgaaatgacttgca6001ALDH6A13intron 1 + 437tgccattgctcccttccccc A/T ccctacttcactatccgtgg6002ALDH6A14intron 1 + 835gttcccaccccaaaatcagc T/Δ cttctagtgctacacaccct6003ALDH6A15intron 1 + 1294atatttcttgctgcgatcct T/C gttctgttctagtatctttt6004ALDH6A16intron 1 + 1447gagtcattgagaaccttaag A/G aagtattttgtccttttcca6005ALDH6A17intron 1 + 2536agtcttgccatctctttcta T/C gttaggcactgacataggct6006ALDH6A18intron 1 + 2703caggagaggaaggagttcct G/T ataaaggatatagcaagtag6007ALDH6A19intron 1 + 2802gcaacaatgctaatgggtgt T/C tcttaggaaatgaagaaaag6008ALDH6A110intron 2 + 2333gtttgtttgtttgtttgttt G/Δ tttttttcagccaactgtaa6009ALDH6A111intron 4 + 138gactctctcccttgtactgc A/G tctcctccagtcttattctt6010ALDH6A112intron 4 + 200aaagaggaacattcttgcat T/C aatttctatttgtgtgtctt6011ALDH6A113intron 5 + 291ggcaagtcagtgtaccctgc G/A ccccttcattggcctgaacc6012ALDH6A114intron 7 + 209tcccgggttcaagCgattct C/A ctgcctcagcctcccgagta6013ALDH6A115intron 8 + 287gcctcctgagcagcttggac C/T acaggtgcgggccaccacct6014ALDH6A116intron 9 + 877gatatcaaaatataaacata C/T agacatatttgggaggcaaa6015ALDH6A117intron 9 + 885aatataaacatacagacata T/G ttgggaggcaaaggagtgaa6016ALDH6A118intron 11 + 40ttttgtcttttcctttaaga A/C attttcttaaagatattcag6017ALDH6A1193′flanking + 520cctgcaaagttttctttagc C/T cctcttttatcccacaatac6018ALDH6A1203′flanking + 1026cgtgttggtcaggctggtct T/C gaactcctgacctcaggtga6019ALDH6A1213′flanking + 1035caggctggtctcgaactcct G/C acctcaggtgarccgcctgc6020ALDH8A115′flanking − (837-836)gctgaacattgttaatatat (AT) tcattagccaattgtgttcc6021ALDH8A115′flanking − (837-836)gctgaacattgttaatatat     tcattagccaattgtgttcc6022ALDH8A125′flanking − 702gggatctgaagcccttgcta C/T atgtgtcacacatgtttttg6023ALDH8A135′flanking − 642gcacatctaggaagatgtga G/A cagccactgtggccccggtt6024ALDH8A145′flanking − 84atgctctctgagagcgtcag G/T tgccctcccacattcactga6025ALDH8A15intron 1 + 5437gcattggttgaaatggagcg T/C gtttctttgtttctatggta6026ALDH8A16intron 1 + (5836-5855)gtgagaatccatctaaaaaa (CAAAA) 4-56027atgaggtgtgtggagacctgALDH8A17exon 3 + 146cactacacggtgcgggcccc G/T gtgggagtcggtgagtgctg6028ALDH8A18intron 4 + 1033aggtctttttgctatgtcac C/T ccacggccagggcaggagtg6029ALDE8A19intron 4 + 1037ctttttgctatgtcacccca C/T ggccagggcaggagtgctgg6030ALDH8A110intron 4 + 1662tctctcctgagaccaagaac G/A tctggatagatgatgagtta6031ALDH8A111intron 4 + 2046agtcctgggcatttaaacag A/c cttgacagataaacttcctt6032ALDH8A112intron 6 + 1146ttttccagatgcaagagact C/G ccttgttctctctccttctg6033ALDH8A113intron 6 + 1744ttcttcttcttcttcttctt C/T tttcttttttaacatgtact6034ALDH8A114intron 6 + 9802tgagtgtgaattctaacttt A/T ctgtttattagctctatgaa6035ALDH8A115exon 7 + (1089-1098)tacagtgagaccttgtcttt (A) 9-10 tgctgcaaaaccaaaaataa6036ALDH8A1163′flanking + 848ctcagctgagtccccttgac T/C ttaatcactttagtgaagaa6037ALDH9A11exon 1 + 121actgtgtggggtatggcggg G/A tggtggggagaatgtggtgt6038ALDH9A12intron 1 + 67cgcggatttcccggccagcc C/G ccgtttcctgtgttctgcag6039ALDH9A13intron 1 + 103tgcagcgttgacttgagcac A/G agacagtgacagtggagagt6040ALDH9A14intron 1 + 1818gaatttttgagaaaaaaaaa AΔ tgttcctttagggttgcctt6041ALDH9A15intron 2 + 5891tcaggaacaggaagtaaaga G/A gtttacatttctaaatttct6042ALDH9A16intron 2 + 6398atcaaaaacacttgtctgat T/G atcgtgctctgaacctgcct6043ALDH9A17intron 2 + 9677atgacgctgagtttggtgct A/G ttcttttgtttttcttgcct6044ALDH9A18intron 2 + 9991gggagaagtgagggacctac C/T cttggcttctaatctttcat6045ALDH9A119intron 2 + 10198ttgtcagagacatctttgat A/G atccttacgtactatatcag6046ALDH9A110intron 2 + 10256ttagtagataactttttttt T/Δ gtaaggatggagaataatag6047ALDH9A111intron 2 + 11382catattcaattcttttatgt T/C ctttagaccaaagaaaggca6048ALDH9A112intron 2 + 11455taaacctttaagctcatcat C/T ggaccatctattgaatttct6049ALDH9A113intron 2 + 12044atttaaagtgaaagctattt C/T tagttttaaaaattgagcag6050ALDH9A114intron 3 + 334ctatttagcaaacttttttt T/Δ gacagtgtataaagttttca6051ALDH9A115intron 3 + 368gttttcaacaattgatattg G/Δ aaggttggtagggcctagga6052ALDH9A116intron 4 + 191ccctcaaggagcttatagtt T/A aggttgtacacaatcatgtc6053ALDH9A117intron 4 + 557tagaaaaaattgtaatgtta A/G aaagcattactgttaggaca6054ALDH9A118intron 5 + 830agttcaagatgattttgtag G/C ttcagggcctagttgactta6055ALDH9A119intron 5 + 838atgattttgtaggttcaggg C/T ctagttgacttagcatgcaa6056ALDH9A120intron 6 + 120agaaaagttgcacaaatagt A/C caaagaattcccatgtacct6057ALDH9A121intron 6 + 2569attaaaatctgctttaaata T/C ttttttgggggagaggacac6058ALDH9A122intron 8 + 1414ccgatcttcaaaaaattagc T/C gggggtggtggtgcacactg6059ALDH9A123intron 9 + 664aaagttcacatttttttttt T/Δ ataacttcatggtcaagagc6060ALDH9A124intron 9 + 2170taatgcacecattttttttt T/Δ cttcatagggacatccaacg6061ALDH9A125exon 11 + 587aaaacaaaaaacaaaaaaaa A/Δ ccttgttcctttataggttc6062ADH11(5′flanking region −55)atcatgtgtggaactggaat C/T gggtgttattcaagcaaaaa6063ADH12(intron 1 268)acatttgcggtaaagcgata A/G tttattccaagctaatcatg6064ADH13(intron 3 443)aatgga g/c gctacatggctat G/A gctgaatgagcatgaccttt6065ADH14(intron 6 56)tacaacttggaggatgcatt T/G aggctgcagaatatatgttt6066ADH15(intron 8 74)gtttagcagaaaatgaaaag G/A tggaaggatgagaaaaatta6067ADH21(intron 2 340)ctattttttaaagcgtgcat T/C cttacataagacttaaatat6068ADH22(intron 3 91)aaggcaatgagagacgaaag T/G gcttgcacaaggtcaccgcg6069ADH23(intron 5 205)atgtattgtacccttcaacc A/G ttatgtaccgagtatctact6070ADH24(intron 7108)acaattgacaaggcaagatt T/C tgaaaacaaatcaaaaataa6071ADH25(intron 31721-1723)actgcatagaaatttaagaa GAA/Δ cttgttttattcctctccag6072ADH26(3′untranslated regiongttaatgctttcccactctc AG/Δ gggaaggatttgcattttga60732305-2306)ADH31(5 flanking region −254)tgagagaagagaagcaggaa C/G ttgagagaggaggaagagag6074ADH32(intron 2 355)tatgcattcttctatattat A/G caagacaaaaattttaggat6075ADH33(intron 3 32)acactcagggaacatgcctt G/A gttcaccatcacaagattag6076ADH34(intron 4 6)ctgcttgaaaaatgagtaag C/T ttctgatgctttctttgcac6077ADH35(coding region 453agcaccttctcccagtacac A/G gtggtggatgagaatgcagt6078(Thr 151 Thr))ADH36(coding region 815ttcgtttgaagtcatcggtc A/G gcttgacaccatggtatgat6079(Arg 272 Gln))ADH41(5′flanking region −482)acagccagagacccagaacc A/G tcagggctggttgatggact6080ADH42(5′flanking region −437)catcaggtgggacaaaaaga G/A tagctccttagcagtgacta6081ADH43(5′flanking region −234)actcaagcatatgtgcaacc A/G agtacatgaaaagaatttgt6082ADH44(5′untraslated region −361)ggtaagttaaatgggcgatt C/G tgaggagtagaaatttcctt6083ADH45(5′untraslated region −253)ttcaataaaagaaaaaagaa T/A ttaaaaaatcttggagctca6084ADH46(intron 1 707)ttatatttgaaattaaaaat A/G taatttgaggctagaaaaaa6085ADH47(intron 5 619)tcaaagagggatctcacaat T/C ggacatctcaacctgcttat6086ADH48(intron 5 1755)tttacgcacacaattactca T/C taataaaaaatttaaaaaat6087ADH49(intron 5 3425)actgagactctggagcaata T/C attaagaatcatactgaaca6088ADH410(intron 1 1181-1189)ggtaaactttaatacacctg (T) 9-11 caagaaataaaaaatgtaat6089ADH411(intron 5 2828)tccagtcaaagtcgacctaa A/Δ tttccaggagttgttcttcc6090ADH412(intron 7 15)ttggtggtcagttttttttt T/Δ cttcatagctttaaattctt6091ADH51(5′flanking region −115)taactgctgtaaagttacac G/A g/a ggaagccctttcccgacaa6092ADH52(5′flanking region −114)aactgctgtaaagttacac g/a G/A ggaagccctttcccgacaaa6093ADH61(intron 3 249)tgaaactggacttgaaagta C/A aaatgagacaaaaatttatg6094ADH62(intron 6 1072)taacccctatactgtattgc A/G tcactttctaacaggcagct6095ADH63(coding region 885gtctgtgtggttgttggggt G/A ttgcctgccagtgttcaact6096(Val 295 Val))ADH64(intron 7 1292)gttgagaaacactgcctagt C/A ccgtctgtggtcctagaatt6097ADH65(intron 7 1616)ctatcacagaataatccgca T/C agaacactaagcagattacg6098ADH71(5′flanking region −528)tgtgcagacacagaaagttt T/C acttaactttctacacctaa6099ADH72(intron 1 361)tcagtagcatgtgctgcact C/T gctgcagtagttcaatggga6100ADH73(intron 3 183)aacctcaacctttagaaggc A/G aaccttacggtgtttataaa6101ADH74(intron 4 76)tgaattgaattaattaatac G/A tgtatttgatgtatcaaaca6102ADH75(intron 6 615)tggcatagcgtaaagagact T/A ggaaaaatggaataaagcca6103ADH76(intron 8 532)aagtctaaccatatcaccaa T/C ttagtatgccattgtactat6104ADH77(intron 8 651)gctgctatttatttcaagta G/A gccacaaaatttccttattt6105ADH78(intron 8 727)ttcagatccctgtaagccag G/A tattatttttaccattttta6106ADH79(intron 8 1207)tctccacatttggtctagcc T/C acaggatcatcatattatga6107ADH710(intron 8 1691)tccctcatctcattgcccac G/A ctcattgctttaattcagtc6108ADH711(3′untranslated region 1364)atttacattttgtaaggcta T/C aattgtatcttttaagaaaa6109ADH712(3′untranslated region 1498)gatatagtaaatgcatctcc T/C agagtaatattcacttaaca6110ADH713(3′untranslated region 1584)aaacacttgttatgagttaa C/G ttggattacattttgaaatc6111ADH714(3′untranslated region 1818)aatataaacatagagctaga A/G tcatattatcatacttatca6112ADH715(3′flanking region 865)tacatcaaaagaaataaatc C/T aagaaggaataaacacattt6113HEP271(5′flanking region −191)tcagcactctgtgtctagct A/T aaggtttgtaaatgcaccaa6114HEP272(5′untranslated region −163)gaacccatcaattccgtaca C/A attttggtgactttgaagag6115HEP273(intron 1 1941)aaatttaccctaaccagcct G/C actctctgccactttctgtt6116HEP274(coding region 289ttgtgtgccacgtggggaag G/A ctgaggaccgggagcagctg6117(Ala 97 Thr))HEP275(intron 4 1070)tgtctcagttcacaggatca T/C gactctttttctcgaaactg6118HEP276(3′flanking region 362)ctgctttgtgtgtgctccatt A/G tctgaactgggcctgctggg6119UGT1A11(5′flanking region −1337)tctttcccttttgacttcaa A/C tcagtcatcagaatttcccc6120UGT1A12(coding region 211cctcgttgtacatcagagac G/A gagcattttacaccttgaag6121(Gly 71 Arg))UGT1A13(intron 1 2925)gcatttgggaagggaaaatc T/G aattaaaagcctaaactaaa6122UGT1A14(intron 1 3442)agactcggccttttccagat G/T agcttcagtgtaagagtggg6123UGT1A15(intron 1 3512)ttaagtaagccatttaccaa C/T gctcagaagaaagaacttga6124UGT1A16(intron 1 3665)tcttgctacaaaccaaaaaa T/C gcagcatggtggtggggagg6125UGT1A17(intron 2 15)cagacagtaagaagattcta T/C accatggcctcatatctatt6126UGT1A18(intron 4 574)agatttaaaactccaattta C/T ataaaaagttgccataatag6127UGT1A19(3′flanking region 125)tatagaggttcacacacaca C/T gccttcattgcgtgtgcatg6128UGT2A11(5′flanking region −1602)ataacatcttctgcagagaa A/C cttcaatggaaatacactca6129UGT2A12(5′flanking region −1480)tacagattatctttggtgat G/C ggagagcttagaagagacat6130UGT2A13(5′flanking region −1406)atttcagaagatttattaac A/T tgaaaaggatcactctg c/t tt6131UGT2A14(5′flanking region −1388)acatgaaaaggatcactctg C/T ttattcacagacatatgcat6132UGT2A15(5 flanking region −935)aaattattcaatctctttgg G/A cagtggtttctttttctttg6133UGT2A16(intron 1 535)cattgatcagggtgatttat C/T catgctaagcttatttaatt6134UGT2A17(intron 1 642)tatattgatcatgttgatac A/C tttatacacatatttgtcta6135UGT2A18(intron 1 1448)aggtgcttacaggcaacatc C/T acatagcagtctgtggctgg6136UGT2A19(intron 1 2000)gacacattagcttcttttct A/G cagatctctgttctaaaaca6137UGT2A110(intron 1 3118)cttaaaattctttaatgaaa T/G cattgcaacaaatttatatc6138UGT2A111(intron 1 3191)ataaatagaacaactcccta A/T gtttacttctctgcagtgga6139UGT2A112(intron 1 3770)atcaccagataatttactat C/T cattaaggagtaggtcatca6140UGT2A113(intron 1 4584)tgattggttagaatctttga A/C aaatcttctagtatcattcc6141UGT2A114(intron 1 4854)tactctgtgcattgttaata G/A cctatcacttgtggtctgcc6142UGT2A115(intron 1 −19146)ctgtttaaattctcattcaa C/T ggccacatggttaaaataaa6143UGT2A116(intron 1 −19085)tagacaaagaccctttcaat A/c aacaaagttagaaatgtgtt6144UGT2A117(intron 1 −18346)atggcaatatttttagaaat G/A ttaactcccaataatgaata6145UGT2A118(intron 1 −18218)tatatcattattttaactta T/G agatagcactagccctaatt6146UGT2A119(intron 1 −17937)ctcctaataatttggactca C/T catacttattcagcactatc6147UGT2A120(intron 1 −12585)ttccacacagggacaagtca A/G cagaggaaatttttcttgct6148UGT2A121(intron 1 −11430)aacaaaggtttattttctta C/G agttctgatggctagacgtc6149UGT2A122(intron 1 −10761)tttaaaatatgcatgtattt T/G ccacttttaaaaactatatc6150UGT2A123(intron 1 −381)aaatcctccctccttccttc C/T tttcccaggccccactctac6151UGT2A124(intron 1 −329)ttccctttctccttttctCc A/G tctctctctcttCCtctctc6152UGT2A125(intron 1 −41)ttttctcctcagcaaacata T/A aagctaatttcctccatcca6153UGT2A126(intron 2 263)caccttgatactggacttgg T/C gggacagaaaaccagatcat6154UGT2A127(intron 2 454)agaaagcccattgaaataag G/C cagggtttttaggttttaat6155UGT2A128(intron 2 554)aaaaacttttttgagttgac A/T atggtgagtttagtttctga6156UGT2A129(intron 2 1113)ctgcaggcaagctctagtga A/T tgtttattataggaaataat6157UGT2A130(coding region 922 (Gly 308 Arg))gtgttgtggtgttttctctg G/A gatcaatggtcaaaaacctt6158UGT2A131(intron 3 −217)aagcttagaagtgataaata T/C caaaacaataatactatact6159UGT2A132(intron 3 −194)aaacaataatactatactgg G/A tagactattagtacaagact6160UGT2A133(coding region 1171acggagtccctatggtggga G/A ttcccatgtttgctgatcag6161(Val 391 Ile))UGT2A134(intron 5 1546)tttttaaaattcagaaactc A/G g/a ttatggtgtattcttacaa6162UGT2A135(intron 5 1547)ttttaaaattcagaaactc a/g G/A ttatggtgtattcttacaaa6163UGT2A136(intron 5 2505)taattgacttttattaatac G/A tacatgttgtataagtcata6164UGT2A137(intron 5 2639)tagactattacaaagttgtt A/G gttgctgacaattttgttca6165UGT2A138(intron 5 4009)gaatccaggctggaactttt C/A ttccagacacaaaccaaaat6166UGT2A139(intron 5 4311)atacagacactgtccttttc G/A tcacaaacatacagatgtgt6167UGT2A140(intron 5 4616)acttttttatgtctacattt G/C atcatactgtgttaagcata6168UGT2A141(intron 5 4717)tgcaagaattatattttctc C/A acgtaactatggccttaaac6169UGT2A142(coding region 1524gctatatttttggtcataca A/G tgttgtttgttttcctgtca6170(Gln 508 Gln))UGT2A143(3′untranslated region 1683)aaggagtttaacaaaaacac G/A tctcccatcctgtttccaaa6171UGT2A144(3′flanking region 685)aatctagaaaataattatca T/C ttttataaaatttttagtca6172UGT2A145(intron 1 ( −18967) − (−18965)ctcccaattagattgattag TAT/Δ gagttcctggggttactggt6173UGT2A146(intron 1 (−18862) − (−18803)aatacattcttcccccttca (AC) 14-176174atgcttactggcctatttatUGT2A147(intron 1 (−17463) − (−17447)gtaaagaaaatggcagagaa6175UGT2A148(intron 1 −10860)attcaatgcaactttttttt T/Δ gtaatggcagaattagaaca6176UGT2A149(intron 2 528-538)ctgttaggaaacaattggtt (A) 8-106177cttttttgagttgacA/TatggUGT2A150(intron 2 1514-1533)tattttaatgaattaatatc6178UGT2A151(intron 5 916-917)gcttagtatattatatatat AA/Δ gtctatatatatagcttagt6179UGT2A152(intron 5 1163)caatatttatgtcatttttt T/Δ ctcacatttactctgtttcc6180UGT2A153(intron 5 3819-3838)tcaacacatgtaaactactc6181UGT2A154(intron 5 4785)tatcttcaatgaaaataaaa A/Δ caaaaattgtctaatttctg6182UGT2B151(5′flanking region −277)acgaacaggcaggagcctct C/A acttgccactgttcttaaca6183UGT2B152(intron 1 670)catcaaagaaaataggggcc A/T aattaagggagagcacatat6184UGT2B153(intron 1 775)ctaattatattaagatctta A/C gatgaaccaagacagtagta6185UGT2B154(intron 2 2183)cagagtttcaccatgttggc C/T aggctggtcttgaactcctg6186UGT2B155(intron 2 2430)tatttcaaaagaataagact C/G ttgccaaaaagtatcaagtg6187UGT2B156(intron 2 4806)aaaaacttactccaatagct C/T ctga c/g tttctcetcttagat6188UGT2B157(intron 3 129)ctaattatctcagacatctg T/C tcaaa g/a caaaaacatatatg6189UGT2B158(intron 3 424)ceataacaataagcaggtat T/C gaaaaaactttgaaatgcat6190UGT2B159(intron 3 493)ggc t/a gtttttacttcccatg C/T attggaataggtctatttag6191UGT2B1510(intron 3 906)gccctctctgaatgatctat G/A caagtttttgctgaaaacac6192UGT2B1511(intron 3 1036)tcagtaccttagtttggtac T/C agacatggtaatgactggct6193UGT2B1512(intron 3 1544)aataaatatataggttatta C/G taatttgctacttttttatt6194UGT2B1513(intron 3 5550)gtgtggtgaatcaatgtgtg C/T tgcttgtgggcagtactcca6195UGT2B1514(intron 3 5720)ttttttaaaagttaattttt C/A ttggggatttccctgcaggg6196UGT2B1515(intron 4 134)atcaaatttaactcctttat A/G tttattttccagtcttagta6197UGT2B1516(intron 5 6627)ttttaatgttgatatcttta T/C atttatccttcagctataaa6198UGT2B1517(coding region 1568 (Lys 23 Thr))tttccgaaagcttgccaaaa A/C aggaeagaagaagaaaagag6199UGT2B1518(3′untranslated region 1761)ggatttaatacgtactttag C/T tggaattattctatgtc a/t at6200UGT2B1519(3′untranslated region 1779)ag c/t tggaattattctatgtc A/T atgatttttaagctatgaaa6201UGT2B1520(intron 2 1980-1981)aagagagtagcagaataagg (AGG) acaagggataaatgactagt6202UGT2B1520(intron 2 1980-1981)aagagagtagcagaataagg6203acaagggataaatgactagtUGT2B1521(intron 3 605-618)cttgtctgctctgctgactt6204UGT2B1522(3′untranslated regionaagtataatttaaaaaaagc (A) 11-1462051957-1968)tacaactcttttttttaaacUGT81(coding region 677 (Pro 226 Leu))gcagaagtacaacctgctgc C/T ggagaagtccatgtatgatt6206UGT82(coding region 741 (Ala 247 Ala))atgctgtgtactgacgtagc A/G ctggaattcccaagacccac6207UGT83(intron 2 53-54)ttgacaatcaatatctcctt GT/Δ ttagtgcacaggtcccagta6208GSTA11(5′flanking region −266)ttgcaaaaagagcaaaatct C/A ggtgaaatgtattgtgtaaa6209GSTA12(intron 2 1220)gagacacaggctttcctaag A/C tatgacaacaccataactag6210GSTA13(intron 4 1813)aaaggcacccactggaggtg A/C attattttgccatcacctga6211GSTA14(intron 5 732)gaagagtgttgtcatgaagg T/C ggagtcactgcccaagggag6212GSTA15(intron 6 333)ttatcccatatgtgcccaca A/G tgagccggtctgagcagagc6213GSTA16(3′flanking region 412)ctttcttatgcatttgcaaa A/C caatgattctgtctgctgtg6214GSTA41(intron 1 280)gcattggtggaaggtgggct C/T ggatcgtccccgggcctggc6215GSTA42(intron 3 176)ggaaatcacttcttattcaa T/C agttccataaaagctggccg6216GSTA43(intron 4 94)acaccacatttactttatgt C/G ttacatagttagtgagatca6217GSTA44(intron 5 1062)cacacttgtgcacatgcaga C/T acccatgggcatccaagagt6218GSTA45(coding region 487cagatgtgattttactccaa A/G ccattttagctctagaagag6219(Thr 163 Ala))GSTA46(intron 6 595)tgagctctgagagcaaatga G/A agatgtt a/g gcaccctaaaca6220GSTA47(intron 6 630)taaacatcaccccaaaggat T/A cctaccattctccttctgsg6221GSTA48(intron 6 3943)tcttcgtagtatctaatacc T/C tttttgttagccttaaagtt6222GSTA49(3′untranslated region 1099)taataacaaccgaatgtcta G/A taaatgactctcctctgagc6223GSTA410(intron 5 370-371)gttgtcgaacagctgtctca (TA) gctgacatcctccctgataa6224GSTA410(intron 5 370-371)gttgtcgaacagctgtctca gctgacatcctccctgataa6225GSTM11(5′flanking region −694)tacgaagtggctaatttaca C/T agtacttagccagstgaccg6226GSTM12(5′flanking region −661)gatgaccgaaggactcagta C/T ccgagggcccctaacagaaa6227GSTM13(5′flanking region −658)gaccgaaggactcagtaccc G/A sgggcccctaacagaaaacs6228GSTM14(5′flanking region −858)ccgaaggactcagtacccga G/A ggcccctaacagaaaacaca6229GSTM15(5′flanking region −537)tagaggggagactasgccct G/C ggagtagctttcggatcaga6230GSTM16(5′flanking region −525)taagccctgggagtagcttt C/G ggatcagaggaagtcctgct6231GSTM17(5′flanking region −465)aattaaattcccaggttggg G/A ccaccactttttagtctgac6232GSTM18(5′flanking region −383)gcggagagaaggctgaggga C/T accgcgggcagggaggagaa8233GSTM19(5′flanking region −382)cggagagaaggctgagggac A/T ccgcgggcagggaggagaag6234GSTM110(5′flanking region −378)gagaaggctgagggacaccg C/T gggcagggaggagaagggag6235GSTM111(5′flanking region −343)agggagaagagctttgctcc G/A ttaggatctggctggtgtct6236GSTM112(intron 2 118)tgctggagctgcaggctgtc T/C cttccctgagccccggtgag6237GSTM113(intron 3 233)agtgagtgcccggrctcctc T/C ctgctcttgcttatgggaag6238GSTM114(intron 4 26)tgtgggtggctgcaatgtgt G/A gggggaaggtggcctcctcc6239GSTM115(intron 5 140)actatcagcagttattctca C/T gactccaatgtcatgtcaac6240GSTM116(intron 5 577)ctgccaccccattagaagga A/G ctttctactttccctgagct6241GSTM117(intron 5 645)gctggtctggatccagaggc T/A gccaggtgcttgggcgctcc6242GSTM118(coding region 519caccgtatatttgagcccaa G/C tgcttggacgccttcccaaa6243(Asn 173 Lys))GSTM119(coding region 528tttgagcccaagtgcttgga C/T gccttcccaaatctgaagga6244(Asp 176 Asp))GSTM120(intron 7 2421)cagcaccgtgtagaatcttc A/G taagtgttagctgttactgt6245GSTM121(3′flanking region 42)atttgctcctggccatctac C/T cagactgtctgtctgtctgt6246GSTM21(intron 1 7)ggaacatccgcggggtgagc C/G agggtccgctgggcggtggg6247GSTM22(intron 1 45)gggacgggggtgcgtggggg C/T ggggaagtgtggagcagctg6248GSTM23(intron 3 70)gactgcatctcctctcccca G/C cttagaggtgttaagatcag6249GSTM24(intron 3 224)agcaggccctggtctcctct T/C tgcccttgcatatgggaagg6250GSTM25(intron 5 100)ttgattccttctggtgagtt C/A ttggtcttgctgactctaag6251GSTM26(intron 5 341)tcctcttggtgggttcatgg T/C ctggctggcttcaggagtga6252GSTM27(intron 5 696)acctttagctagacacagsg C/T gctgatttgtgcatttacaa6253GSTM28(intron 5 723)ttgtgcatttacaatccttt A/G gctaggcagaaaagttctcc6254GSTM29(3′untranslated region 1006)ctcagccccgagctgtcccc G/A tgttgcatgaaggagcagca6255GSTM210(3′flanking region 139)ttctgctgggcatsgtaagg C/T gcttgagaattcttgctccc6256GSTZ11(5′flanking region −546)agcagggcccaccagccgac C/A gcctcgaagcgccgtgagcc6257GSTZ12(5′flanking region −321)tttctgaccagccgccccgc T/C aaggagtcacaagagggcag6258GSTZ13(intron 1 2890)aaaatactgcatcaaaacca G/A gccacgctctgttgggggga6259GSTZ14(intron 1 2896)ctgcatcaaaaccaggccac G/A ctctgttggggggacaccaa6260GSTZ15(intron 2 255)tctcccaacactgctctcca A/G agccccttggcaaccatgtt6261GSTZ16(intron 2 1560)caccactgtttaaggccctg G/C gggggcagagttaaacacaa6262GSTZ17(coding region 94 (Lys 32 Glu))ccttgaaaggcatcgactac G/A agacggtgcccatcaatctc6263GSTZ18(intron 4 297)agaaggaggagtttgctggc C/T ctgtcccctctggtccaggg6264GSTZ19(intron 6 94)tatctgaaccagcctcccag G/A ctgctttgggcctgacagtt6265GSTPi1(intron 1 269)ctcccccgggctccagcaaa C/G ttttctttgttcgctgcagt6266GSTPi2(intron 2 134)ccccgggcctccttcctgtt C/T cccgcctctcccgccatgcc6267GSTPi3(intron 5 438)gtgtgtgcgcgtgcgtgtgc G/A tgtgtgtgcgtgtgtgtgtg6268GSTPi4(intron 6 162)cccgctggctgagtccctag C/T ccccctgccctgcagatctc6269GSTT11(5′flanking region −103)taaagagtgtcccaggcgtc C/T gtgccgcccaatggggcaca6270MGST11(promoter region −1879)ttaataastgtttattcaat T/G aaaccaactgctaatattct6271MGST12(promoter region −508)tctggaccctgaacaggagg G/C gacatcgtgacaaagcaaat6272MGST13(promoter region −314)cctggagattttaactttct G/A cgaagtttttaaaaacaact6273MGST14(promoter region −131)atcagcaggcgatggttact G/C tgggcgggtaaatcaggtga6274MGST15(intron 1b 36)ggagaaggggaccgcatgca A/G agggtggcaggcagggaggg6275MGST16(intron 1c 456)ccccttgggacggttctcac C/T tgtgccccacttccccagtc6276MGST17(intron 1c 719)gcccgcaagcattgctgtat A/G gcacccaggcctccagtgag6277MGST18(intron 1c 985)cgagtaaaatttttctaccg C/G tttgttttagagtggtgtct6278MGST19(intron 1c 1428)gtaaagggaaagggcgttcc T/A caactgagaagtgaagattc6279MGST110(intron 1c 2914)ctcatcaggtgtgtgtcaga T/G gcttggtgctggccagtctc6280MGST111(intron 1c 4274)attgtaatagattaacaaag G/T tgatgaaagtagtgtacata6281MGST112(intron 1c 4276)tgtaatagattaacaaaggt G/T atgaaagtagtgtacataat6282MGST113(intron 1c 4767)gccttcctcttcagcacatt C/T ccaattatacttccaattcc6283MGST114(intron 2 2379)ttctcaaatttcattataca G/C tattcttcaacccaaagttt6284MGST115(intron 2 2767)tttaactatagatgccttct T/G ctcctcttgtgtttgattta6285MGST116(intron 2 2974)tcactgcagcctcaacctct C/T gggctcaggtgatcctccaa6286MGST117(intron 2 3083)aaaaaatttgtagatatggg T/G actccctatgttgcccaggc6287MGST118(intron 2 3106)tccctatgttgcccaggctg A/G tcttgaattcttgggctcaa6288MGST119(intron 3 1495)gtcagacaatggccttcagc G/A tcctctctttgcagaatatg6289MGST120(intron 3 1703)ttctcttctaagaagaagtc T/C gtgcagatacttagcacaaa6290MGST121(intron 3 2528)ttttggagacacttttcaga G/C agagcgtttccagcatcttc6291MGST122(intron 3 2557)tccagcatcttccctttcca T/C ttttaagttagacttttttt6292MGST123(intron 3 2731)atacacatatggaacaatta A/C ctaaaaacttaaggtaatat6293MGST124(intron 3 3032)agagacatttagaatatatt C/A cctttaaaggtagagaataa6294MGST125(intron 3 3045)atatattccctttaaaggta G/C agaataacccttcactgaga6295MGST126(intron 3 3289)ggtttatagtgttccccccc T/A ccccgcccccaaaagaccca6296MGST127(intron 3 3976)ggaaagctggggaactgttt G/T cctggaacagagtctcaaaa6297MGST128(intron 3 4288)ccattctatttgtcaactgc G/A taacacaggcgtagaagtgg6298MGST129(intron 3 4298)tgtcaactgcgtaacacagg C/T gtagaagtggacattgtttt6299MGST130(intron 3 4429)attggaggtgacgatatctc T/C gtgatgctgggggagaaatc6300MGST131(intron 3 4519)tttaatagaaaatggtattc C/T tgtcttttctttcccatctc6301MGST132(intron 3 4817)attgctatagaagagagtaa C/T gtaaagcagaaatagttttc6302MGST133(intron 3 6077)tttgaaattagtgtctttaa T/C agttatctttttccacagag6303MGST134(3′untranslated region 603)gggtaaacccattttgaata T/C tagcattgccaatatcctgt6304MGST135(3′flanking region 147)tatttgctttccttctctct C/T tgttttctttttctctgaaa6305MGST136(3′flanking region 237)cagcacgtttttcctatgaa C/T aagacattctccaaataact6306MGST1(intron 1C 904-923)tgcgattatctttggtaatt (A) 16-196307ggcaaatcagtccaaatttgMGST138(intron 1C 3433-3434)ccccttcaatactagaacaa (AA) gcagacacattaaatgttac6308MGST138(intron 1C 3433-3434)ccccttcaatactagaacaa     gcagacacattaaatgttac6309MGST139(intron 1C 5146)actatttcaatttttttttt T/Δ ggagggggagacagagtctc6310MGST140(intron 2 552-563)cccagcattataagaatgac (T) 10-126311aagtgcagatgtggggagggMGST141(exon 3172-173)tagcatttggcaaaggagaa AA/Δ tgccaagaagtatcttcgaa6312MGST142(intron 3 152-158)agaaaactggatgtctgaaa TTGACA/Δ (GTCCAATAT)6313cactgcacttgtatgtgttgMGST143(intron 3 2198-2200)ggattttagattcctcccta CTA/Δ ttctttccgaccttccaccc6314MGST144(intron 3 2567-2568)ccctttccatttttaagtta (A) gacttttttttttcacctct6315MGST144(intron 3 2567-2568)ccctttccatttttaagtta     gacttttttttttcacctct6316MGST145(intron 3 2571-2580)tttccatttttaagttagac (T) 9-11 cacctctctcgttacttcag6317MGST146(intron 3 3288-3289)ggtttatagtgttccccccc (C) tccccgcccccaaaagaccc6318MGST146(intron 3 3288-3289)ggtttatagtgttccccccc     tccccgcccccaaaagaccc6319MGST147(intron 3 4682-4683)tcctcttcatgtctctatgt (GAGATGTTGTGGCTCACAT)6320agtcatcctctttgtgagacMGST147(intron 3 4682-4683)tcctcttcatgtctctatgt6321tcctcttcatgtctctatgtMGST148(3′flanking region 1359-1360)acacacacacacacacacac CC/Δ tgctctggagttgggcaact6322MGST149(3′flanking region 1889-1891)ttagaatagtttctaactat ACT/Δ tttactcccaagagaagctt6323MGST1L11(5′flanking region −105)tgctgccgctgccgtggggc G/A gggcgtgggcggtgctggct6324MGST1L12(intron 1 277)agtgtctgtgagagaagcag G/A ttctggagggtggagtgtgg6325MGST1L13(intron 2 8030)ggggttatacagagcccctc C/G gcccccaccacacatatgca6326MGST1L14(intron 2 8499)gtatggcaggagtggggtcc C/T ggcaagccatagaggtatgg6327MGST1L15(3′untranslated region 468)cgccacctgtgaccagcagc T/G gatgcctccttggccaccag6328MGST21(5′flanking region −46)ggtcagcattcaaagtcaag A/T agcgccatttatcttcccgt6329MGST22(intron 1 176)ggtcacccatgccgcctgct A/C ccctccttcccaggggcaag6330MGST23(intron 1 204)tcccaggggcaagcagagac T/C gagaacattccagagattag6331MGST24(intron 1 373)ttacaagtgttccaaaggaa A/T cgtgcctgcttctaaacctg6332MGST25(intron 2 −3245)cctcgtgatttgcccacctc G/A gcctcccaaagtgctgggat6333MGST26(intron 2 −1998)aggccgaggtgggcggatca T/C gaggtcaggagatcgagacc6334MGST27(intron 2 −1640)tgtttattccttgcatagcc A/G taacataaagtatgaatttt6335MGST28(intron 3 41)actgtgttctaatgatgact A/G tgatgcttaaacgattaagg6336MGST29(intron 3 453)atcagagtgctatgttgcag A/G tatatgaactttggcttcat6337MGST31(5′flanking region −520)acaaaaaggccctaacagcg A/C taaatccattcacttcggga6338MGST32(5′flanking region −355)cgcctaaaaccgctacggtg G/A ctctgctggggacaaattat6339MGST33(5′flanking region −234)ctgggggagtagatatatgt T/A tttgagaatgagaggagtaa6340MGST34(intron 1 74)agcctttgcgcaggcactcc C/T atatttcagcctatgcgagc6341MGST35(intron 1 682)agaaaatgccccttctttat G/C tggggtggcagcacggagcc6342MGST36(intron 1 832)cgagtttacaagctacataa T/C agcgtcgggggcaagtaagt6343MGST37(intron 1 1919)aataaaattcctgagtttct G/C tcactcgctcttacagtacc6344MGST38(intron 1 1991)tgtaattaggcaacaggaaa A/G ttgtactatctttcaaatgc6345MGST39(intron 1 4458)tcttccatcctcctaacata T/C agttagcttccactctccaa6346MGST310(intron 1 4676)tgaatatgcaatgcaattgt C/G gggggatagttacttttcat6347MGST311(intron 3 278)cagcatgacccatctaaacc G/C atgttgactctcccaggcct6348MGST312(intron 4 423)cttgcctttttgttgtgggg T/G gtggggtggtcacagagaag6349MGST313(intron 4 506)gtgcagagaagaaaacaaag T/C ggggaaggtggaaaggggat6350MGST314(intron 4 −162)tcacagatattttattttcc C/T gactgaaactaacttaattc6351MGST315(intron 4 −130)acttaattctacctaatttg C/G gtggggagtagttggccaaa6352MGST316(intron 4 −105)ctgagtagttggccaaatcat C/G aaattgttaactttttgcta6353MGST317(intron 4 −65)aacatattgtgtaatcaacc C/T taggtgttaaaaaaggtttg6354MGST318(intron 5 105)atcccagcactttgggaggc G/C aaggcaggcagattgcttga6355MGST319(intron 5 197)aaaaaatacaaaaattagcc G/A gatgtggtggtgcacacctg6356MGST320(intron 5 222)tggtggtgcacacctgtagt C/T ccagctacttgggaggctga6357MGST321(intron 5 374)tcttatgctactatattttt T/C ttcttgggaatttgagaaaa6358MGST322(3′untranslated region 517)atgacttacctttatttcca G/T ttacattttttttctaaata6359MGST323(3′flanking region 166)agtctgattgtggtgatgta G/T gtatagtcatgccacagtga6360SULT1A1/1(5′flanking region −1597)gcagagtaaagggactcact C/G aagaagaggaacgtgggggt6361STP1SULT1A1/2(5′flanking region −1491)gaggggtatattcatgaaga G/T tccaggaaaaggtaaagatt6362STP1SULT1A1/3(5′flanking region −1376)cggtttcatatgttactgat C/T a/g taca a/g6363STP1tgagatcctaggtgSULT1A1/4(5′flanking region −1375)ggtttcatatgttactgat c/t A/G taca a/g6364STP1tgcgatcctaggtgaSULT1A1/5(5′flanking region −1370)catatgttactgat c/t a/g taca A/G6365STP1tgagatcctaggtgaaacctSULT1A1/6(exon 1B −65)aaccctgcattccccacaca G/A cacccacaatcagccactgc6366STP1SULT1A1/7(intron 18 442)gagccaccctgcctaggcct G/A tgcttttgctgagtcatcag6367STP1SULT1A1/8(exon 1A −197)gctgggggtcccagcaggaa A/G tggtgagacaaagggcgctg6368STP1SULT1A1/9(exon 1A −159)ctggctggcagggagacagc A/C caggaaggtcctagagcttc6369STP1SULT1A1/10(exon 1A −95)gagaccttcacacaccctga T/C atctgggccttgcccgacga6370STP1SULT1A1/11(intron 1A 60)ctggttttcagccccagccc C/T gccactga c/g tggctttgtga6371STP1SULT1A1/12(intron 1A 69)agccccagccc c/t gccactga C/G tggctttgtgagtgcgggca6372STP1SULT1A1/13(intron 1A 174)tgtgatggtggtaagggaac G/A ggcctggctctggcccctga6373STP1SULT1A1/14(intron 6 11)catgaaggaggtgagaccac C/G tgtga a/t gcttccctccatgt6374STP1SULT1A1/15(intron 6 17)ggaggtgagaccac c/g tgtga A/T gcttccctccatgtgacacc6375STP1SULT1A1/16(intron 6 35)gaagcttccctccatgtgac A/T cctgggggccggcacctcac6376STP1SULT1A1/17(intron 6 71)ctcacagggacccaccaggg T/C cacccagccccctcccttgg6377STP1SULT1A1/18(intron 6 108)ttggcagcccccacagcagg C/A cc g/a gattccccatcctgcct6378STP1SULT1A1/19(intron 6 111)gcagcccccacagcagg c/a cc G/A gattccccatcctgccttct6379STP1SULT1A1/20(intron 6 270)ctccctgccaaagggtgtgc C/T acccagggccacagtcatgg6380STP1SULT1A1/21(intron 6 488)ttttacttttcctgaatcag C/T aatccgagcctccactgagg6381STP1SULT1A1/22(intron 6 509)aatccgagcctccactgagg A/G gccctctgctgctcagaacc6382STP1SULT1A1/23(coding region 600ccctctgctgctcagaaccc C/G aaaagggagattcaaaagat6383STP1(Pro 201 Pro))SULT1A1/24(coding region 638gatcctggagtttgtggggc A/G ctccctgccagaggagaccg6384STP1(His 213 Arg))SULT1A1/25(coding region 645gagtttgtggggcactccct G/A ccagaggagaccgtggactt6385STP1(Leu 215 Leu))SULT1A1/26(coding region 902gctgtgagaggggctcctgg G/A gtcactgcagagggagtgtg6386STP1(Gly 301 Ser))SULT1A1/27(coding region 973taaaatatgaattgagggcc T/C gggacggtaggtcatgtctg6387STP1(Trp 325 ArgoSULT1A2/1(5′flanking region −547)tgttctttcttggttctatg G/C atccatgctctgctccaccc6388STP2SULT1A2/2(5′flanking region −425)tgtgggttgcactgggccag G/A acccctggcaccttcaagac6389STP2SULT1A2/3(5′flanking region −358)ctttccagggcctgcctatc C/T ca g/t ctttctcctccaatccc6390STP2SULT1A2/4(5′flanking region −355)tccagggcctgcctatc c/t ca G/T ctttctcctccaatccctcc6391STP2SULT1A2/5(5′untranslated region −28)actgcgggcgaggagggcac A/G aggccaggttcccaagagct6392STP2SULT1A2/6(intron 1A 85)ctgactggccttgtgagtgc G/A ggcaagtcactcagcctccc6393STP2SULT1A2/7(coding region 20catggagctgatccaggaca T/C ctc t/c cgcccgccactggagt6394STP2(Ile 7 Thr))SULT1A2/8(coding region 24 (Ser 8 Ser))gagctgatccaggaca t/c ctc T/C cgcccgccactggagtacgt6395STP2SULT1A2/9(intron 2 34)gccacccaccctctcccagg T/C ggcagtccccaccttggcca6396STP2SULT1A2/10(intron 5 77)cagcaaccctgtgtcggcac T/C ccctgcccgcttctccagtg6397STP2SULT1A2/11(intron 6 684)actggggtcccaggggtcga G/C gagctggctctatgggtttt6398STP2SULT1A2/12(coding region 704gttcaaggagatgaagaaga A/C ccctatgaccaactacacca6399STP2(Asn 235 Thr))SULT1A2/13(3′untranslated region 895)gctctgagctgtgagagggg T/C tcctggagtcactgcagagg6400STP2SULT1A2/14(3′flanking region 98)cctccccgctccagctcctc A/T acttgccctgtttggagagg6401STP2SULT1A2/15(3′flanking region 817)ccactgactcggggcttgcc A/c aggctgccagggctggcaaa6402STP2SULT1A2/16(3′flanking region 1006)cctctcccctggaggctgct T/C tacccgctgtgggggcgcat6403STP2SULT1A2/17(3′flanking region 1464)tcccgtagcccaggcaagtt C/T ggtgaccagagagcagcccc6404STP2(SULT1A2/18(intron 4 1728)tcagcttcctcctttgccaa A/Δ ccaagagatgagctggcctg6405STP2SULT1A3/1(coding region 843cgcttcgatgcggactatgc G/A gagaagatggcaggctgcag6406STM/(Ala 281 Ala))SULT1C11(intron 3 2280)gcaaatttttggtattttta G/T tacagtcagggttttaccat6407SULT1C12(intron 3 3742)gcagatctcactttctggca G/A attccctgaatttgctcccc6408SULT1C13(intron 3 4453)ttcatagggcttttccctca C/T ttgttttgtaattttgtata6409SULT1C14(intron 3 5234)taaaagagactagaggcagg A/G gagctttgcagttcttctaa6410SULT1C15(intron 3 6175)tggctggcaggaaggtgagg G/C agtcctctcttctctggtcc6411SULT1C16(intron 4 205)acatgaaggcaggatccaga T/C tgaatgtttggagggaacta6412SULT1C17(intron 4 408)ggctcacgcctgtaatccca G/C cactttgggaggccgaggcg6413SULT1C18(intron 4 429)cactttgggaggccgaggcg G/C gtggatcacaaagtcaggag6414SULT1C19(intron 3 2106-2115)tgcagtggtcgtttgtttgg (T) 8-11 gagacaaagtctggctctgt6415SULT1C110(intron 3 4199-4210)agagacaggatttcaccatg6416SULT1C21(5′flanking region −110)tcctgttaactcacagagaa C/T ggaagggctggaacgggacc6417SULT1C22(coding region 15 (Asp 5 Glu))acactaatggccttacacga C/G atggaggattttacatttga6418SULT1C23(intron 1 297)gtagacttgtttatttattc A/C ttcccaatctaggcccttat6419SULT1C24(intron 1 363)gagtgtgtgagctagaaagg T/G gatcctgagtctgatttggg6420SULT1C25(intron 1 2300)gggctactatcagcagccac C/T acctcaggaaggatgacttc6421SULT1C26(intron 2 455)aagacttggaagcaaataga T/G aaaaaaaaaatcgtagaaat6422SULT1C27(intron 4 55)caaaatctccaaacacccta G/A aaggaaagaatcttttcttt6423SULT1C28(intron 4 111)ctgccttctttaatggaaca T/C tctcacttctcttcaggaat6424SULT1C29(intron 5 1657)ctttgtgtttactttgtttt T/C acttggtacaaaagtgttgt6425SULT1C210(intron 5 2082)tctgctcctagagatggagg C/A gtcccacagccacagtgatg6426SULT1C211(intron 6 933)agctactgaacctctcccac A/G taactgtatttcaggggcag6427SULT2A11(intron 2 478)ggactgggctctgtacacac T/C tcgtcttactgtgtgtaaat6428SULT2A12(intron 3 382)caaaaccctcttaatattct G/A tttctatctgtctcagaact6429SULT2A13(intron 3 409)tctgtctcagaactgattgc A/G tgactctaggatcgctatat6430SULT2A14(intron 5 249)agctggaaattacaggcaca C/T gccaccacacccagctaatt6431SULT2A15(intron 5 395)aggcatgagccacggcgccc G/A gccaatttatcagctttaat6432SULT2A16(3′flanking region 33)ttccttgttaaaagttacca G/C ggttggccaggc a/g cggtggt6433SULT2A17(3′flanking region 46)gttacca g/c ggttggccaggc A/G cggtggttcatgcctgtaat6434SULT2A18(3′flanking region 199)ttagccaggcgcattggctc A/G tgtctgtaatcccagcactt6435SULT2B11(intron 2 4162)ttctcccctctCctcaccat C/T cgcacacaggtgatctacat6436SULT2B12(intron 3 879)gagggcatccagctctgggg G/A ctggacctgggggtttgtgg6437SULT2B13(intron 4 3882)ttccacgctccttccttggc C/T gagtgccctccctccgctga6438SULT2B14(intron 5 1780)cctgcagaagggggtccctt C/T catgtccaagcagtaatggc6439SULT2B15(intron 5 1814)taatggctgcagcatggagc G/A ttgtgggggcattgagacag6440SULT2B16(coding region 789ccctcttctccaggggtctg C/T ggcgactggaagaaccactt6441(Cys 263 Cys))SULTX31(intron 1 332)cctgcttctccctttacctg G/T ctggctgtgtgaccttggac6442SULTX32(intron 1 1167)taggaatggctaagcgtgtc G/A ttggcttctgtggccactca6443SULTX33(intron 1 2872)cattctcactgatgcagacg G/A aagcttctgggcctgggcgt6444SULTX34(intron 1 6242)cacccttggcttttaccagc A/G tggaaacattttacctgaat6445SULTX35(intron 1 6601)gcgtgggcttctggagggag C/T gagaggagagtggagggccc6446SULTX36(intron 1 6768)agcttgaaatgagccagact C/T tcctgggacctgttgacccc6447SULTX37(intron 1 6905)agtactttgttttatcctcc C/T catcctcacaactttgccat6448SULTX38(intron 1 7464)gccaggatcccttgagagac G/A acatgaacacagccaggagc6449SULTX39(intron 1 7833)tgcttcgggctgggcttggc G/A ggggcagctgtgctccaggc6450SULTX310(intron 1 8189)caaactggggcccttaatgc C/T gcacaccagagcctcctttc6451SULTX311(intron 1 8316)ctctcacacaagggcggagc C/G tcttccccttgaggcagagc6452SULTX312(intron 1 8617)agacagaggctggggccaag C/T cagggttgccggagcttccc6453SULTX313(intron 1 8631)gccaagccagggttgccgga G/T cttcctggactggtcaggcc6454SULTX314(intron 1 9493)ttttcctcttagagcttccc G/A tcgtgctctgtgtcgagggc6455SULTX315(intron 1 10306)caggcggggagcctgaatgc C/T gcagtcgtgagggtggccag6456SULTX316(intron 1 11987)tcataaaataatgatatcag T/C acactttttggaaatttgag6457SULTX317(intron 1 13085)ctctgtgcccggtgttgaga C/A aggccatgccctagagtcct6458SULTX318(intron 1 13108)gccatgccctagagtcctgg G/A gagttccaccccagaacagc6459SULTX319(intron 2 700)gaaccatctgggagtcgttc C/T gtactgccgtgccgagggcc6460SULTX320(intron 2 818)agccatagtagctagccagc G/A atcagcgctgggaggggagc6461SULTX321(intron 2 1677)actccacttcccctgaaccc C/T accccttccttcctcctctg6462SULTX322(intron 4 4954)gcgtgccgaaggcgggaggg C/T tgggatggctcaagacgtga6463SULTX323(intron 5 3632)ccagctgactcccacaccag C/T ggtcagagaacattgtcttt6464SULTX324(intron 5 3662)acattgtcttttaaggtttc C/T gaagtgctgcaataaagaaa6465SULTX325(intron 6 1874)tctgatctcagagagctgac A/G atggaaagaattctaaacga6466SULTX326(intron 6 2133)agaccggtgcctgcagttta T/G cccacagctcagccctccct6467SULTX327(intron 6 2524)ggaagggccagggctgcctg T/C gatgcccagagcagtgcact6468SULTX328(intron 6 2573)agatcatactcgctcctggg A/G tgtttattaaacacctgcca6469SULTX329(3′flanking region 12)gttcccggcgttgcgtcgag C/G gtttctgcttgtgggggtag6470SULTX330(3′flanking region 445)tccaaagcctgtcttcctga T/G ttcctgtggaaggagagtcc6471SULTX331(intron 1 6418)ctctccctgttagtgtgggg G/Δ cagctctttccagtgtcctg6472SULTX332(intron 5 2458)cccttaaagggaagttcatc C/Δ ttctctgccttccaggctcc6473TPST11(5′flanking region −298)acccgccaccatgcccagct A/C attttttttgtatttttttt6474TPST12(intron 1 3520)agaaaagcagattaatgtaa C/G agtgacgcttagacaacaag6475TPST13(intron 1 3610)ggcagaaagagaatatagca A/G ctattaaacacaaataaatt6476TPST14(intron 1 20828)tattgctgtccacctggtca A/G tgtgtcctgctgataagtgc6477TPST15(intron 1 −6761)aatacaatacttattctgta T/C aattctagagggcccagaga6478TPST16(intron 1 −544)tagaacaagtgaatatttta C/T gttcttagtggtttatggtt6479TPST17(intron 1 −526)tacgttcttagtggtttatg G/T ttggcagttttcccccaaca6480TPST18(intron 1 −234)tcaagacatttaataatgca C/T atgtttcagctaaccctttt6481TPST19(intron 1 −48)ttatagtgggtttaagcatg A/G tttctaaaaaatttaaataa6482TPST110(intron 2 −18944)aaaacattagaactgggaag G/A ttaaaaaatctttagtcttt6483TPST111(intron 2 −18687)tatgtgcaccctaataacat A/G tttccttaaaactagtacta6484TPST112(intron 2 −18501)ttggaaggtaacttaatgta A/G gtgcctgaaaaacagggata6485TPST113(intron 2 −159)gaatggggatttccctcagt C/G ctgcccactggctgctcttg6486TPST114(intron 2 −19)acctgttgccttaaactcac G/A cctgctttgtttttccaggt6487TPST115(intron 3 158)tgctggggaagaaagatcag C/G gtctgggacttgttgatttt6488TPST116(intron 3 3779)agcagggcacgtcaccctcc C/T ggcacacccatgtgttcacc6489TPST117(intron 4 292)ttgttattttcattatgaac C/T atgaaatatttcagctgaaa6490TPST118(3′untranslated region 1518)gttgtctgtacatgttctaa T/G gttttgtagaacacgtgtgc6491TPST119(3′flanking region 264)acggtgcttggcctgcatta C/T cattttgtagtgaagtttct6492TPST21(intron 2 578)tcacctatcatcctcactgc G/A aggatgccaggatacctccc6493TPST22(intron 2 789)cttaagccatcgtgcaggtc A/G ttgctgtcttctgctcactt6494TPST23(intron 3 2009)cccaggctggagtgtagtgg T/C gtgatct c/t ggctcactgcaa6495TPST24(intron 3 2017)ggagtgtagtgg t/c gtgatct C/T ggctcactgcaacctccgcc6496TPST25(intron 3 2035)ctcggctcactgcaacctcc G/A cctcccgggttcaagcagtt6497TPST26(intron 4 104)aatgttcagtctctcaattc C/T tggtcatctgatttgttcct6498TPST27(intron 4 379)taaetaaataaactattggt C/T cctttcttgtcttataaggt6499TPST28(intron 4 588)tactgcagcctgatacttct C/T ggcttaagccatcctctcac6500TPST29(intron 4 626)caccccaggctcctgagtag C/T taggactgcaggtgcacgcc6501TPST210(intron 4 718)cccaggctggtctagaactc C/G tggccgtaagggatgcccct6502TPST211(intron 4 873)gttgatggccttatttatac G/A tttccattacagcttctegt6503TPST212(intron 4 949)caaatetttgaaaatgggac C/G caggcctgaggaagagcttt6504TPST213(intron 4 1033)taagctcagcatttctgagc G/A tgtgctgattttaggaaata6505TPST214(intron 4 1051)gcgtgtgctgattttaggaa A/G taaacagttatcgtattgaa6506TPST215(intron 4 1356)gattcaacgtacataccagc C/T gacattgacaggtgaatggc6507TPST216(intron 4 1707)gtctccttaaaaggtggctc G/T ctgcccctggcttgccccag6508TPST217(intron 5 215)aagaccagcctgaccaaaac G/A gtgaaaccccgtctctacta6509TPST218(intron 5 341)tgggaggcageggtcgcagt G/A agctgagatcacgccgttgc6510TPST219(intron 6 31)ggacttcactgggggttccc G/A ctgcttctgggtggccccgg6511TPST220(intron 6 273)gtttgtctgacactggggac A/G gggcaggaagcaccactatg6512TPST221(intron 6 693)aaagggatttttttgaactt G/C gtaattcaaagatttaagat6513TPST222(intron 6 1635)tcctgggtacagagttggcc T/G tgaacaaacatgagtccttc6514TPST223(3′untranslated region 1147)cttccccactttcagatctc C/T gcaaatgacttcattgccaa6515CST1(intron 1b 6302)agagctccccagagaggact A/G tgaggctgcatgatgcatga6516CST2(intron 2a 1004)gagtgagacccccatctcta C/T aaaattttttttaaaaagta6517CST3(intron 2a 1395)atgcctaagtttacagtagc T/C aggcaggaaaggcacaacca6518CST4(intron 1d 473)ccagagcctgaggttggtgc T/A ggggcccctccatggctgcc6519CST5(intron 2b 726)ctatctctccagtgcctctc T/C gtccctgtctggaccctgct6520CST6(intron 2b 745)ctgtccctgtctggaccctg C/A tggggggccacagagcaggc6521CST7(coding region 85tcactagtttcctgctgctg G/A tgtactcctatgccgtgccc6522(Val 29 Met))CST8(intron 3 308)tcgtctgaggtcaggagttc G/A agaccagcctggccaacatg6523CST9(intron 3 853)ttttgtcctataaaatggca G/A tttcatgtggcccaagctga6524CST10(coding region 198gaggcagtgatccgggccaa C/T ggctcggcgggggagtgcca6525(Asn 66 Asn))ST1B21(intron 1 80)acttgtccataaaatcatta C/T cattctaaataaagttaata6526ST1B22(intron 2 −352)aacatttaaatagtcattta T/C agcaatgcacaggtataata6527ST1B23(intron 2 −85)attacataatgctcaaaaat G/A tcttgaaaaactggttggca6528ST1B24(intron 4 460)gtacttgacatteaaaaata T/C ctgatgttt a/g tatatccata6529ST1B25(intron 4 470)ttaaaaaata t/c ctgatgttt A/G tatatccataaatagctaat6530ST1B26(intron 4 518)tttaagattgtcctcatatt C/G ttacttcctttggttactaa6531ST1B27(intron 4 616)aatgtttatgaaaatagact T/C ttatctggttttagtggcct6532ST1B28(intron 5 58)ctgcatcatgctgtaaaagg G/A ttgatatttgctttccaact6533ST1B29(coding region 612taatagaatccaaaggagga A/C atcaagaagatcattagatt6534(Glu 204 Asp))ST1B210(intron 6 582)aatacattacttccatttaa G/A tagtctgtttattgtggctt6535ST1B211(intron 6 3130)agatgtaaaaaettattcaa A/T ttttaaaegcctgaeaaatt6536ST1B212(3′untranslated region 907)tttaaagtgtctaaatcaca C/A atctgaageaataegagatt6537ST1B213(3′flanking region 50)tcagatcccagttttgttcc T/G ttgattctgagtttccaaat6538ST1B214(3′flanking region 328)tttgacccaggacactgtgt T/G ccactgctgtctaccgagtt6539ST1B215(3′flanking region 446)gtagttcagattttggaaat C/A ttttttctatatcatarcta6540CHST11(intron 1 3900)gccctgcccccactcccaga C/G ttgcggccctccagcccctt6541CHST12(intron 1 6520)cctcccccagaggagctggg C/T acactggggccttgtgttgt6542CHST13(intron 1 7963)aaaacattcatgggggatta G/C tgctggctacgtcagagtca6543CHST14(intron 1 9173)gcgctgccacagatcaggcc G/A aggtgggggacagaaatgcc6544CHST15(intron i 9701)cccagaattctgaatacagc A/G gcgatgacgggactacgagg6545CHST16(intron 1 12132)aacagatccacaggaccaga C/A agcaaaggggaggaacatgc6546CHST17(intron 1 12465)atgcagggaaggggcttggc G/A caaaactgtcaactgagata6547CHST18(intron 1 12561)atgctccctggtccactttc G/A ctttgagtttcaggtagctg6548CHST19(intron 3 529)ccatggtctgcaggggtcct T/G catgctcaggggattggggt6549CHST110(intron 3 617)agaggacagaggaaagagga C/A cacctggagaactgggcgcc6550CHST111(intron 3 796)aagaggcttccgcagctgtc C/T gcaggttaaatcctggggtg6551CHST112(intron 3 818)caggttaaatcctggggtgc A/G aggaatgtttgttcagctcc6552CHST113(3′flanking region 762)ataactggtacaggtttact G/C gtgtctacactggcagagaa6553CHST114(intron 1 7874)gttttccccttgccttgcct T/Δ cattttcatcacctcatttt6554CHST115(3′flanking region 335-349)ggattttagtagagacgggg6555CHST21(5′flanking region −260)agccggacagtccgccgggc G/A gtgatccgggggccgctccc6556CHST22(5′flanking region −56)gcgctggggaccagccgccg C/T gcccgcctcggagtcgcggc6557CHST23(3′flanking region 218)aggagtgaaacacatctttg T/A attctaaaggcagaaaccaa6558CHST24(3′flanking region 383)gcagagaccaatgttttggt G/C ctgaggctggttcagaaaaa6559CHST25(3′flanking region 952)tactgaaacattctgcagaa T/C gttatactatgagaagaaat6560CHST31(5′untranslated region −294)tccagcgtgccgaccggccc C/G gcagcgcctccatccctccg6561CHST32(intron 1 96)gcgtccaggcgcgcgcgcca G/A actttggagggagaaggggg6562CHST33(intron 1 4467)agagaagaatggggcagagc C/G ggagcagccaggggaggtga6563CHST34(intron 1 4853)ggatgagcactgcccagctg A/G tccetgcccaccttccacag6564CHST35(intron 1 4965)tccactgcagaggggacaca G/C tgaccaggacggaagttggg6565CHST36(intron 1 5046)gggctgtccatctttgtacc C/T ctggttccatcccagtgcct6566CHST37(intron 1 5300)ccttttcttctctaaggcct A/G aagagatgacagaatgctgc6567CHST38(intron 1 5354)agcgcgtggactccacagcg G/A ggtgtggggtggcccctggc6568CHST39(intron 1 5428)gacacgrttcagccctctgt C/G tctattgccccaaatctggc6569CHST310(intron 1 6555)gagtggggcactgctggaag G/C ttctggttcctgctttgttc6570CHST311(intron 1 6990)aaacacactgggccaccccc G/A tccccgcactgtgactacac6571CHST312(intron 1 7133)ctgagggcctgtcctgcagg T/G ttgatgtgtctgaagaggcc6572CHST313(intron 1 7161)ttctgaagaggccccgagaa T/C agaaatctagaacctgccag6573CHST314(intron 1 7199)cagtcacgaagcagtgtcac C/T caccagaggatgaagaactg6574CHST315(intron 1 7316)cttgcatctggtgtaggtgc C/T tgggggtagcgtgcccagga6575CHST316(intron 1 7967)gacaggaaccccaccccgag T/G gatgtctggccctgtgacct6576CHST317(intron 1 11412)gcttgcacttctgattcatt C/T tgcagtcactggctctttgt6577CHST318(intron 1 11591)ccctggaagggcctcactgc G/A gtgactcattacccagcatg6578CHST319(intron 1 12541)acccaracagcatgaatggg G/C ccagccccagcctgcccgct6579CHST320(intron 1 12672)gtagccacagctggggctgt G/C gggtcagggcatggcaaggg6580CHST321(intron 1 14809)ggatgtgtagggtttgggct C/T ggccttaagggatgggtgga6581CHST322(intron 1 16161)gatgctggtcaggcattgtc G/A ttgggatctttaacaccacc6582CHST323(intron 1 16385)tatttagcatgtgggtttca A/C ctttctgttttttcaaaggg6583CHST324(intron 1 33638)gacttgggccacgtccttgg G/C catgaatcttggtctatgtc6584CHST325(intron 1 35145)agggaagccgaagcctcact T/C gctggggcttgcctggcctc6585CHST326(intron 1 35340)tgtgaagttttgcccacagt T/C ggtggccatggttcgcaccg6586CHST327(intron 1 35436)gccactcatgtatggagcaa T/C tgcctttttttcttcctctt6587CHST328(intron 1 36150)ccatagaagaggctgggcct G/T aggaagccagggaagcagga6588CHST329(intron 1 36194)ggtgtggggaggccagcagg G/A gtgtgggcctcagcggggag6589CHST330(intron 1 37602)ctggaacagcaacttaaaaa A/T agaaatagtccctggaaggg6590CHST331(intron 1 37725)gggtagccagggcagctccc C/T gacccgca c/g ctgccttttca6591CHST332(intron 1 37734)gggcagctccc c/t gacccgca C/G ctgccttttcacccctctcc6592CHST333(intron 1 38208)gccattctagatgcgagtcc C/T gactttgggg t/c gcttgcatt6593CHST334(intron 2 255)ctacagctgtgaaaggttag A/G caagatacttaacatttctg6594CHST335(3′untranslated region 2202)acacctcagaggagcctgtg C/A ttaacatttgtaggattatt6595CHST336(3′untranslated region 2569)aggcctcatctggggtaggg C/G caagaggaaagtacagagtg6596CHST337(3′untranslated region 2717)ctggaattcctccttagggc C/T ctgggaagagtattgcttaa6597CHST338(3′untranslated region 2753)cttaacgcaggatgtgctgg G/A tgttttgtttcgggctttta6598CHST339(3′untranslated region 2800)gcttggtgtctttcttgttt C/T atggctgtgtttttgctttt6599CHST340(3′untranslated region 3283)ccgagggctgcccagctctg C/T ttctggtttcctggacaatt6600CHST341(3′untranslated region 3327)ctgtcagatacggcccattg T/C aaacccagagggctgcattt6601CHST342(3′untranslated region 3787)gttccccatgtggaggtcgg A/G ggggctgggactggggaggg6602CHST343(3′untranslated region 3860)ggccctgctaatgtggacag T/C agactttatccctccttctt6603CHST344(3′untranslated region 4915)ccagatgtgcatagaagcca G/A tctctgtcacatacaccgca6604CHST345(3′untranslated region 4993)taaagcaaatttaggctttt G/A tccttctgcaatacatgcac6605CHST346(3′untranslated region 6208)atttcatgtctgcatggtac G/A agacaccccttcac g/a gcata6606CHST347(3′flanking region 281)agacaggagtgttgggccag C/T ggtcagggggcctggggatg6607CHST348(3′flanking region 997)acctcttaaagtatttgagc C/T ggtgcctgtcatcccaacct6608CHST349(intron 1 22595)cgggagcaggaaaaaaaaaa A/Δ gaataagaagaaaagaggct6609CHST350(intron 1 35423-35424)gctcatgctcacagccactc AT/Δ gtatggagcaa t/c6610tgccttttCHST41(5′flanking region −1092)atgaagccttgtgccatctc G/A ctgtgtcgtgccagcacctg6611CHST42(5′flanking region −941)ttgccagagagaaacaggaa G/A ggaggaagagccacacaati6612CHST43(intron 1 −150)caggaaatgatttggagaag G/T actggtgccattgttggcac6613CHST51(intron 1 −144)ggcctcttaggtttcagcca A/C gacaggtgactcttagcacc6614CHST52(intron 2 17)caacgtaagagcgcttctca T/A tgtccagctcctttgtttct6615CHST53(intron 2 139)aatcccagcactttgggagg C/A ggagatgtgcggatggatca6616CHST54(intron 3 1829)gactgtatgtctgctattca T/C ataggaacaaataattcatg6617CHST55(intron 3 2037)aaatgaaaccaacaccaaca C/G tgcagagaagcaaacaaaag6618CHST56(intron 3 2134)aagcagctaaattgtgttcc G/A tacaggtgcaattaggcagg6619CHST57(intron 3 2528)atggtaaagttcgcctgggt G/A cagtatgtcagcatcctgct6620CHST58(intron 3 2674)gcacttatcctagaaaggcc A/G tttctgaagactcagcagga6621CHST59(intron 3 7039)ttggctcccgccggccaccc T/C gggaccgcagccacgtctga6622CHST510(intron 3 7211)gtagccccaggacaccccca T/G cctcaacatcccattctggg6623CHST511(intron 3 7294)ggagcttccagtggcttggt T/C acccccgactcttcgtccat6624CHST512(intron 4 108)gcagggtcctgcactctgca G/A ggggcaatcacaggtgggag6625CHST513(intron 4 402)agcactggaaaaagtacagt T/C gcacttgtagcggaggtggg6626CHST514(intron 4 547)ctcctgtccccgcattgagg C/G gaaggagcagaggtgagatc6627CHST515(intron 4 1142)gccccaggtctcatagctcc C/G cattggcagtgctgggattt6628CHST516(intron 5 1187)cactgggcagtaattggggc A/G tgggatgggcatgagggccc6629HNK − 1ST1(intron 1 139)gtgttttggcgacttgaaga C/T ctccctagttcgcgggagta6630HNK − 1ST2(intron 1 1020)acctgagcagaaaattctct T/C cttcgctgaaatgaaaattg6631HNK − 1ST3(intron 1 1091)aagaatttgtaaacatcaca G/A gcaacttgcagttatattcg6632HNK − 1ST4(intron 1 1971)ctataactatttcaaacata C/T gaaacaggcataattggatt6633HNK − 1ST5(intron 1 2096)atttagaatattcatttacc A/cCagaaatccaaatataacctg6634HNK − 1ST6(5′untranslated region −91)ctatccagtgacaagaggaa C/A caagaacctcagttcagggg6635HNK − 1ST7(intron 2 −530)tgtgggcggaggcgagaagc G/A tcagtgttcattcctttgct6636HNK − 1ST8(intron 2 −466)gctacatcttgtcagccagt C/T agaattttaaacacagccag6637HNK − 1ST9(intron 2 −92)acggaaatatttgtgctgat A/T cttactgactgaaatcacct6638HNK − 1ST10(intron 3 152)catggcctccgttccttcat G/A ttacagaggtgtgaggggag6639HNK − 1ST11(intron 3 312)cacagtggccttatgccttg C/T agcagggcgcctctcaggct6640HNK − 1ST12(intron 3 1948)tcctttgatgtatcaagttt T/C gtgctgaatgttttcagtgt6641HNK − 1ST13(intron 3 2140)ttacacctggagaggagcac C/T gcagcggtccttaatactgc6642HNK − 1ST14(coding region 187agaagcacattcctgaggaa C/T tgaaggtgggcacagccagg6643(Leu 63 Leu))HNK − 1ST15(intron 4 581)cctgatcattccctagctgg G/A atgaggggtgcactctggaa6644HNK − 1ST16(intron 4 615)tctggaaggcctctcacttc G/C taacccccattctggatcta6645HNK − 1ST17(intron 5 7)gattgttctaaatggtgtgt G/A tgggtctactgaatgtccac6646HNK − 1ST18(intron 5 123)acctgaagggactggtggcc G/T tccagacaggcctgtttttg6647HNK − 1ST19(intron 5 721)ataattatgggctctgctta T/C gaaatttagcttcagacagg6648HNK − 1ST20(intron 5 867)tgctgcccacagagtcggtg G/A tcactcctggccactgtttg6649HNK − 1ST21(coding region 444ccaggagcattttcttccat T/C gaggagatccccgaaaacgt6650(Ile 148 Ile))HNK − 1ST22(intron 6 94)ctgagttctgtacttggcag A/G ttgatcggaggaccacagag6651HNK − 1ST23(intron 6 247)catgaaggtgacatcatttt G/A ttaatagaaattagcaggca6652HNK − 1ST24(coding region 696tggaggaaccggacagagac C/G cgggggatccagtttgaaga6653(Thr 232 Thr))HNK − 1ST25(coding region 870gagaccctggaggacgatgc C/T ccatacatcttaaaagaggc6654(Ala 290 Ala))HNK − 1ST26(3′untranslated region 1110)tcaaatatctttattagacc T/C ggggctaaccaggtgaagat6655HNK − 1ST27(3′untranslated region 1178)ccacacccctcctttgagga C/T gcccggggtctcccacaggc6656HNK − 1ST28(3′untranslated region 1393)ggaagcatcacacagcgtta G/A gagccgtttccttcaggtgt6657HNK − 1ST29(3′untranslated region 1452)tgaggttctcctggctagtc A/G gggtggcttcacccatcact6658HNK − 1ST30(3′untranslated region 1540)gcaagggggctgctgaaatc G/C cagagacttttgcagcatca6659HNK − 1ST31(3′untranslated region 1696)gggtggtgtggtgtccaggg G/A tccatctttccagaatccat6660HNK − 1ST32(3′untranslated region 1829)aggggaggctttttctacct G/A agaaggggagtgtctttgag6661HNK − 1ST33(3′untranslated region 2211)tccagcagtgcggcttcctg G/T c/t aaceaggtaggccctggtg6662HNK − 1ST34(3′untranslated region 2212)ccagcagtgcggcttcctg g/t C/T aacaaggtaggccctggtgc6663HNK − 1ST35(3′flanking region 1016)cacacgaaggtgtgcactca C/T ggcctgcagggcacccaggt6664HNK − 1ST36(3′flanking region 1152)gcatgctttgctcatctgga A/C tctccagaagcagggaacag6665HNK − 1ST37(3′flanking region 1291)gccgagaccctcagcaggat A/G gtgcagttacagggctgagc6666STE1(5′flanking region −605)caggtttctaaaataataat C/T gasaggtgagtgatgtttac6667STE2(5′flanking region −536)taaaattttcaggtctgctt A/G agagttaaaggcaaagagtt6668STE3(5′flanking region −231)ccttcttccccaacccctga C/T ggcagacttgggaatttgaa6669STE4(5′untranslated region −64)tgcagcttaagatctgcctt G/A gtatttgaagagatataaac6670STE5(intron 1 69)aaatatagaatgaaaattat G/A tattacaaagctcttaaaaa6671STE6(intron 1 311)caatgagaaaataaagcaag C/G agggtagaaggaggtagaat6672STE7(intron 1 655)tctaagaaagtagggactat G/A agaacccctatgtatctata6673STE8(intron 1 671)ctatgagaacccctatgtat C/T tatatccaccatagtattct6674STE9(intron 1 772)aaaaggcaggttggaagatg C/A aggaggggagtatgcagaaa6675STE10(intron 1 1715)taaccatcttgcttaacctt A/G tcatttttagccaagtcatt6676STE11(intron 1 1928)aaatgatacatattcaggaa A/G tcaaaaatctctgacttaga6677STE12(intron 1 1953)aaatctctgacttagatacc C/T ggcaataataatcaaatgta6678STE13(intron 1 2087)aattttgaaagaaattgaag T/G tctgtggtttttatttatca6679STE14(intron 1 2323)taggtatgtaggagggtccc G/C ttatatacatagttgttaat6680STE15(intron 2 165)tctattccatgaccacaatt T/G ttacctgtaacttgaatagt6681STE16(intron 2 1707)cctaggacccaacaigagac A/G taatataccatcagtaaaat6682STE17(intron 3 850)ggtgtccattccctcaagaa T/G ttatactttgtgttacacac6683STE18(intron 4 1653)agtaacaggctagtagataa T/C ataaataactgaggccaacg6684STE19(intron 4 1899)tacatgaacttagagaatca A/G gtagatcacacacaccaaca6685STE20(incron 4 1930)cacaccaacaataaaattac A/G cagaatgataaaagaatttg6686STE21(intron 5 666)ttctgatcatgtagtaacaa T/C tataaagaaaataataatgt6687STE22(intron 5 982)aggcaaagcagaaccttttg A/C ctcacacaacattatattat6688STE23(intron 7 369)agattttattcctctctctt T/C ttgagttgaagaaataagtt6689STE24(intrOn 7 447)cacctttcaagggtaagtgg C/A aaaaaatagaaattcaaata6690STE25(intron 7 672)aatcttgctctttgaaccat A/T ctgtcagtgagagtcaggga6691STE26(intron 7 856)tgttacagaggacttaaaac A/G gttgtcttgcttgcaaacgg6692STE27(3′flanking region 218)cagcctcccaagtagctagg A/G ctacagacatgtgcaaccat6693NQO11(intron 1 80)aggaggttgtaggggcttgg C/A ctgaattttgttccttgact6694NQO21(5′flanking region −434)tttctgttgcaccacggacc C/G tcattctgtaaccgggatac6695NQO22(5′flanking region −406)gtaaccgggataccagccag A/G gatggggagcgggaggcgca6696NQO23(5′untranslated region −102)tcctgcggctcctactgggg A/C gtgcgctggccggaaggtga6697NQO24(intron 1 1919)tcactcaaatagagctgagt T/C agtcactcagctcttggacc6698NQO25(intron 1 2004)acaaactcacatgccaccag C/G catatgatgtaaacatgtaa6699NQO26(intron 1 3391)aaagcagagggctgtgcagg C/T gcccctgcccctaggctagg6700NQO27(intron 1 3456)caaaggcctcatcctcaggg C/A ggccaactcttctgttttag6701NQO28(intron 1 3595)actgcccagctttaggttca T/C tcttgtaagtgttgctggtg6702NQO29(intron 1 3596)ctgcccagctttaggttcat T/C cttgtaagtgttgctggtgt6703NQO210(intron 1 3598)gcccagctttaggttcattc T/C tgtaagtgttgctggtgtca6704NQO211(intron 1 3651)ccctgcgctttgaagggatg A/G atgtgacctctcccacattc6705NQO212(intron 1 6036)tggtgtggcggttcactgat C/T ccccagccttctgctcgatc6706NQO213(intron 2 14)atggcaggtaatgattcact A/G ttgtggagtaagactttttt6707NQO214(intron 2 192)gccacgtggaagtgtataaa C/T tatctggaattatcttgttt6708NQO215(intron 2 635)caccctgtttagcacctagc A/C ccatccctggcctctgccca6709NQO216(intron 2 685)agtagcacccctcccccacc G/A gctgtgacaaaccaaaatgt6710NQO217(coding region 139ctgatttgtatgccatgaac T/C ttgagccgagggccacagac6711(Phe 47 Leu))NQO218(intron 3 36)aatgctctatttataaaaac T/C atctttatgttttttacttt6712NQO219(intron 3 728)aacgtgggcataaaccacca T/C ctagtgccaaaaagcaggtg6713NQO220(intron 4 1577)tgcctctgcacaccccttcc C/T gacaccagccctttctttac6714NQO221(intron 4 1832)tcggccggccacgtggagcc C/T gctttcctcctcgcacccac6715NQO222(intron 4 2583)tggtgttacgcacagctcct C/T gtcccctccctgcctgccca6716NQO223(coding region 330ctgtactggttcagcgtgcc A/G gccatcctgaagggctggat6717(Pro 110 Pro))NQO224(coding region 405atcccaggattctacgattc C/T ggtttgctccaggtatgtgc6718(Ser 135 Ser))NQO225(intron 5 21)gtatgtgctcttggataagg A/T tcactatggatagttggagg6719NQO226(intron 5 253)atggcaaacaagggagtggg T/C caggtgtcaggtgacggggg6720NQO227(intron 6 2435)ccccccttaaatcatttaac T/C gaatggtatgtaacaggtgt6721PIG31(5′flanking region −47)gggaaggaggaaaggaaaga G/A ggggagggtggttctgctta6722PIG32(intron 2 243)taacaccggacgcccagcag A/C agtcccagcttcttagaatc6723PIG33(3′flanking region 282)agcaggccccagccctgccc G/A ctactcacctgggccccacc6724PIG34(5′untranslated region −93)tccgcgaggatacagcggcc (CCTGY) 166725cagacaatatgttagccgtgPIG35(3′flanking region 625-626)ctcctcaggccccgcccctt (T) ccattactcacttgggtccc6726PIG35(3′flanking region 625-626)ctcctcaggccccgcccctt     ccattactcacttgggtccc6727PIG36(3′flanking region 770)tcacctgggtcccgccctac C/Δ tgtcataaccctgctcaagc6728NDUFA11(5′flanking region −1437)agggctaaaaatcctgatta T/A acctaccttgaagcttttaa6729NDUFA12(intron 2 3071)aataaaagtacatggcatat C/A tttgatgggaacagacttgt6730NDUFA13(3′flanking region 1218)aactccatgtgtataaagca A/G caccacagatgacacttcca6731NDUFA14(3′flanking region 1411)ggattgtgccatcccttgat C/T ggcaatgaccttttactttt6732NDUFA15(3′flanking region 1411)ggattgtgccatcccttgat C/G ggcaatgaccttttactttt6733NDUFA21(intron 2 1087)aacatacaaaaattagccgg A/G t a/g tggtggcgggcacctgta6734NDUFA22(intron 2 1089)cacacaaaaattagccgg a/g t A/G tggtggcgggcacctgtaat6735NDUFA23(intron 2 1356)ttccctgaaacaacccattg T/C ggccatccagaatcagccaa6736NDUFA24(3′flanking region 467)cacagcctcatgggtcagcc C/T actccagagggtgcattccc6737NDUFA25(3′flanking region 744)ggaagcaggggccctggcca C/T agccgctggcagtaagcagg6738NDUFA26(3′flanking region 838-839)tatagtctacaaagaatgaa (ACAC) aaagatcataacaatagcta6739NDUFA26(3′flanking region 838-839)tatagtctacaaagaatgaa6740aaagatcataacaatagctaNDUFA31(intron 2 2656)tccctgctgccctcccctgc G/A cactttatcttccctttgcc6741NDUFA32(coding region 241(Leu 81 Val))tgggccccagcctggagtgg C/G tgaagaaactgtgagcacct6742NDUFA33(3′flanking region 1019)tccttacctgcactggcacc A/G gctctggagccccagtccct6743NDUFA51(intron 3 2155)agactctagcatggtacctg G/C aacataaggttccttagaaa6744NDUFA52(intron 3 2493)ggcatattgctagttttctc G/T gtctcaatttcatcatctat6745NDUFA53(intron 3 2712)acaaattttgaactgttcac C/T taacacaggctttttctgaa6746NDUFA54(3′flanking region 1296)aggtatctaaaaggtattgc A/C atttggtcattggttctttc6747NDUFA55(intron 3 30-31)aagtcagttttgttgtcttg (GATTTGTGGTATCCAG)6748tgtaacatttaaccaaaaaaNDUFA55(intron 3 30-31)aagtcagttttgttgtcttg6749tgtaacatttaaccaaaaaaNDUFA56(intron 3 427-428)attaagtagcagttaataaa AG/Δ tctagactgctgattcatac6750NDUFA57(intron 3 4733-4734)tataggaattttaaaatata TA/Δ ggatattgaaacattcagtt6751NDUFA61(5′flanking region −1148)tttataatttatatatgtta C/T gtgctttcttttgtatagct6752NDUFA62(5′flanking region −363)actaccaaggagcgcggcgg G/A cagccggatagcaggacgct6753NDUFA63(coding region 26 (Ala 9 Val))ggggagcggcgtccgccaag C/T tacttctaccgccagcacct6754NDUFA64(intron 1 1318)attcagcagtttgaaaacat A/G atgtttgcctggcagaatac6755NDUFA65(intron 2 562)agttaaagaatctgaaaagt G/C tcagaaatgatttaccctga6756NDUFA66(5′flanking region −861)ctgtaaaatggggatgctga (T) ggtacctacctgacctatga6757NDUFA66(5′flanking region −861)ctgtaaaatggggatgctga     ggtacctacctgacctatga6758NDUFA67(intron 1 1251-1278)tgtggggagtgactgtagca (GT) 12-146759ttcggggtggtgcattcaaaNDUFA71(5′flanking region −731)accaaccaaaggtctatcaa A/G ggggtgtcctctttgcaccc6760NDUFA72(5′flanking region −434)aaagggaaccatcagaaccc C/T gtgatgaaatgagaatcggc6761NDUFA73(5′flanking region −395)gctcccggattccggctggc A/G ggggttagggcagggtagag6762NDUFA74(5′flanking region −100)agaggagtcacgtgcttcgg G/A gagagcctttataggacgtt6763NDUFA75(intron 1 92)tcacctccctcctaagccgg G/A acccttcgctctccccgaat6764NDUFA76(intron 1 133)ctccctgggaacccccagct A/C gt c/g accccttcagcccggga6765NDUFA77(intron 1 136)cctgggaacccccagct a/c gt C/G accccttcagcccgggaccc6766NDUFA78(intron 2 89)tcctttagacccctgaaacg G/C agggctgacatcctgccac6767NDUFA79(coding region 196gccgccgggaatctgtgccc C/G cttccatcatcatgtcgtcg6768(Pro 66 Ala))NDUFA710(intron 3 4203)gcctccacccctggggcgcc T/G cctccatcaccccaccctcc6769NDUFA711(intron 3 4604)gggccttgtgtacgctggag A/G ccaaaagtgggaagggagga6770NDUFA712(5′flanking regionagggtccagggtcccctgct CAGAGGCT/Δ 6771(−1353) − (−1360))aacactggccgaagagaagNDUFA713(5′flanking regionagccctgatccacccactct CT/Δ gaaacttctttgctaataaa6772(−1233) − (−1234))NDUFA714(intron 2 4142-4143)cattttgtgactgaggtgac AG/Δ gggcccacagcggggccatg6773NDUFA81(intron 1 −75)tttgtgttctctattctgac C/T cgcatgaggtaaagctgaga6774NDUFA82(intron 2 790)caaacctagacaaagtgtgc c/T ctttatccagaagtgagcag6775NDUFA83(intron 2 900)ttcaggagataaaaagctct G/A attgctcaggcctgagatgg6776NDUFA84(intron 2 3837)gaagttgtcttgtaagtgag A/G taagaatatgtactcacata6777NDUFA85(intron 2 3942)tcattgttttgcaaagagat G/T cccctaacccagctttcttt6778NDUFA86(intron 3 −66)gaggagacaccaggaggcgc A/G ttgatggttacagattcctc6779NDUFA87(3′untranslated region 520)tttatttctggaccaagtaa A/G gatgggtccgtggcccacac6780NDUFA88(3′flanking region 367)gtcatacaaggggagcctcc A/G ggatagaagtgcagaaactt6781NDUFA89(3′flanking region 777)attcttttttcactactagg C/T tgtttcctccacatctgact6782NDUFA810(3′flanking region 1053)aaagaaaaagcactgtgtga T/A ctgccatggccgcttctgca6783NDUFA811(3′flanking region 1190)gattctctaatgaaaaataa G/T acttttttttgcattttttt6784NDUFA812(intron 2 449-453)tcattgtgcatgatacttaa GTAAA/Δ aaaaaactaagctgtgtaat6785NUUFA813(intron 2 455-459)tgcatgatacttaagtaaaa AAAAA/Δ ctaagctgtgtaattgtagg6786NDUFA814(intron 2 707-708)tcattttggaaagactctca (A) ccttgctgtaccaaaaatgg6787NDUFAB14(intron 2 707-708)tcattttggaaagactctca     ccttgctgtaccaaaaatgg6788NDUFA91(5 flanking region −807)gatggctctttgtagaacaa T/G gcagattctcaaaggtgacc6789NDUFA92(5 flanking region −769)accacagttaaagaaaaaat T/C acaagccattgcgctagaga6790NDUFA93(5′flanking region −353)cacaccctattttggtttct C/G ttctccacttttcccctcgt6791NDUFA94(5′flanking region −322)ttcccctcgttcttgtcccc C/T cttttctctctcctgggccc6792NDUFA95(intron 1 447)attcatatgagcacaatgga A/G atgataatattacaatacca6793NDUFA96(intron 1 1039)ggcttgatgttcagcctgag G/A caagaattaggagtgtttag6794NDUFA97(intron 1 4010)aatgtatccaaaagagattc T/G cattcctgccatatgaagaa6795NDUFA98(intron 3 49)gacaaatataaattactaag G/A tcatttttaggagtgatagg6796NDUFA99(intron 3 107)aatttcttcccagaatggac C/T aaaggcatcctctgttccca6797NDUFA910(intron 3 1183)atctctggtaatattcatac A/G gattatttgtaatcccttta6798NDUFA911(intron 3 1395)attcctagttctttgtccct C/T aagtttgttggtcaccttgt6799NDUFA912(intron 3 2363)agaaaatagtcatgaatggc C/T ccaactaacactagtcttta6800NDUFA913(intron 3 2608)gtcatttgattacctgagta A/C agtgtactgttacctgtttg6801NDUFA914(intron 4 561)attttataaattctttgatg A/C cttgggggtcttattcaact6802NDUFA915(intron 4 860)attgtgtagagtaatgacag C/T agagctgtcaacttttttaa6803NDUFA916(intron 4 879)gcagagctgtcaactttttt A/T aaaaaataattttagcttaa6804NDUFA917(intron 4 893)ttttttaaaaaaataatttt A/G gcttaaaaaaattaaaaatt6805NDUFA918(intron 4 1090)atcattgctgtttaaaagtt T/C aagtagtgtgaatttcagta6806NDUFA919(intron 4 1188)aaccaatccttttatttttt A/T tcttccagaaactttgattt6807NDUFA920(intron 5 161)gggtgtgtgtgatgttttga C/T gttttgattgattgccttct6808NDUFA921(intron 5 373)ctttctcaccccttgcactg C/T agtggttttgtgccactctt6809NDUFA922(intron 5 457)gccagggaagatgcctattc A/C cacagtgcttatgctccttt6810NDUFA923(intron 5 3113)gatttttctccttcttcaat G/A taagcttcccttaaaataaa6811NDUFA924(intron 5 3339)tctaaactcaaaacaggttt G/A tttggttattgtttaggctg6812NDUFA925(intron 6 414)tatagttttgccttttccag G/C atattacatatatggttaga6813NDUFA926(intron 6 518)ctttcatttcttttcatagc T/C tgatagctcatttctttata6814NDUFA927(intron 7 974)ggattatgcgtacttggaaa A/G tacttggatagcggtgatta6815NDUFA928(intron 8 368)acattaattttgatggagta T/G cacaatgcctccagaggctg6816NDUFA929(intron 8 954)gcatgcaatcagttatatag T/C ctagataagaattacaattc6817NDUFA930(intron 8 1253)tcctcttgaaattgtagata G/T gtatctacacatttctcatc6818NDUFA931(intron 8 11608)gaaaagatagatgtataaat G/A accaaaaattcgtgaagaaa6819NDUFA932(intron 8 11930)ctacaaatatattctaaatg C/T gtaatcatggataagtacaa6820NDUFA933(intron 9 1998)tgtttttcaagcctttaaac G/A gctgtggaaccctgtgctca6821NDUFA934(intron 9 2238)ccagctacttgggaggctga A/G gtgggaggatcacttgagcc6822NDUFA935(intron 9 2885)acagcggtctgtcttcctgc A/G gttctcataggctagcttac6823NDUFA936(intron 10 801)tacactaaagtgtctcttac G/A tttatacttgagaaagtgtt6824NDUFA937(intron 10 910)tgcagactttcaggtgggta G/C gatgagggattgctgctgct6825NDUFA938(intron 10 1180)aaaactgagtcagaacgccc G/A tgctcagaaaacaggggcgt6826NDUFA939(3 flanking region 554)gtgccagcacttaggaatta T/G gaccttctaatgaagttcttNDUFA940(5′flanking regiontaaacagtaggggcaagata (TC) gagtggaaacagccaagatt6828(−1129) − (−1128))NDUFA940(5′flanking regiontaaacagtaggggcaagata6829(−1129) − (−1128))gagtggaaacagccaagattNDUFA941(5′flanking region −341)tggtttct c/g ttctccacttt T/Δ cccctcgttcttgtcccc6830c/t cNDUFA942(intron 4 594)attcaactttttatcccccc T/Δ aatgattaacatagtgtatt6831NDUFA943(intron 10 356-375)taacttcctcctaacgtcct GAAGAAACTGTTGACAGTTT/Δ6832cttccttctttctttaacctNDUFA944(intron 10 379-381)gaaactgttgacagtttctt CCT/Δ tctttctttaacctactcca6833NDUFA945(intron 10 384-387)tgttgacagtttcttccttc TTTC/Δ tttaacctactccagtcagg6834ccatttctcccctaaaattg (TTCTTTTAAAATTG)6835NDUFA946(intron 10 436-437)ctcttttcaaggttatccacNDUFA946(intron 10 436-437)ccatttctcccctaaaattg    +01 ctcttttcaaggttatccac6836NDUFA947(intron 10 495-496)gccacatccaatggtcagtt (TTCAGGCCTTT)6837ctcagacctcatgtcatgtgNDUFA947(intron 10 495-496)gccacatccaatggtcagtt    +01 ctcagacctcatgtcatgtg6838NDUFA948(intron 10 519-520)tgcatttgcttctagggagg6839NDUFA948(intron 10 519-520)tgcatttgcttctagggagg6840NDUFA949(intron 10 558-559)gatgcaaaataaaataaaaa (A) tactataccaataccacatc 6841NDUFA949(intron 10 558-559)gatgcaaaataaaataaaaa     tactataccaataccacatc6842NDUFA101(5′flanking region −1734)tgcaccttgaactgtttact T/C tcctgtaaccatttacccttNDUFA102(5′flanking region −1492)aaaacatccacgcaaacagg T/C tgtgagaagttacgtctgcgNDUFA103(intron 3 370)aagactgtgcatgtgccatg C/A agacagagatgtggatgcca6845NDUFA104(intron 3 2485)ttgttattttcttttctctg G/A aatgcagtgatcagttgaca6846NDUFA105(intron 4 236)ctgtgaaagcagattggagc C/T ctggacctcaaacacacgca6847NDUFA106(intron 4 1742)tgtcggcatctgctgagtgt C/T tgctgaagtctgaggactgg6848NDUFA107(intron 4 2090)ggctgggggaaagcagatca T/C gttggctaaaggacaggtgg6849NDUFA108(intron 4 3054)cagctgattatactactgaa A/C cgggataaatg c/t agcttgat6850NDUFA109(intron 4 3066)ctactgaa a/c cgggataaatg C/T agcttgatgattttcagctg6851NDUFA1010(intron 4 3377)gtcacagtttaaatgctgct G/A ttttactctgtgtaagtagc6852NDUFA1011(intron 5 46)aagcatctctattttgaatg T/C agatcagcactaaaagccct6853NDUFA1012(intron 8 1465)gcaacgcccagttcctggta C/T aggcctcatatccagcgtgc6854NDUFA1013(intron 8 1809)cctggaggcacaaggatggc C/A ggggcactcaacttccctct6855NDUFA1014(intron 8 11226)gttgtgtgactgtgtggggc A/G tctcacctctcgggctgcag6856NDUFA1015(intron 8 11319)atcttgccttccctcctgcc G/A tctgttcaggcttgaatcct6857NDUFA1016(intron 8 11386)ccataatcctagcttgaacc C/T tcctttttccctgctgaccc6858NDUFA1017(intron 8 13361)ccaggccactgattgctttc G/A cattttctagcattttctta6859NDUFA1018(intron 9 183)tttctgtgtggaaagctgat G/A aagtcctcagatgacagccc6860NDUFA1019(intron 9 8028)gaggacattccacagaacgt G/A tgactattagagcagaaggt6861NDUFA1020(intron 9 10742)ctggaggagaggggtggagc C/G agttcagccagcactggggt6862NDUFA1021(intron 9 13908)cacattgttatgtaaccaag C/T CT g/t gaattgcagtgtgaaga6863NDUFA1022(intron 9 13911)attgttatgtaaccaag c/t CT G/T gaattgcagtgtgaagaact6864NDUFA1023(intron 9 14064)tcttgactattagaaaccct A/G tcagataaattttaaaacag6865NDUFA1024(intron 9 14184)tggctttggttgggaacagc G/A agagatacagaaccgacggt6866NDUFA1025(intron 9 16487)cttgaagctgatcgttccct C/A cttgaagctgatcgttccct6867NDUFA1026(intron 9 16779)gccagacgtgactgctttag G/A ttcctcatgacattcagacc6868NDUFA1027(intron 9 17663)ttccaaatcaccccagaact T/G tgcagtattttgaagctcct6869NDUFA1028(5′flanking regiongtaaaattgttttaactaga (C) 9-11 ttcctaaaccaaggtataaa6870(−1668) − (−1659)NDUFA1029(5′flanking regionctgtatccattggaaggcac (A) 15-216871(−1355) − (−1334)tgcaaaggaaacaaggcaaaNDUFA1030(intron 1 46-61)tggcggggtggcagggtggc GGGGTGGCGGGGTGGG/Δ6872gagcagttccacatctccccNDUFA1031(intron 4 2486)ctcactggaacttttttttt T/Δ aatttaatttttaaaatttt6873NDUFA1032(intron 7 1600-1601)cacttccattctgactgtta (A) cggtgtgattcttcctgcca6874NDUFA1032(intron 7 1600-1601)cacttccattctgactgtta     cggtgtgattcttcctgcca 6875NDUFA1033(intron 8 1054)gcgcgtgctgtttctccctt A/Δ tctgtccttgtacacgtgtg6876NDUFA1034(intron 9 8161-8172)aatgttgaaaatatgtgttt6877NDUFA1035(intron 9 8646-8647)aattcccccattgcttctct (TT) ctgtagacattttaaaccta6878NDUFA1035(intron 9 8646-8647)aattcccccattgcttctct ctgtagacattttaaaccta6879NDUFA1036(intron 9 16503-16523)ccct c/a cttgaagctgatcgt TCCCTCCTTGAAGCTGATCGT/Δ6880gtccaagatagttgctaggaNDUFA1037(intron 9 17905-17936)caaatatatgtatacatgta (CA) 12-186881tccttcatgaaaactctttcNDUFAB11(intron 1 8451)cagcaccctgtagaggcctc G/A ggatgctgaagatgccatga6882NDUFAB12(intron 1 8495)gacacaggcattctgcagac G/A ctagacaattttagtggcag6883NDUFB31(5′flanking region −1439)ttaaaagttgacttttttct G/A cc g/a ggcacggtggctcacgc6884NDUFB32(5′flanking region −1436)aaagttgacttttttct g/a cc G/A ggcacggtggctcacgcctg6885NDUFB51(5′flanking region −213)ggcggatgaaactctcctac A/C aagaagggccaaaccggccg6886NDUFB52(intron 1 6288)ggggatgttgattacctagg T/C cagtaaagtaaagaaggcat6887NDUFB53(intron 1 −1581)cttctgggccactgtatcct A/G tttctttcccttgttaccct6888NDUFB54(intron 1 −1487)ccctcttagaccgtatatag T/G tctagcataggatctgcaca6889NDUFB55(intron 2 556)ttgtctggaccatctgccac G/A gtagataaagctctgaatca6890NDUFB56(intron 3 467)ggcgccatcgcactccagcc C/T gggcaacagagtgagactct6891NDUFB57(intron 3 497)agtgagactctgtccccccc C/G caaaaaaaaactataatcct6892NDUFB58(coding region 397atgatagtcctgaaaagata T/C atgaaagaacaatggccgtc6893(Tyr 133 His))NDUFB59(intron 1 213-215)attagcatttctaaaacgtt GTT/Δ attcaccatcccaattaatg6894NDUFB71(intron 1 68)cctgaacacctggcacccca G/A ggctggcaccccagggctgg6895NDUFB72(intron 2 266)gggctctctaggggcctgtt T/C gatggggacagggcaggtgg6896NDUFH73(intron 1 4480-4481)agttctgaggctgagagaga (GA) ggccacgccgccggccagtg6897NDUFB73(intron 1 4480-4481)ggccacgccgccggccagtg6898NDUFS11(5′flanking region −3)tcctagggggtcgtcgtggt C/G cagacagtttagcagaacag6899NDUFS12(intron 1 445)gtgttagcaatggctcacgc T/C tctgtttgttgtccttgttt6900NDUFS13(intron 1 470)tttgttgtccttgtttgttt G/T gtccattgaccacgttggac6901NDUFS14(intron 1 502)acgttggacagcattttttt A/G ttcctttaactaacgggaaa6902NDUFS15(intron 1 557)ttttgaaaagttagcccagg A/G ttgcattgcaaataacaaaa6903NDUFS16(intron 1 5218)tatctcagaatatctcagga A/G catttagtagacagctatgc6904NDUFS17(intron 3 1371)aagccctaaaatagatagtg T/G caatgggaatgaaaacaaga6905NDUFS18(intron 5 414)ttttgaaacgaggtctcact A/G tgttgtccaggctgggcttg6906NDUFS19(intron 10 812)gagtgcggtggcgcgatctc G/A atctcgggtcactgcagcct6907NDUFS110(intron 11 233)ggaggccaaggcaggcagat C/T gcctaagtgcaggagtttga6908NDUFS111(intron 11 283)ggccaacatggcgaaacccc G/A tctctactaaaaatacaaaa8909NDUFS112(intron 11 585)ctgtatgtcttaattttaaa G/T taaatttgcattttatatat6910NDUFS113(coding region 1251gcaccactgtttaatgctag A/G attcgaaagaggttggtaat6911(Arg 417 Arg))NDUFS114(intron 13 5159)attacttttagaaaacgtgt T/C ttagctgatactcaggcata6912NDUFS115(intron 14 250)aaaaattgttatattagtta C/T accttggttcaaaaattgca6913NDUFS116(intron 14 550)gataaagtctcactatgttg C/T ccaggttgatctcaaactcc6914NUUFS117(intron 14 2429)ctgaaaatacaaaaattagc C/T gggtgtggtggcatgtgcct6915NDUFS118(intron 14 2530)ttacagtgagccgagatcac G/T ccactgcgctccagcctggg6916NDUFS119(intron 14 2659)acacatttaattttttacat T/C gaaaatactgcagttatggt6917NDUFS120(intron 16 150)agaaaacatgtattcagaaa C/T aggaattcaaggttacagtg6918NDUFS121(intron 18 279)cactgtgtagcaatttatgg T/C gaattttccaaagtggcaaa6919NDUFS122(3′flanking region 182)tctaggataattataattaa T/A aataatcatagtaacaatgg6920NDUFS123(intron 12 3226)aaatgtattgtctgtgcttt T/Δ aacattttgtaatagtaaat6921NDUFS31(5 flanking region −194)tctgccacaaggagctagga C/T cacgctcacctcacgatttc6922NDUFS32(intron 1 46)cggggtcaggcgcagcggcg T/C gcccagtgcagagagctcct6923NDUFS33(intron 6 −439)aaagctgtgtcaaatgtact G/A ctttagatctggactgtgaa6924NDUFS34(intron 6 −280)ggtgggtgagcagtcagttc G/A gagctcctgatgtgggagtg6925NDUFS4(5′flanking region −439)aactgaatacagccctgtcc T/A gagggcttgcaaagtgaatc6926NDUFS42(intron 1 1829)gaaaaaaaatcttaatgcca G/T ggaagacgttttttaaatac6927NDUFS43(intron 1 2057)attaatgggaaaatctacat C/G taaaattcattttattgtaa6928NDUFS44(intron 1 −521)ttcattttaactaattttat T/G tctcccattttgtgaatggg6929NDUFS45(intron 3 −1259)ataaaattatgatattatta G/A tactaatatagccagccata6930NDUFS46(intron 3 −1174)aatatatataattataggaa T/C ctcagagtagcaaccatggt6931NDUFS47(intron 4 10682)cacaatataggcacaaactt A/C ctaccaaagcactaacaagt6932NDUFS48(intron 4 12299)tttactatatagatatatgg A/T atagactatagagtatctct6933NDUFS49(intron 4 12s60)accaaataaggtattatgca G/A gctcatctttttatataaga6934NDUFS410(intron 4 18801)ggaaagacttgctttgccag T/C gtatccgaaacctctgttat6935NDUFS411(intron 4 19888)tcgcacagctgagaagagca A/G ggggctggttttcagtaccc6936NDUFS412(intron 4 20178)agaaaagatgagtataattc G/A tctaacttacccattcttaa6937NDUFS413(intron 4 23016)ctactctgtgaaagtaaggt T/A atgttgaacaagtaaattaa6938NDUFS414(intron 4 23124)actttctttggagatggagt T/A ccagcagttgggaatgtaat6939NDUFS415(intron 1 766)tgtgatgatttttttttttt T/Δ ggctgtattaaccttccatt6940NDUFS416(intron 1 1261)tttctttctctttttttttt T/Δ gagatacattctcactctga6941NDUFS417(intron 4 19744-19745)ctcatcatttaggtgctggt (T) agttgggtttgtggcaaatc6942NDUFS417(intron 4 19744-19745)ctcatcatttaggtgctggt     agttgggtttgtggcaaatc6943NDUFS51(intron 1 388)ccaaacatagccagcacttc C/T ggctgtaactccgggctgtt6944NDUFS52(intron 1 −13082)agtgagccgagattgcacca G/A tgcattccagcctgggcaac6945NDUFS53(intron 1 −12905)gttttcaacaaaggactcca G/T agtagtagagaagtttctgt6946NDUFS54(intron 1 −12564)attttcatcacacctcaact T/G aaggtataacagccttaaga6947NDUFS55(intron 1 −12561)ttcatcacacctcaacttaa G/A gtataacagccttaagaatg6948NDUFS56(intron 1 −10561)aacaatgtggtatagtgggg C/G gggtggtgagcaggtgtcat6949NDUFS57(intron 1 −9065)cctgatgctcctggctccag G/A gtagaccttttccctttaga6950NDUFS58(intron 1 −8871)tcaccacgtgtctgtagata T/C aggaccgcagaccttcgctt6951NDUFS59(intron 1 −7312)aaatccttggcttctagaat G/T ggtcactgatggtatataat6952NDUFS510(intron 1 −6827)aacctctgcctccccgattc A/G cgccattctcctgcctcagc6953NDUFS511(intron 1 −6725)agtagagacggggtttcacc G/A tgttagccagcatggtctcg6954NDUFS512(intron 1 −6631)aggcgtgagccactgcgccc G/A gcctagaccttcttcttata6955NDUFS513(intron 1 −6531)cccaacagctcccaatgtaa A/G acagatctattaatattctg6956NDUFS514(intron 1 −6348)gcaacagatcttgacctata T/C cccatagggtacagctgagg6957NDUFS515(intron 1 −6327)atcccatagggtacagctga G/C gactttaatcagaaaaggag6958NDUFS516(intron 1 −6122)tagccttgcttttactctac T/C gttcctcccaaatcacaccc6959NDUFS517(intron 1 −2512)acaaactcttaatgcgaatt T/C tgcagatcaaagtgggctta6960NDUFS518(intron 1 −1945)tttaatctcctttaaatttc G/A caatttcacaacctagggta6961NDUFS519(intron 2 75)tttttttttttttttgagac G/A aagtctcactcttgtcccct6962NDUFS520(intron 2 148)ctgtagcctctgcctcccag G/A ttcaggcgattcgcgtacct6963NDUFS521(3 flanking region 150)cagattcaagtggttctcct G/C cctcagcctcccaagtagct6964NDUFS522(intron 1 (−10682) − (−10681))attataaacactaaacaaac AT/Δ gtgtggtctctttagagggg6965NDUFS523(intron 1 −10267)caagtgactaccctgaaaaa A/Δ gaagagatgaaacaaatcac6966NDUFS524(intron 1 −2069)accagacagagttcccttta C/Δ ttgttttcctgtggcaaaga6967NDUFS61(intron 1 26)ggccgctgggtacaggatgc A/C ccttcctccagccgcacctc6968NDUFS62(intron 2 1076)ggatcatggtggtggagagg G/A gcttgtgtctggtgggtttg6969NDUFS63(intron 2 1260)cagttgtcgagtaagtggtg T/C atagggtaagtgctctttct6970NDUFS64(intron 2 1413)caaaggagctcatggcattg C/T gaatgggacatttcttccgt6971NDUFS65(intron 2 1568)tggagaaggggaggtttctc T/C tagtgtggatgcggtatggt6972NDUFS66(intron 2 1692)gaccgtggtgacggaggttt C/T ctgggcatcgatgggtggtt6973NDUFS67(intron 2 6488)tagcttaaataattattggc A/G ttcatgttcagaatgcctga6974NDUFS68(intron 2 6563)tttaaacttttattttaaat G/A tccatgaatggggtcggtat6975NDUFS69(intron 2 6740)aaagatttaaacctacatat C/T tttatgcccaatcatttgat6976NDUFS610(intron 2 6832)gcgagggactcattttacag A/T ggttggacacttcactgtgt6977NDUFS611(intron 2 7054)ttcactgccggagcttggcc G/A tgtgaacccggagccgggct6978NDUFS612(intron 2 7186)ggtcagggtcacccttgagc T/C gcgcacactaaatgacggga6979NDUFS613(intron 2 7225)gagggcatcccgcgtcagtc G/A ccagtgtcgaggcgtcagca6980NDUFS614(intron 2 7810)cttccactctggggcgggga C/T gctgtagaaggagcacaaag6981NDUFS615(intron 2 11080)gtaactgttcagtgctttct C/T ctttggatttcatgtaaatc6982NDUFS616(intron 2 11657)gggacagaacgatgtggtgg G/A gagaagagggcgtggcagag6983NDUFS617(intron 3 208)cgaaaaccccctttcaactg T/C gaagtggtgggcggcatgtt6984NDUFS618(intron 3 1031)ctagagtgggactgggcacc C/T ggcatgtcccctcctgggct6985NDUFS619(3′flanking region 270)gcttcagagagccaaggtgg G/C tcttgaggtgcatagtgaag6986NDUFS81(5′untranslated region −45)agtgtagcctccgcctcccg A/C ttgactggcctgcttggcaa6987NDUFS82(intron 1 163)aggtgcagcggggagccggc T/C ctcagggcgcatgcgccgcc6988NDUFS83(intron 3 123)tctctgagcctgtttccact T/C ttaaaatgattatggtgatg6989NDUFS84(intron 5 −505)aggcaaggcaggccgggcac G/A gtggctcacgcttgtaatcc6990NDUFS85(3′flanking region 491)ggccctgagctggcctgcgt C/A cagccacatcctctttcctg6991NDUFS86(3′flanking region 693)ttcacttcatttgcagtgag G/A aaaccagctccgagaggtga6992NDUFS87(3′flanking region 1267)ttttcccegacgtaaccgcc G/A tcagagcgtggcatggagcc6993NDUFS88(3′flanking region 1362)cgctgggttctttcccttac C/T gtggtctcccaggcacttac6994NDUFS89(3′flanking region 1449)tgtcagaacaggcctatggc G/A cccaaccacaagtcccccaa6995NDUFS810(3′flanking region 1572)cagccccacaggcctgtgct C/A gctgtgtggggcttagggat6996NDUFS811(3′flanking region 783-784)cagagaccttgacccccccc (C) atctaccatcatttccaaaa6997NDUFS811(3′flanking region 783-784)cagagaccttgacccccccc     atctaccatcatttccaaaa6998NDUFV11(intron 3 670)ctgggtggagtggggtggca T/C ggagttgaagacccagtcct6999NDUFV12(intron 6 160)tgtgccggccccagccctga C/G catgcatccctttggggacc7000NDUFV13(intron 9 27)accacccttctgcgtagcac G/A gagggtgggtggcatcaagg7001NDUFV14(3′flanking region 1111)tgtaggctgaggtcagcccc A/C atccagtccaaagcccaccc7002NDUFV15(3′flanking region 1658)gaatgcggaagtgctctgtg G/A gcacccaccatgctccgggc7003NDUFV16(3′flanking region 1713)gatctggggcggagggtaca C/T ggggctggcgctgggtgaag7004NDUFV17(intron 4 214)tggtgtaaattttttttttt T/A gcttcaaaaatatagtattt7005NDUFV18(3′flanking region 772-774)tgaactcggggttcagggtc TTC/Δ ctgtgaacactggttttgaa7006NDUFV21(intron 1 526)ggaaatgctggctaaataaa C/T ggtatcaaactaactctgaa7007NDUFV22(intron 1 6689)tcgttggatggtagtattgt T/G tgaacaacagaagaaattca7008NDUFV23(intron 1 14767)ccaaatgcatgccagcagag C/T gtggcaggaaggtacacaag7009NDUFV24(coding region (Ala 29 Val))aaggaatttgcataagacag T/C tatgcaaaatggagctggag7010NDUFV25(intron 2 −289)cagaagatcttactctctaa T/G gaagctggataacacttttt7011NDUFV26(intron 2 −168)tttactttggtaatcatact T/C atcaaatgtgtgtttagaca7012NDUFV27(intron 4 677)aaaccacatactatttgatt C/A tgatgagaatcacataacca7013NDUFV28(intron 4 2295)tatgattcaactttcaaaag A/T gtattgtgatatgaaataga7014NDUFV29(intron 5 102)caacttctgccatcttattg G/A atctgtacttacctagtaat7015NDUFV210(intron 7 5466)tggtaagaggctttaagata A/C caaatgcicagctttcagga7016NDUFV211(intron 1 13562-13563)tactcttaaaattaatcctt (CTT) ttattataagtatacagtct7017NDUFV211(intron 1 13562-13563)tactcttaaaattaatcctt      ttattataagtatacagtct7018NDUFV31(5′flanking region −222)cgccgcgcccccgccacagc G/A cccaggcgcccgcagggcac7019NDUFV32(5′flanking region −111)tggccccaagggaggcactt A/G gccctactggggatgcgcgc7020NDUFV33(intron 1 137)ttgggccgctgaccccgctc C/T ctgggcccaggactgaccgc7021NDUFV34(intron 2 152)tatacaagacacaagatcta T/C aacagattttagaccaaaca7022NDUFV35(intron 2 6304)ttcacagatgaaggggttcc G/A aaatttttgtcaagaaagac7023NDUFV36(intron 2 6433)tcgccttcgtcttcatcctc T/G tccagctcctctgattctga7024NDUFV37(intron 2 6563)cctttgaaaacagagccccc C/T gagttacagtatcagcaaaa7025NDUFV38(intron 2 9619)actatcttctgtgcgcatgc G/A cagagcccaccttgcagagc7026NDUFV39(intron 2 9858)aggatgccagctctttaaat G/A agacatcgtttttgcttaac7027NDUFV310(intron 2 11673)cttggtaggtaagcgcctgt A/G tgtgagccaagtcattcata7028GGT11intron 1 + 89ttatccagtaaggtggctcc G/A tcacctcttttcctggtggg7029GGT12exon 3 + 68gacggccaggtccggatggt G/T gtgggagctgctgggggcac7030TGM11exon 2 + 179tgccgaaatgcggcagatga C/T gactggggacctgaaccctc7031TGM12intron 9 + 1594acttaccactctgtcctctc C/T tgccaggcctcttcctgtca7032TGM13intron 9 + 1933ccgcacatctgtaccctgcc C/G ccatcctccagcagagcagc7033TGM14intron 10 + 54tcagtcatgggttctctggt C/T ccaacttcaccgctgactga7034TGM15intron 10 + 420aggaggccgggagtcaggcc A/G ccctcagaccctctggctca7035TGM16intron 12 + 101gggagtccctgggggaagcc T/G catgtagggaagcaggcctc7036TGM17intron 13 + 72ggataaggacatcagaggtg G/A gcgctaagccagcagcaggc7037TGM18intron 14 + 1671atctcttacccacaccccca C/G catggtggggaggttcctca7038TGM19intron 14 + 1691ccatggtggggaggttcctc G/A tcctaagggatccgcagagc7039TGM110intron 14 + 2983tccctgcctccctccttcag G/A gagctcagaaacaccttcaa7040TGM111intron 14 + 3158ggaaacccctcagaaccagg T/C tccaagccaaatgctttgcc7041TGM112intron 14 + 3816cagaatacaaaagtgggatg G/C gaggcaaggagtcccgttag7042TGM113exon 15 + 233ctcgaggtggagcttagccc T/C gtgccaggagcaatgggact7043TGM114exon 15 + 369ggagtcagtcttcacttgca C/A tgggggaacagatgctaata7044CYP1A115′flanking − 1061ccgccccgactccctccccc C/G tcgcgtgactgcgagccccc7045CYP1A125′flanking − 1035tgactgcgagcccccgcgcc G/A ggccggggaatgggtcggct7046CYP1A135′flanking − 1020gcgccgggccggggaatggg T/G cggctgggtggctgcgcggg7047CYP1A145′flanking − 947cgcgcctccgggccaggtgg G/A gcggggacgggccgcctgac7048CYP1A15intron 1 + (1326-1334)cattcattgagaattgagcc (A) 8-9 ccctggcctggatttctctg7049CYP1A16intron 1 + 1357ctggcctggatttctctgac T/C aaagagctcaatctagctgg7050CYP1A17intron 1 + 1590ccactcttcaaaaggaggta C/T atgtgacagcagctggaaat7051CYP1A18exon 2 + 160gaatccaccagggccatggg G/A ctggcctctgattgggcaca7052CYP1A193′flanking + (710-720)gagacggagtctcactgtgt7053CYP1A1103′flanking + 834gcctcagcctcccaagtagc C/T gggactacaggcgcctgcca7054CYP1A21intron 1 + 103gcctgggctaggtgtagggg T/G cctgagttccgggctttgct7055CYP1A22intron 2 + 371cttccctgtgttcacactaa C/T cttttccttctttgaaattg7056CYP1A23intron 4 + 44atagccaggagaagccttga G/A acccaggttgtttgttcagt7057CYP1A24intron 4 + 206aagagtgacatggggtataa G/C aggggataattcatggggca7058CYP1A25intron 5 + (623-648)catagaaaatagaaaaacat7059CYP1A26intron 6 + 81tccctgctaggaactgttta T/C ataatgaaaggaggggacct7060CYP1A27exon 7 + 181ctggccatcctgctacagca A/T ctggagttcagcgtgccgcc7061CYP1A28exon 7 + 295cggctgcgcttctccatcaa C/T tgaagaagacaccaccattc7062CYP1B115′flanking − 3669tgtatcctgtgaagcatcac G/A gttatccttctctgcacatg7063CYP1B125′flanking − 3149tgacagcacttaccaaccta g/C ttcctctgatttttgagtca7064CYP1B135′flanking − 1222gggggaagccacccccgccc G/A agcgcctccggcttccctta7065CYP1B145′flanking − 376ttccgggaagcaagctcaag T/C cgcggagagggaagggaggt7066CYP1B155f lanking − 265ctggggacaccgtgcggcct C/T gattggaggtggctgtgatg7067CYP1B16intron 1 + 129tgcccgcagcgttgtcccca G/A attgcaggaaccgttacgcg7068CYP1B17intron 1 + 379tgagtgtcacgccttctcct C/T tctgtccccagcatgggcac7069CYP1B18exon 3 + (799-800)agcttctgggagattttttt (T) gagtcaaagacttaaagggc7070CYP1B18exon 3 + (799-800)agcttctgggagattttttt     gagtcaaagacttaaagggc7071CYP1B19exon 3 + 1284agtatagtggggttccatga G/T ttatcatgaattttaaagta7072CYP1B110exon 3 + 1398tcagcaaagaaaaaaaaaaa A/Δ gccagccaagctttaaatta7073CYP1B111exon 3 + 1468tctcataggttaaaaaaaaa A/Δ gtcaccaaatagtgtgaaat7074CYP1B112exon 3 + 1964ttgaataatatatgccttgt G/A taatattgaaaattgaaaag7075CYP1B113exon 3 + 1762ttgaaattctatttataata C/Δ agaatcttgttttgaaaata7076CYP1B1143′flanking + (2216-2226)aaaatttattcctatttcct7077CYP1B1153′flanking + 2230tttttctttttttttttaaa A/Δ tttattcctatttccttaca7078CYP3A41intron 2 + (754-763)cacaaaatgagtttgtgggg (T) 9-11 acacaaaggcggaatcacat7079CYP3A42intron 7 + 258accactaatcaactttctgc C/T tctatggatttgcctattct7080CYP3A43intron 7 + 894tgctgatctcactgctgtag C/T ggtgctccttatgcatagac7081CYP3A44exon 9 + (32-33)ttccttcagctgatgattga (A) ctctcagaattcaaaagaaa7082CYP3A44exon 9 + (32-33)ttccttcagctgatgattga     ctctcagaattcaaaagaaa7083CYP3A45intron 10 + 12tccaataaggtgagtggatg G/A tacatggagaaggagggagg7084CYP3A46intron 10 + 459agacatgtgacttttttttt T/Δ gaaaggtaacaatcactttc7085CYP3A47intron 10 + 608agccgtctcgaatgtctccc C/T acttcataactcctccacac7086CYP3A48intron 12 + 2487ttttttgcccattactccat A/G gagatcagaatatcactctg7087CYP3A51exon 1 + 69ggaagactcacagaacacag T/C tgaagaaggaaagtggcgat7088CYP3A52intron 1 + (955-956)tgtgggtagtggaggctcca (A) cctgtcccattaacttctac7089CYP3A52intron 1 + (955-956)tgtgggtagtggaggctcca     cctgtcccattaacttctac7090CYP3A53intron 1 + 1126acatttttaaatgaattgat A/G tggtttaaattcattcattt7091CYP3A54intron 1 + 1145tatggtttaaattcattcat T/G tttaaaccagaattttttgg7092CYP3A55intron 1 + 1543ttcatgggtcctggccccac C/A gtggaggtcactcaaagggc7093CYP3A56intron 1 + 2366cttatcttatatgccatact G/A caccatttgctatcaacagg7094CYP3A57intron 4 + 1813tggttctaattttactcttc G/A tgttcttcatccttgaaaat7095CYP3A58intron 4 + 1887aatgacatgaacaaggtgtg A/T ttgtgaagcaagggatattt7096CYP3A59intron 4 + 3384gagtgcttcgctatttgcct C/T aacaagaaaaagtcatttgt7097CYP3A510intron 4 + 3415agtcatttgtccacttttca T/C tgaacaatcttccttcatcc7098CYP3A511intron 4 + 3760aagataacacactggaagtc G/A cacaccaccataaaactgaa7099CYP3A512intron 4 + 3885acaattcacttcacgtggca C/T tgcaatagcgtcctctcgct7100CYP3A513intron 4 + 5061tacctacttttcaaaaaaaa A/Δ tcaccacatcatggcatccc7101CYP3A514intron 4 + 5316ccagatggctgggtctcccc A/T ctcccacccccgccccacat7102CYP3A515intron 9 + 77gttctgaaaatgtgcaggaa G/T tattccaggaagatgagaat7103CYP3A516intron 9 + 1791aaatttttattgggaaaaag C/T ctaccccatatttacttaca7104CYP3A517intron 12 + 1408atttaaataaaaaaaaaaaa A/Δ cacgagtccacaagaatttg7105CYP3A5183′flanking + 542tggagaaaatattcatagtt T/C cattctgccttctttgaaga7106CYP3A5193′flanking + 737atgaacactgaataaaaaat T/G gtcaattcgtcagttgattg7107CYP3A5203′flanking + 804ttttccttttttattctttc A/C ttttccctccttttctgaat7108CYP3A715′flanking − 1680cccaaggaacatgtggctcc C/A ggcacatacctggcacaaca7109CYP3A725′flanking − 1191tagaaaatcctccacttgtc A/C aaaaggaagccatttgcttt7110CYP3A73intron 1 + 1173cccccatttcaaatacacct G/A cttagcaggttatcctaaac7111CYP3A74intron 1 + 1597tttttctgttagcctcttca T/C tgtaaccaaaagcagcatta7112CYP3A75intron 3 + 762tccagtgtctgcctattccc T/C tcttctttttttcttccctt7113CYP3A76intron 7 + (1060-1069)atggtttcgttttctgttgg (T) 9-10 ctacagaagtctttccattc7114CYP3A77intron 11 + (592-594)taagacaaggtagggaggag AAG/Δ gaggagaattagaaaaacaa7115CyP3A78intron 12 + 911ccccctccattaacaatatc C/T tctcattttattccatttaa7116CYP3A79intron 12 + 1137gtctgtctgcagggaaaata T/Δ attcatgccttttgaaaatt7117CYP3A710intron 12 + 2147tattgtcagtaatttttttt T/Δ actttgatgctatactttct7118CYP3A711exon 13 + 218ttcatccaatgtgctgcata A/C ataatcagggattctgtacg7119CYP3A431intron 1 + 3579tcatgctcactttttttttt T/A ctcaaaatgatcagtcacac7120CYP3A432intron 2 + 2427tagagggaatcttttttttt T/A cctttttttctgctgcccag7121CYP3A433intron 3 + 3034tttttatatagctagggaga T/C tgtaaattaacaagtttcct7122CYP3A434intron 3 + 3433agtcaagataactttttttt T/Δ cataaaggaccacagtatgt7123CYP3A435intron 3 + 3504catgactcagtttccaacca T/C aacttttcattttggcatag7124CYP3A436intron 4 + 2767tagtgacttttgaaaaaaaa A/Δ ttagtaataagcaaaagact7125CYP3A437exon 5 + 22aaaacttaaggcacttttca G/A aaatcccattggacctaaag7126CYP3A438intron 12 + (1585-1584)tactttgagccctcattctc (A) ccaagtcacttcagtgtcag7127CYP3A438intron 12 + (1585-1584)tactttgagccctcattctc     ccaagtcacttcagtgtcag7128CYP4B115′flanking − 333gaaacattcacagtgcttgt A/T tgagaagacagtggttatta7129CYP4B125′flanking − 18gagcagctgaaggcaggtca G/T atgaaggctaggtggctgga7130CYP4B13intron 1 + 341tccaaaacctctggatagta C/T atagaagtaggcaatccatt7131CYP4B14intron 1 + 542cctatgggtggctcaggagc C/T gtgacaccttcccaggttca7132CYP4B15intron 1 + 2856gaggactttgcacatagtag G/A tgctcagctatattgttggc7133CYP4B16intron 1 + (2923-2938)caacaaattggtgtgtgtgg (GT) 7-8 agaatgccagctcccagatc7134CYP4B17intron 1 + 6086tttggaatctaaagactggg G/T cacgatgctagttgtgtgac7135CYP4B18intron 1 + 6598ttttggggtgtggggagagg G/A cccatagtagggagacagct7136CYP4B19intron 1 + 6660acctaagggtgtccatcctg A/G aggagagcagtcctaggggg7137CYP4B110intron 1 + 7242ccctggtctcccttaactca T/C gctggactgttccctttggt7138CYP4B111intron 2 + 107gcctgtgtactaagtctgcg C/G agctgaggttcccaccctac7139CYP4B112intron 3 + 361atggtgtggtggtaggacca C/T ggctggtcaccagaggctgt7140CYP4B113intron 4 − 492aaaggctttcacatctaaaa C/A gtgtctcctcattttctgtc7141CYP4B114intron 4 − 315ggattacttacatatacacc A/G tgcgggggagctcaccacct7142CYP4B115intron 4 − 157ctacccaccctatcctgata T/C tccagcaggatggagggcag7143CYP4B116exon 5 + 22acaagtgggaagagaaagct C/T gggagggtaagtcctttgac7144CYP4B117intron 5 + 125cccagggagccttagcttgc G/A gggagacaggacctgctcat7145CYP4B118intron 5 + (287-289)tgtctaagccaatccctcct CCT/Δ accctctgcttagcagggac7146CYP4B119intron 6 + 54gcctgggttcctcctcctgg C/T ccctctatgccccctcccat7147CYP4B120intron 7 + (99-100)agctcttaagcatttccccc (TC) tttcctcagcaaatataacc7148CYP4B120intron 7 + (99-100)agctcttaagcatttccccc     tttcctcagcaaatataacc7149CYP4B121exon 8 + 114tcctggtttctctactgcat G/A gccctgtaccctgagcacca7150CYP4B122exon 8 + 139tgtaccctgagcaccagcat C/T gttgtagagaggaggtccgc7151CYP4B123intron 8 + 247agaaagttgtcaacaagagg C/T tgatattttgtgtgctaact7152CYP4B124intron 8 + 366tgtgggggtgaacagagctg A/G gacagctgggagagccagtt7153CYP4B125intron 8 + 650cctttgcttgtggtcagaca C/A cctgcctttctctctgggct7154CYP4B126intron 8 + 844tcatatgtgagaatcccccc C/A ccacggggtatccagacaca7155CYP4B127intron 8 + 1767tcccattccaagaatgttct G/T gttgtgttgctggcagggat7156CYP4B128exon 9 + 53tgtgcatcaaggagagcttc C/T gcctctacccacctgtgccc7157CYP4B129intron 9 + 652agtcggatgtggtcatgaac G/T ctctgtcactggcagtggtc7158CYP4B130intron 9 + 774cctggtcaccaacctctgtt C/T tgcccacaggaagcctgatc7159CYP4B131intron 10 + 33tgggctgggagatcagacag G/T gtgggggactgggagggtca7160CYP4B132exon 12 + 224ccagatggctcaggctgtga C/A ctccctgggcaccaccctcc7161CYP4B133exon 12 + 270ctgggtgtggaggagttggg G/A ccccctgccttcaggaggct7162CYP4B1343′flanking + 129tctgtgtctcacagtcacgt G/A gtgctccaggcattcagggt7163CYP4F21intron 1 + (145-146)ccaagcccctggcaacctca CA/Δ gtgattcaggctgggccttt7164CYP4F22intron 1 + 193tttaatcagtctctctctct C/T tttcccattctaagtgctta7165CYP4F23intron 1 + 324ccctgctctacctccggcac T/C gcccgtccctgcctctccac7166CYP4F24intron 1 + 367tccctggaggtccctgggcc G/C ttctctgggcctcaggatct7167CYP4925intron 1 + 402ggatctcaccgtccatcccg T/C ctgccctgcaggatgtccca7168CYP4F26exon 2 + 35gcctgtcctggctgggcctc T/G ggccagtggcagcatcccct7169CYP4F27exon 2 + 166cggtgtttcccacaaccccc A/G agacggaactggttttgggg7170CYP4F28intron 2 + 125ggcagagaagcagaggaggc A/G tcttactcattcctctgctt7171CYP4F29intron 2 + 440gggccgtctcccacttccac T/C acacccgaaggcacctttct7172CYP4F210exon 3 + 48gttctgactcagctggtggc C/T acctacccccagggctttaa7173CYP4F211intron 3 + 701agactccaccccagcttggg T/A ccctttccttgacccctgtg7174CYP4F212intron 3 + 742cttcccatcgttggacgggc G/A aggctgagcagggggaatgg7175CYP4F213intron 3 + 1020gctttagctttctccatgtc G/A cttttcctatcaaggtygcc7176CYP4F214intron 3 + 1039cgcttttcctatcaaggtgg C/A cttttcctcatgatgtcaac7177CYP4F215intron 3 + 1040gcttttcctatcaaggtggc C/G ttttcctcatgatgtcaacg7178CYP4F216intron 3 + 1920ccacctgtctaacctctgtt G/C ctgtttgctcatgtctgggg7179CYP4F217intron 3 + 1945ttgctcatgtctggggcgtg T/A ctctacaatggctgttatat7180CYP4F218intron 3 + 2621agcattctgtagaatgctga G/A ctgtgctcaggggttgcgga7181CYP4F219intron 3 + 2665tgttggatcgtgtaggaggc A/G tgtcaaggcatgctggaacc7182CYP4F220intron 6 + 194gggtttgaactggtgggtgt G/T gtcagagctctgtaggggac7183CYP4F221intron 7 + 67tgtgaaatgtcagatgaaag G/A atttgaacttgattaagagg7184CYP4F222intron 7 + 2811ttccaagggaaattgccatt T/G aattctcctgtaactcaggt7185CYP4F223intron 7 + (3096-3097)ggggtgggggttgggggggg (G) ttactgccttctctccagga7186CYP4F223intron 7 + (3096-3097)ggggtgggggttgggggggg     ttactgccttctctccagga7187CYP4F224intron 8 + 145ggtgctgtctaccttcgggt G/A ctgaagcagcccagagaccc7188CYP4F225exon 9 + 44ctctcctgggtcctgtacca C/T cttgcaaagcacccagaata7189CYP4F226exon 11 + 48gaacccatcacaacccagct G/A tgtggccggaccctgaggtg7190CYP4F227intron 12 + 108tggtccaagttccagctctc C/T ttccctcacctcctctggag7191CYP4F228intron 12 + 285gcatggggatccaggcacgg A/T tacccccttctctattcctc7192CYP4F229exon 13 + 238aagtgaagcctagaattacc C/A taagaccctgttccacagtc7193CYP4F230exon 13 + 342tgtgcgtgaatgttcatggc G/A gccctattcacagtagccaa7194CYP4F231exon 13 + 563tagtgtactgtccttttata T/C gaaatttccagaacagycca7195CYP4F232exon 13 + 707aaatgttccggacctagata G/C tgacgaaggtagcacgacac7196CYP4F31intron 2 + 258cattaatgcacctctgcggg G/T ctcttgggcagggggttggg7197CYP4F32intron 2 + 916ttagggacatgtcctgagtc C/T acactgctccccacaaacct7198CYP4F33intron 2 + 3417atccaggtctcacacagtgt C/T acttcctctcttggctttag7199CYP4F34intron 2 + 4090gagagcatgaattgggtcct G/A tgtctttctctccagattca7200CYP4F35intron 3 + 89tgtgctgcctccagcgggtc G/A cgtgcccatgtgcagacagg7201CYP4F36intron 3 + 243tcaagtctgctgtacggcta C/T gtcttgtcacctgtatattt7202CYP4F37intron 3 + 502aggtctgggacccagggtcc G/C taagtgaactgtctgagaca7203CYP4F38intron 3 + 755ttttgtggccatgtcaggac A/T tgtgaacacatgtcagtgtc7204CYP4F39intron 3 + 855gggacagacagggtgtccta G/A gtccttgtgaaggcattctg7205CYP4F310intron 3 + 970cctgacatagctcctacgtg C/T catgttaggcagtgtcattg7206CYP4F311intron 6 + 122gaggagttgttatacctgat C/T gttgaaggactggtatgaat7207CYP4F312exon 7 + 159ggtgcacgacttcacagatg C/A cgtcatccaggagcggcgcc7208CYP4F313intron 7 + 2107caggttgccagtgatttttt T/A ctcagaaagttttcatcaag7209CYP4F314intron 7 + 2255taccaagaagggtctaggag T/A gcaagatgggcttgggtttc7210CYP4F315intron 8 + 132cctcaatgcaaaggttgctgt A/C caccctcgggtgctgaagca7211 CYP4F316exon 9 + 59taccaccttgcaaagaccc G/A gaataccaggagcgctgtcg7212CYP4F317intron 9 + 13attgaatggtgagtgcaggt G/A ctggtgccctgttcctgagc7213CYP4F3189 + 36ggtgccctgttcctgagcct G/C tctcattggctctgttcccc7214CYP4F319intron 9 + 167acccatcctgactgtctggg C/G aaaggttataggcccttagg7215CYP4F320intron 9 + 369tccctaattcctacccttcc G/A tccagtccagggatttataa7216CYP4F321intron 9 + 458tcattcatccatccagtcct T/C gttcagcaaatactctcata7217CYP4F322intron 10 + 46ctcctgggtaggaagagggg A/C ccctcaggcagggagcattg7218CYP4F323intron 10 + 63gggcccctcaggcagggagc C/A ttgtcctgactgcccccttc7219CYP4F324intron 11 + 14tcctgaggtgcgggcccccc C/G tctctgtttttgtccattcc7220CYP4F325intron 11 + 84gatcaggagaatccaacatc G/A cctccctccaagacacacac7221CYP4F326intron 11 + 113caagacacacaccactgtct T/C tccaaggctggcggactggg7222CYP4F327intron 11 + 164cggcaacccttcttggtctc T/G cctccaggtctatgacccct7223CYP4F328intron 11 + 165ggcaacccttcttggtctcg T/C ctccaggtctatgacccctt7224CYP4F329intron 12 + 156taaaaggcccacagagtagg G/A ttgggttggtcctagaagga7225CYP4F330intron 12 + 253gagctcggctaggctcgcag T/G atatgcaagcccacatgggg7226CYP4P331intron 12 + 346tgggtgtcccaggccaggtt A/C ccggcttgatgyggccagga7227CYP4F815′flanking − 61accatgtttacccatcattg G/T tcctggagctccccagcccc7228CYP4F82exon 1 + 67gtggcagcatccccgtggct G/T ctcctgctggtggtcggggc7229CYP4F83intron 1 + 707tacgcagcaggtattcacca T/G tatttccacattatccactg7230CYP4F84intron 1 + 857acaccccctaccctcacatc G/A tgacacagctgggccagaag7231CYP4F85intron 1 + 907tgccatctccaccctccccc G/A tgcaggggcatcttctttat7232CYP4F86intron 2 + 668tgtggcacttccaccatatg T/C tcattgccctcttgctccag7233CYP4F87intron 2 + 818gccacagagaccatggctca G/A gccccaaaatgctgagtgac7234CYP4F88intron 2 + 1079tatgcttgggtgttgcagaa C/T atgttggaccatgtaggagc7235CYP4F89intron 2 + 1194ccggtcccctttatgccccc C/A accctcctttcttcttctgc7236CYP4F810intron 5 + 45aacatgggatggagtggggg G/T gtgggtgtggggagagcaaa7237CYP4F811exon 8 + (19-20)ggccatgacaccacggccag (GCCAG) tggcctctcctgggtcttgt7238CYP4F811exon 8 + (19-20)ggccatgacaccacggccag     tggcctctcctgggtcttgt7239CYP4F812intron 8 + 222tttatttccccactaacttg C/G tatgcaagcttagtaaaatc7240CYP4F813intron 8 + 334cttggagaattaacggcaaa A/T accgcaatgacttttggacc7241CYP4F814intron 8 + 1999ttctaagtacatttattctc T/C tgcttttagctatgatctag7242CYP4F815intron 8 + 4184caggagggccgtgtatgctc C/T ctggataattgttgggtgtt7243CYP4F816exon 9 + 119acgtggtgctcccagacagc C/T gagtcatccccaaaggtgcc7244CYP4F817intron 11 + 282gggttgggggttccgggcct G/C gttcctggcgcagtggggcc7245CYP4F818intron 11 + 340tgcagtcagaccttccacct C/T ggcccccaggaactgcatcg7246CYP4F8193′flanking + 35atcacctacctttgcaccaa T/C taccttttcagatttccggt7247CYP4F8203′flanking + 83ctgtgtiggcccctgtgcct G/C agtcccgcggatggccagta7248CYP4F8213′flanking + 90ggcccctgtgcctcagtccc A/G cggatggccagtagggggcg7249CYP27A11intron 1 + 295aggagggagctgtcttggga A/G gagagtggcagaggcaaatg7250CYP27A12intron 1 + 17503cagtgcataaagcctctgat C/T ctccttagagaaggagggac7251CYP27B11intron 6 + 173cagcccctagcctcatcttg C/T tgtctccattttgtgctttg7252CYP27B12intron 8 + 113atataagacctggtagaatg A/C atcttctgaaatatgataag7253CYP27B133′flanking + 1081taccctggaatcagtgatga G/C aattctgcccatccgtactc7254AADAC1exon 1 + 29attaaagtacactattcagg C/T atatcatgtaggtttacttt7255AADAC2intron 1 + 138gctgtggcctttgacaatgt G/A ttacttagaaatgttgtttg7256AADAC3intron 1 + 142tggcctttgacaatgtgtta C/T ttagaaatgttgtttgtttt7257AADAC4intron 1 + 1033ttccagcagagacaccaaca A/G gtaaaaacaccccagctaca7258AADAC5intron 1 + 1253tttttttccctcatatttgc T/C gtctgtgctacaatatgtga7259AADAC6intron 1 + 1366ctctggtagccttttaatta A/G ttaattcattcatttactta7260AADAC7intron 1 + 1369tggtagccttttaattaatt A/C attcattcatttacttacat7261AADAC8intron 1 + 2501ggttacagaaagaatggtgg C/A ttggccaaaaaatgatatgg7262AADAC9intron 2 + 46tgtcactgaggtagttcgca A/G acattttactaagtcttcag7263AADAC10intron 2 + 1971aaatgagagttaagtaggag A/C attttcttttatttttgtgc7264AADAC11intron 2 + 1988gagaattttcttttattttt A/G tgcaggagaaatataaacaa7265AADAC12intron 2 + 2341aggtgccrtttctarrgtcc C/T atgcagacttaggtgatcct7266AADAC13intron 2 + 2546gtctgacacagaaggatcaa T/A ggcaaaatgtgcaagacaaa7267AADAC14intron 2 + 2609taggaggttcactgggaaac T/C tgaattccactgagtcatga7268AADAC15intron 2 + 2663tataaatacagtgttaaatt T/C gtctctcgtattttaaggta7269AADAC16intron 4 + 605tgtgtcagtaaaatattata T/C taagtaggtgaatgagatca7270AADAC17intron 4 + 621tatattaagtaggtgaatga G/T atcatgtaattgtgagacta7271AADAC18intron 4 + 679ttagagattcagacgaattc A/G tataatcttcgatggtgtat7272AADAC19intron 4 + 1680gttaaaatgtggataaatac C/T acaatttgcaaaatatttgg7273AADAC20intron 4 + 1748atttagaagttctatacatc T/C tttatagtatattacacact7274AADAC21intron 4 + 1771tatagtatattacacacttc G/A aaaacacaaaattatttttt7275AADAC22exon 5 + 238caagtcatctcttcaaattt A/G ttaattggagttccctgctc7276AADAC23exon 5 + 678ttagaaattggtctttctta A/G aatggtctagttaagttcca7277AADAC243′flanking + 208aatgctaaaaaaaaaaaaaa A/Δ tcactgtggtactttgggga7278CES115′flanking − 983tatttccttagccagcggta T/C cacagtgtgtttagtgaatt7279CES125′flanking − 814tcacattgccttgacatcac A/C cctactgctcctccacccta7280CES135′flanking − 248agtcctgcaagggtgacacc G/Δ ttatgccacaagcagttggg7281CES14intron 1 + 22tgagtccttctgaagtcaaa T/Δ atgcggggcactttttgaaa7282CES15intron 1 + 30tctgaagtcaaatatgcggg G/T cactttttgaaatccttgtt7283CES16intron 1 + 1662aagggaatccctgagctgag C/A atgaccagcccagtggtttc7284CES17intron 1 + 1726cctccctgaagtcctcagca A/C tcttagctggttcctcgccc7285CES18intron 1 + 2716tgcttccaaggaagttcatc T/G cagtattatttgtaattagc7286CES19intron 1 + (2747-2749)tgtaattagcaacaacaaca AAA/Δ gaaaagaagctaaatattga7287CES110intron 1 + 3288ttatttgtccattaaagaaa A/Δ°ctcaagcgcttagcctggca7288CES111intron 1 + 3691gagaatatgggacacccctt T/G ttcatcctctcatccagcat7289CES112intron 1 + 3819tccttcttgcatttattttt A/G gctggatgtttttatgcctc7290CES113intron 1 + 3880aaccagctcaatgggttagg G/A aggacattgatcgtcatccc7291CES114intron 2 + 74gagtcaaggcagtcccctga T/C gggctgatcctttgctctgg7292CES115intron 2 + 552atggaaggtgtgtccattca C/A cctggccaagctgggaagaa7293CES116intron 2 + 885cagtattttagatggtaaag T/C attatgatgtaatatattgt7294CES117intron 2 + 2001ttggcatgtcagggctgcaa G/A actcatgtagaaatcactcc7295CES118intron 3 + 2119cgctgagtgcatgaatagtc T/C aggcttgagggtgatgggag7296CES119intron 4 + 127taaggcatccaagccccttc G/A taattggacactacctaccc7297CES120intron 4 + 347tctgtcatgacacttagcag T/G cagcccagcaggtgaaggtt7298CES121intron 4 + (1984-1985)gtggtcctgaaggtcctgca (C) tgacatctctgctccccacc7299CES121intron 4 + (1984-1985)gtggtcctgaaggtcctgca     tgacatctctgctccccacc7300CES122intron 5 + 766gaggtgggcagagggtcagc T/C cactactggattcctcagtc7301CES123intron 5 + 825ggagtagatctagcctggaa T/G agcgagtgagtcactgaccc7302CES124intron 5 + 828gtagatctagcctggaatag C/T gagtgagtcactgaccccac7303CES125intron 5 + 868ctcctgagcatgaactctcc T/A cccctccactctgctgtcag7304CES126intron 7 + 68acttcttcatttcagctgtc C/G tcttgcccagggacagtttc7305CES127intron 7 + 681cctccaaaatcaacaatcca A/G ttatcgcctgtctgctagtt7306CES128intron 7 + 885aggaactatccaaagagaaa T/C acattcatatacttcgcagg7307CES129intron 7 + 2151gtcgtgtaaactgaaaatct C/G aggagttgatggcttcaggc7308CES130intron 7 + 2470atatagatatacgaattcac G/A gagtgatgcgggaagaacct7309CES131intron 8 + 128cgtgtttgtttctgaggccc A/C gagaggggtagtgactcacc7310CES132intron 8 + 2618cctgatggcaacacatgagt T/C gggctctctctaatctgtga7311CES133intron 8 + 2665aaaaattattcatcaaaggt G/A aaacctaaaattaagacatg7312CES134intron 8 + 3785ccatggcgcatggccatgcc G/A gtctatggtactggtctcac7313CES135intron 8 + 3791cgcatggccatgccggtcta T/C ggtactggtctcaccctcag7314CES136intron 10 + 222gtgggctggagaagctgcat C/T gctcacccggggctggtggt7315CES137intron 10 + 230gagaagctgcatcgctcacc A/C ggggctggtggtcacttttt7316CES138intron 11 + 1177ctagcaggtgccctgacaca C/G ctttgcacaggaaggggcag7317CES139intron 11 + 1311gccctatgctctgcgtctga A/G ctatatatagagttcccatc7318CES140intron 11 + 2025ttctcatttgggatgctaag A/G ttaaaaattagcataacact7319CES141intron 11 + 2029catttgggatgctaagatta A/C aaattagcataacacttcca7320CES142intron 11 + 2317cattcacaaaagctctttct T/C ctatggttggctctgagttt7321CES143intron 11 + 3887caaatatttggctctaattc C/T gcttccacctcagacagcta7322CES144intron 12 + 2311gcgcctctgggcatctcact G/A tgcatgcttaggcgccttgc7323CES145intron 12 + 2331gtgcatgcttaggcgccttg C/G ggctctgttgtttttcagaa7324CES1463′flanking + 71aacggtgatgaaagaggcga T/C gtgagaaggaaggtggcttt7325CES1473′flanking + 362ttgcatggcacttactgacc G/A ttgcacaggcctgcaacacc7326CES1483′flanking + 581atttctggattctgttagta C/T gtagaaagctctaaagcatg7327CES1493′flanking + 1348aaatctgctgctgggagaga G/C agcaaagcatgcagatcaac7328CES21intron 1 + (1303-1321)gtcaagcatggtggcagaca7329CES22exon 5 + 60ggaccaagtggctgcactac G/A ctgggtccagcagaatatcg7330CES23exon 12 + 256agcctgctgtgcccacacac A/G cccactaaggagaaagaagt7331CES243′flanking + (155-172)gagagagtgtgtgattagaa7332CES253′flanking + (173-178)tcaaaaaaaaaaaaaaaaaa (GA) 4-6 gtgtgtgattagaagctaaa7333CES263′flanking + 377ggtcaaggtgagcagaacac C/G tgaggacaggagtttgagac7334GZMA15′flanking − 424cctcagcttgcacttggcct A/G ctaattcttatataacccaa7335GZMA25′flanking − 134agcctgcctgctggcagtga G/C ccatcatccaccattctcac7336GZMA3intron 1 + 1947gacataaggttctctctatc A/T gcatgtatggtttgccttgt7337GZMA4intron 2 + 958gactgcgtgaccaggtagaa C/T tagcctcagcatggaagggt7338GZMA5intron 2 + 1525gttggtgtagtttatactag G/A ttatgaatgatagccttaat7339GZMA6exon 4 + 105tgccaagttgcagggtgggg C/G aggactcacaatagtgcatc7340GZMA7intron 4 + 696atagagccttacctgaagaa A/G ggtgtgcagtatgcatggtt7341GZMA8intron 4 + 1141ctgttcagggaggatcccgg G/A ttccaacatggttctttatt7342GZMB15′flanking − 961tgtttagcaaatgtttactg T/C gagcctgttatgtgctgagc7343GZMB25′flanking − 263ggctgataccacatcctaca A/G ttcacttcataggcttgggt7344GZMB3exon 2 + 109gtgcggtggcttcctgatac A/G agacgacttcgtgctgacag7345GZMB4intron 2 + (242-243)tgggggcatactttggcata (A) gaatacaaactgaagcaatt7346GZMB4intron 2 + (242-243)tgggggcatactttggcata     gaatacaaactgaagcaatt7347GZMB5intron 4 + 131atttctctctggaaagagaa G/A aggggactagactgagctgg7348GZMB6intron 4 + 182gggcctctgcaaacttacca G/A gaggcttatggtggatggtg7349GZMB73′flanking + 54attctcaggcaccacatctg C/T gctatgcaggccaatgacac7350GZMB83′flanking + 184tccacaccagtttctccagg G/T cctgcccttctgccaaggct7351GZMB93′flanking + 256ccactttggtcctggggctt T/A gggtaaacttcttacctcct7352GZMB103′flanking + 406ctgagctcaaggctcagctc G/A tcctccagcctcttggctgc7353ESD15′flanking − 333gtcttgggacagaggagttg G/A gggagttgaaattaggccct7354ESD2intron 1 + 603gtcatttctgatggggtcat C/T agggaaatgggattgagcgc7355ESD3intron 1 + 698tgtgtggtagaagcagcatt C/T taagcactacgtgaattaac7356ESD4intron 1 + 1864gctttcatgcaggattgatc G/C tagtgggatgtattaggaag7357ESD5intron 1 + 2389ttttgggaacacctgtctag G/A ttgttaagagccagtggaat7358ESD6intron 2 + 22taaacttgttttattgttta T/C atgttactctgaacattgaa7359ESD7intron 2 + 589taaaattagtatctctctct G/A taagttcattatttaagata7360ESD8intron 2 + 1499tagaaaaatgtgtatcacac C/T gtaagtgttcagtaatgtta7361ESD9intron 3 + 92ctttatctagatattatagt C/A cctcattttacttttaaact7362ESD10intron 3 + 422gtaaagagattaaacacaca C/T gcacacatacatatacctat7363ESD11intron 3 + 581agaaaacctgagaaatgaca C/T aatttatttaaagccatagt7364ESD12intron 3 + 2270gccagtaattacatgtagcc G/A tttacatcaaattagctaat7365ESD13intron 3 + 2951taatgaaagtaaatgtttca A/G cttccctaacaaaagttgaa7366ESD14intron 3 + 3003aaatgtcagaaattttttgt G/A ccgtcagtcatcaacaagaa7367ESD15intron 3 + 3097aaggagcatacagaaaactt G/C ccatgatggggcctttgtgg7368ESD16intron 4 + 2616tctaatagtccccagtatta A/G tggtgcacatcttcatgtcc7369ESD17intron 5 + 392tcttttttcatctctgttaa C/T atcaaccatacagttaaaca7370ESD18intron 7 + 107ttagtattggaactaaactt T/C tctagtgttgagaactttgg7371ESD19intron 8 + 1091aaattctaactaattaaagg G/T ttcatcctttagtaactaga7372ESD20intron 8 + 1652tataaagttgtggttaatga A/G tatatatgaataagaatatt7373ESD21intron 8 + 2048agaaggaaaaaggccatttt G/C ttaagaatzccctgagatatg7374ESD22intron 9 + (1523-1526)ctgccaacaaagtctgaaaa (TC) 2-3 aagtttgttataaaaacagc7375ESD23intron 9 + 2468atagaaggagaggctatact A/G cctccttaagtctcaggacc7376ESD24intron 9 + 3362actaaggataaaaatatggc A/G tactcagtcacattggaact7377ESD25intron 9 + 5292aggccttaatgacatatttc T/C cctcacataaagatacaaca7378ESD26intron 9 + 5298taatgacatatttcccctca A/C ataaagatacaacatgcttt7379ESD273′flanking + 798tatggtaactgaagaaaatg A/G cattaagttcctaaagttat7380CEL15′flanking − (611-617)tggatcaaggcaaataattt (A) 6-7 ggaaattatttgaagaaaaa7381CEL2intron 1 + 20098atctctaccaaggtaccaat T/G ccttaaggaagatyttaatt7382CEL3intron 1 + (20911-20924)ctgaatatgactaaaactga7383CEL4intron 1 + 22374ttaagttaaatgtaaacagc A/G cctttgcacactattcagtg7384CEL5intron 1 + (22460-22469)ttaattttttagttaggttg (T) 9-10 ctcttttattttatcacatg7385CEL6intron 1 + 24205agaatttgagtctattcttg T/G gtgccttctgactacatcct7386CEL7intron 1 + (24404-24417)gcagatgataatcattctat7387CEL8intron 1 + 26983tagattttgatgagtttgag T/G ttttttttttttttttccaa7388CEL9intron 1 + (26983-26999)ccaaaagggtgggggttgtt7389CEL10intron 1 + (32166-32174)tcaactttgctggtaaccag (A) 8-9 gaaaagccactattaatatc7390CEL11intron 1 + 37217aaatttgtaagtgaatgtta T/G ataaaaatctgtaacaatta7391CEL12intron 1 + 37685taattcaaatggattaatca T/A tgataatttctatttttaaa7392CEL13intron 1 + 38032caggcctaataaatgaaatg T/C tcactactgttgccaacacc7393CEL14intron 1 + 38133attcgggagtcctgtctgcc A/C tttgtagaaaccatccagct7394CEL15intron 1 + 38169cagctcatcttcctactctt A/T gtgttggggatttttgcccc7395CEL16intron 1 + 38544gtttctgtcaactctccaga T/C ataaaatcaaatgctcttcc7396CEL17intron 1 + (38642-38643)caatttcttcacaatacctg (G) attgctgccaggcagcaata7397CEL17intron 1 + (38642-38643)caatttcttcacaatacctg     attgctgccaggcagcaata7398CEL18intron 1 + 48429gaaagagaaacttgtgtccc A/C gaaacttgtgtaagtatgcc7399CEL19intron 1 + 49038ttgaaactgcactgacacta A/G tttaaattttacaagtaatt7400CEL20intron 1 + 49040gaaactgcactgacactaat T/G taaattttacaagtaatttt7401CEL21intron 1 + 49256acatgagaaaagaaatggag C/A taagtttaaaaacagaatga7402CEL22intron 1 + 49386aatagttctcagtagatatt C/A ttttacctatatttagtata7403CEL23intron 1 + 50786tactttgtcctcaccaatgc G/A tattcttcccctaaacagat7404CEL24intron 1 + 50977ctccagccagagaygacaga T/C agctgagtttctgtttggct7405CEL25intron 1 + 51150agcaccatggactgtttttg C/G agtcctcctctttattatgc7406CEL26intron 1 + 52333tcagtcaaacttaaaggctc A/C gagatotattaatgcttatg7407CEL27intron 1 + 52589gtgtcagcatctgtagagta C/A gggagggtgttgaaagaaaa7408CEL28intron 1 + 55838tctcgcaggtaaatgaggat G/A gaatactttaaatacaaatc7409CEL29intron 1 + 56028ataagtttggaaaatttgtg G/C taaaatacactaaatatttc7410CEL30intron 1 + 58738tggtggagaaataggttata G/A tgctggtcaaactgtcccat7411CEL31intron 1 + 59358cagaaattgtactttaaaat A/G cgaactgcaagcactgcagt7412CEL32intron 1 + 59359agaaattgtactttaaaata C/T gaactgcaagcactgcagtc7413CEL33intron 1 + 59464acccagaaaggagcatgtcc C/G tttgtcatttgtggtgaaac7414CEL34intron 1 + 61340aaaaaaaacttcaaaatact C/G caatatccaaagttggtaca7415CEL35intron 1 + 62739cagtctttaggcacaaagag A/G caaagagtcttctcatctct7416CEL36intron 1 + (64764-64779)aatgtgggatagtggtataa7417CEL37intron 1 + 65243tttcaggcttctggacagaa T/C agtattatgataaaagctat7418CEL38intron 1 + 65269tatgataaaagctattaata T/A ttaggaagattcctctgact7419CEL39intron 1 + 65325aattagaaaagcaagttttg G/C gggggggggtgcaaaacaaa7420CEL40intron 1 + (65326-65334)attagaaaagcaagttttgg (G) 7-9 tgcaaaacaaaaaagaaaaa7421CEL41intron 1 + 65524cacacccataaccaccagtt A/C gttgcctctcctgagccatg7422CEL42intron 1 + 65869cagagtaacattcgggctcc A/T actgtcctttcttatagaga7423CEL43intron 1 + 65910aaggctgtctcctgctgttt G/C tggatccaaggcctgctgaa7424CEL44intron 1 + 66000gctgtgtttgcatgcctcac C/A gagcatattcactgtcctat7425CEL45intron 1 + (66226-66235)tctgtttttgaaaaaacaag (A) 9-10 tctctccctgcctttggaaa7426CEL46intron 1 + 81816aatgttgccttactttccac A/G tatttccagaagccctgatc7427CEL47intron 1 + 83480tatgactgtcaggaagaaaa T/C tagaattatctttgtgtcct7428CEL48intron 1 + 83732ggggtttgaaatctatggag T/C catttccttctttttaaaaa7429CEL49intron 1 + 85507ctggaaagaaattttgtgtc A/T ctgcattatttaaatgttag7430CEL50intron 1 + 87299caatggtcattatatcttcc G/A tgtgtgaagacagtcaagaa7431CEL51intron 1 + 87426caacaggataatcccagaat G/C ctctgtCtgCCCttggctct7432CEL52intron 1 + 87670tattttgttcctcatattca T/C gacatgacacaccaacataa7433CEL53intron 1 − (77494-77503)ttggttcctgttttttcttt (A) 9-10 caactctgctaacaggggcc7434CEL54intron 1 − 77368agctcaggggagagaacact G/C gggggaggcaagaaagcggg7435CEL55intron 1 − (75135-75129)tggcggctggcccaaggggt (G) 6-7 tgggactcctctgacgcctc7436CEL56intron 1 − 74785gctgcccacggaagctgggg G/C ctgttcgcctcttctcctgt7437CEL57intron 1 − 74755tcttctcctgtgtccatgaa A/G cctcaggcctccaggtgcag7438CEL58intron 1 − 73099ccccggggtctcctcctggc C/T tcttcttgccgccgcctgct7439CEL59intron 1 − 72559agcagcagctgggccggtcc G/A tgcagggagtgaggtgggca7440CEL60intron 1 − 70098acagggaggaaacagcaaaa T/C ctcaacactgttgatctcat7441CEL61intron 1 − 69440gttggccatgagagaaaaca C/T aggaaggtattggaaaatga7442CEL62intron 1 − 65270attctgcactggctgggaag G/C cttggcttgggcttcctggc7443CEL63intron 1 − 64434ccacattagggagtggaatg C/T aacatctgaattaattttca7444CEL64intron 1 − 63966agatcagacatcccccaccc C/T atcgcctagagaactgagcc7445CEL65intron 1 − 63916gctgctcaccatgacctagc C/T ttcagggctgaccccagtcc7446CEL66intron 1 − 60392tcctggggctccaggatgca C/T gtggaaatccctgggagcag7447CEL67intron 1 − 60321aattacttgaaccccattcc A/T tcccaccccaacccttttcc7448CEL68intron 1 − 60318tacttgaaccccattccatc C/T caccccaacccttttcctcc7449CEL69intron 1 − 56852tgctccaagccctccccctg C/A gcccagcacgaccccatctc7450CEL70intron 1 − 56133gctggctcgtgggatgtcta C/T ggggcttgcctggcaccccc7451CEL71intron 1 − 55964ccccagcgcccctcagcccg G/A cctgagacttatcactgccc7452CEL72intron 1 − 52016tcctggaactaggggtgggg G/A ggcactgccagtggccaggg7453CEL73intron 1 − 51998gggggcactgccagtggcca G/A gggaggggactgcggggcac7454CEL74intron 1 − 51578gtgggatcgacttgcatttt G/C gggggagaagcatccctggt7455CEL75intron 1 − 39557ggcccagcacatggcttcca T/C gaggctctaagctccccaag7456CEL76intron 1 − 39490gccctttcttccaggttgtc A/C tgggcactgatggtcaccag7457CEL77intron 1 − (31332-31340)tccggacttctcattggctc (A) 8-9 ctcgctcggccctcggattc7458CEL78intron 1 − 19634ttatttcagggctggccatc C/T tagctgcctgcaggagctgt7459CEL79intron 1 − 6589gacgggtgatgcgagggact T/C gctgtcccccagtgtctggg7460CEL80intron 1 − (3340-3345)gctggcagtgctggcctgtg (C) 4−Ωtcacatgtggtcgggttggg7461CEL81intron 3 + 35tgccggactggccctgcggc G/A gggcgggtgagggcggctgc7462CEL82intron 6 + 157gtggggagcggccttggtga C/T gggatttctgggtcccgtag7463CEL83exon 9 + 137aacatggacggccacatctt C/T gccagcatcgacatgcctgc7464CEL84intron 9 + 41tcaggggcgacccgtgcggg A/G gggccgccgggaaagcactg7465CEL85intron 9 + 151ggggtgagtatgcacacacc T/C tcctgttggcacaggctgag7466CEL86exon 10 + 82acgacctttgatgtctacac C/T gagtcctgggcccaggaccc7467CEL87exon 12 + 583cccacgggtgactccggggc C/A ccccccgtgacccccacggg7468CEL88exon 12 + 759gttttagcgtcccatgagcc T/C tggtatcaagaggccacaag7469IL1715′flanking + 832cctgagaaggaactattctc A/G aggacctgagtccaagttca7470IL1725′flanking + 692tgccccccttttctccatct C/T catcacctttgtccagtctc7471IL1735′flanking + 76ccctgaacccactgcgacac G/A ccacgtaagtgaccacagaa7472IL174intron 1 + 18gtggtgagtcctgcactaac G/A tgcgatgctcttgctgattt7473IL175intron 1 + 126ctgtatatgtaggataggaa A/G tgaaagctttggtaggtatt7474IL176intron 1 + 762ctgagaacaatggtgcagga G/A gatatttctacctagaaaat7475IL177intron 2 + 594tattttgatcatttgacttc A/T tacaaataagtctctgttct7476IL178exon 3 + 1487agctgatggggcagaacgaa C/T tttaagtatgagaaaagttc7477IL1793′flanking + 657ccctgaatctttttccttct G/T cctctccctcattcctaaca7478UCHL315′flanking − 1034ataatgtgaagaagaaaaaa A/G agacactgctactgggctcc7479UCHL325′flanking − 490cactcctgcaccccgacaaa G/C gaacaacagcaccgtgctgc7480UCHL335′flanking − 480ccccgacaaacgaacaacag T/C accgtgctgcacggcgtcct7481UCHL345′flanking − 295atgcgtagaacgcgagcgct T/C ggcaaggctcggctcggaag7482UCHL355′flanking − (25-11)tgggcggaagcggcggcggc GGCGAAGGCGGCGGC/Δ7483tgtcagagctggagggccggUCHL36intron 2 + 28aggtgtctgtcgctcgggac T/C tcggagtcttttctgtctgc7484UCHL37intron 2 + (5639-5640)aattttttattataataata (ATA) tataagtagaagaattatat7485UCHL37intron 2 + (5639-5640)aattttttattataataata     tataagtagaagaattatat7486UCHL38intron 2 + 7862aggtggattcacaccaccca G/A gctaactgctaacattttag7487UCHL39intron 2 + (7936-7947)aattgtaaaagtaggacatt7488UCHL310intron 2 + (7975-7988)gaagacgtgagtggtaaaag7489UCHL311intron 2 + 8117cctgactcatggcaatctgg A/C gtcaggatctaacaatatat7490UCHL312intron 2 + 8361ttgttagctttggctgacat G/A gagtagatttgcagtgaact7491UCHL313intron 2 + 9800taagatatagtgatgcattt C/T taatatgatttttgtttcct7492UCHL314intron 2 + (10738-10747)taccaactaatgttccattg (T) 9-10 ctttctttcttttaccagtt7493UCHL315intron 3 + 11tacagaaaaggtaattgtta A/T gtaaaatagaaagtttctgg7494UCHL316intron 3 + (662-675)cttaaatacagttttttcaa (TA) 6-7 aggaatcttctttgcttatt7495UCHL317intron 3 + 866tcaagtctacatattttagt T/C tttttttctagaatgatata7496UCHL318intron 3 + (944-945)tacatacgtatacgtatata(TGTATACGTATACATACGTATACATATATACATACGTATATA)7497cgtacgtatatacgtatacgUCHL318intron 3 + (944-945)tacatacgtatacgtatata     cgtacgtatatacgtatacg7498UCHL319intron 3 + 5052aggcagtcagctatagagcc T/C acatttttgatgcttattat7499UCHL320intron 3 + 5282acctctattaagtttttgca T/C accctttcagactttccaat7500UCHL321intron 6 + 2191tttctaggggtttcctagtg C/T gtagagcagtgattctcaag7501UCHL322intron 6 + 8264tctgcaagtcaaatgtgaag G/C caagaaagaaaaatccaaaa7502UCHL323intron 6 + (8741-8744)atgtgagtaaaccacaattt ATTT/Δ ttcatttccttaacttttga7503UCHL324intron 6 + 9411tcctctgtttagaatctact T/G ggcttttttggcccagccag7504UCHL325intron 6 + 9459tgtcagtggcagtaaatagt T/A taaagtttcatcttcattag7505UCHL326intron 6 + 9772gaaacaatacatgtatcatg T/C ggttcaagatgtagagtcca7506UCHL327intron 6 + 10158ttattttaaaggaaaattct C/T agaccgaacttaccagttca7507UCHL328intron 6 + 10839tttactaaaaaatctacaga A/C atccatttagaattaattta7508UCCH329intron 6 + 12493agtcaaattagttgacagtt A/G atggycgagtgaccttgcaa7509UCHL330intron 6 + (20435-20437)ttttttaattatgtagtcct CCT/Δ cgccatcctcatcacagcct7510UCHL331intron 6 + 21202ttgatctgatctttcctgcc C/T attcagtttctaaagatctt7511UCHL332intron 6 + 21295caaatttatgatttctcttt T/C ataggctaatgatatctgca7512UCHL333intron 6 + 21639taagaacaattaaaagtcaa C/T ggcaagcattctttccttcc7513UCHL334intron 6 + 21778tccatttctgctgagtatca A/G caaactcacatctctttcta7514UCHL335intron 6 + 23299cttttagattaaaggtgcaa T/C gatgcacaattttgagtcac7515UCHL336intron 6 + 23498tattcagttctctgactcca A/G ttgtactacttttacctcta7516UCHL337intron 6 + 23790ttagccttaaaaaattggac A/T ctcttctgattattgataaa7517UCHL338intron 6 + 23894actcattatcactgtcttca A/C atatttaaagaaatatgttc7518UCHL339intron 6 + (24729-24732)agtcttaatttcaaattgtt TGTT/Δ aagcatcaaagcaagagaaa7519UCHL340intron 6 + (25083-25084)catgtattcatttcattcag (A) taagtatgcaatgtgcatat7520UCHL340intron 6 + (25083-25084)catgtattcatttcattcag     taagtatgcaatgtgcatat7521UCHL341intron 6 + 25084catgtattcatttcattcag C/T aagtatgcaatgtgcatata7522UCHL342intron 7 + 1342gaagaagtcattattttggt G/A gtatataatggacctccagg7523UCHL343intron 7 + 1387ttttgaagatgtgccttgct G/A attgagtctacaaaatctgc7524UCHL344intron 7 + 1760actcggttttactagttaga T/G agctgtcttggctcagaggc7525UCHL345intron 7 + 2096taggtacattacaaagatgg G/A cagttgctgattcattgcaa7526UCHL346intron 7 + 2873ttaatgtattaattccctac T/G ctaataaattgtaaggttaa7527UCHL347intron 7 + 7554tctctgagcctcatggattc T/A tctgcagcgtatgcatttac7528UCHL348intron 8 + 207ctctatgaacaaatgtaaaa T/A ttgaaaaggcaagaatagta7529UCHL349intron 8 + 252aagacttgctcattatatcc C/C agatttcatcaaatccagga7530UCHL350intron 8 + (883-892)tttacactgaaaaatcatac (T) 9-10 cctccataggatgccataga7531DDOST1intron 2 629attctgttaagaagttctta T/C attaagaaatattgtctcct7532DDOST2intron 2 3125gagaatataggagcttctgc G/A tatgcctgaaagtcagtcag7533DDOST3intron 2 3920attactcatttaatgaataa A/C tggattactgagcactgtct7534DDOST4intron 3 189actgctgtccaggggtccat C/T tggggctgagcccagctgga7535DDOST5intron 6 185ctgtcctcttgttcgggagg C/T gtggcagcttttcccttact7536DDOST6exon 8 37aactatgaactagctgtggc C/T ctctcccgctgggtgttcaa7537DDOST7intron 9 37tcctgcccaagaatgctgcc A/Δ aaaaacggccccaggcctca7538DDOST8intron 2 + 1299atcttctgatgactgggctt C/T ggtgcagtaactggtgtttg7539DDOST9intron 2 + 1581gatactgttggtgggagaaa T/C gacagagagtgtaaaacagt7540DDOST10intron 2 + 2822gtttctcaacaggtgcattc T/C tgacgtttcagactggataa7541DDOST11intron 2 + 3392cagaaggcgtggaggcctgc C/T gcgcctccctctgttgctgc7542DDOST12intron 5 + 495attgcttgaacccaggaggc G/A gaggttgcagtgagccaagg7543DDOST13intron 6 + 226ggaactgcttgggtcacagc C/T tcgttttgttcccagtatcc7544DDOST14intron 8 + 303aagagaaataggtcattagg A/T tgaatttgttaggcaagaga7545DDOST153′flanking + 40cacagcgtggagacggggca G/A ggaggggggttattaggatt7546NTE15′flanking − 535cacgatctgtcctccgattc C/T tgttaactctagactttctg7547NTE25′flanking − 15gtaaatccccggcaaaaacc A/C gcagcgccttgcaagcccac7548NTE35′flanking − 748agcatggcgcggggaggagg C/T gtgggagggtcgggagggac7549NTE45′flanking − 690tgaataatttaaaggggccg T/C gcctgcggagccgggcggaa7550NTE5intron 6 + 605tcttgccatatacttagtgg A/G ggggtctacatcaggggttt7551NTE6intron 6 + 748agcctccagcctctcttctc C/T gggggttatctcaggcatct7552NTE7intron 6 + 987ggtgctggctctgggatccc C/T gtgcgtcatgtagtctacct7553NTE8intron 6 + 1882tggcctcaagcaatcctccc G/A cctcggcctcccaaagtgct7554NTE9intron 6 + 2222gaatgtttatgtagaacaga G/A agactgtatctgcggtcttc7555NTE10intron 12 + 166tatctggtaccgaggaagct C/C tggcctcgtccccaagggcc7556NTE11intron 13 + 69atccaggtccaccgcctgcc C/T gtcttgattgttttaatctg7557NTE12intron 14 + 8tgcccccgctcgggtaaggc C/T tgggaccctgcccggtggtg7558NTE13intron 16 − 113gccaccgcgccctgcgcctt T/C atatttttcttaacccttcc7559NTE14intron 21 + 34agagccggccggcccagagc A/C tgctgggagatgtagtccgg7560NTE15intron 21 + 128gaagaaatcgtgcccctgag C/A gtttcaaaccctaagtagga7561NTE16intron 21 + 151ttcaaaccctaagtaggacc C/C aggtgcagagcattctgggg7562NTE17intron 21 + 651ccactgtactccagccggga C/T gacagagctagaacctgttt7563NTE18intron 21 + 737tggaaaatagtctgtggatt C/T ttgtttaggactctgggcac7564NTE19intron 21 + 1752acagctggtctaggctgtta C/C tggagaaactgggaagcaac7565NTE20intron 21 + 1788gaagcaacagctgggtcaaa A/Δ gtagcttttcttttcttggc7566NTE21intron 21 + 1907cactgcaacctctgcctccc A/C ggttcaagtgattctcctgc7567NTE22intron 21 + 2065ctgcctcgttttatgttcag C/T tcccccattagacagaggaa7568NTE23intron 21 + 2336agtctgggagcacaggagca C/A gaatttcagataaggaggaa7569NTE24intron 23 + 41tggggagggtggtgggtggg C/C ctggagcctcaaattctttc7570NTE25intron 23 + 71caaattctttcagacctgag T/C tcaagttctcggcttccaac7571NTE26intron 23 + 81cagacctgagttcaagttct C/T ggcttccaaccacggagcct7572NTE27intron 24 + 150gtggggcggctggtgacctc A/C gccgtccgtattccgcagct7573NTE28intron 29 + 37gcctgcagcaaccgctgacg T/C cacgtggggttggggygatg7574NTE29intron 29 + 370cgtcccaggtcagcgagccc G/A tcgggccggctgggcctccg7575NTE30intron 30 + 56acctcccgcaccacacacac G/A cacacgcgtgggcacacaca7576NTE31intron 30 + 358aaaaatacaaaaaattaacc A/G ggctggtggggtgtgcctgt7577NTE32intron 30 + 372ttaaccaggctggtggggtg T/C gcctgtaatcccagctactc7578NTE33intron 30 + 430aaatcacttgaacctgggag G/T tggaggttgcagtgagctga7579NTE34intron 30 + 655gtgtgcacaccagctatata T/C gcaaatgctttctctcaggg7580NTE35intron 30 + 659gcacaccagctatatatgca A/C atgctttctctcaggggcag7581NTE36intron 30 + 760tgaaatagggcatttgccaa C/T gcatgccagtctgtcccgtt7582NTE37intron 30 + 835gcacacacgtagataggatg T/C ggcacctctgaccgagttaa7583NTE38intron 31 + 40tggtgcctgcatagytggtc T/C ggctaagctttgctacttaa7584NTE39intron 31 + 41ggtgcctgcataggtggtct G/A gctaagctttgctacttaaa7585NTE40intron 31 + 1329gtctgtcaagggcaggacag G/A ggatgtgtaggcgagtgtgc7586NTE41intron 35 + 31aatggcttcctgtcgttttc G/A gactggggacccaccttctg7587L1CAM1intron 1 + 767tttgacttccttacatgggt G/A actgtgtgagtcactctgtt7588L1CAM2intron 1 + 862gcattgggtcatgtgtatgt G/C tgagtggggctgaatgtaag7589L1CAM3intron 1 + 1332cagggatgaaggagcagagc C/T gctgagaggccacacaggtg7590L1CAM4intron 4 + 502tttccctggggttttccctt T/C gcattccatcctccctgagc7591L1CAM5intron 18 + 147agcgacgttatgaaattccc C/A acacttcacatttctataat7592L1CAM6intron 24 + 221ctccttagccccccagaggg C/T cccaactttaagagcatact7593AANAT15′flanking − 542aggggtgcaggatggggtgt G/T agctggagggcagggggtag7594AANAT25′flanking − 263ccccccacataagaggtggg C/G ttgtccaagactccgaggga7595AANAT3intron 3 39cgcccagctccagggaggcc T/A ctgaagacagaggtcagcca7596AANAT4exon 4 150cagccggccgtgcgccgggc C/T gcgctcatgtgcgaggacgc7597ARD11intron 1 + 317ccgtcggtctgctcggcccc C/G ctccctcggggctgggcagg7598ARD12intron 6 + 322gctcctcagcatctgctcac G/A ccagggacccacacctctct7599ARD13intron 6 + 1095aaggctccatcctgagacaa A/C aagtccagtgtgacctgccc7600ARD14intron 6 + 1179aggaggaagacctgtatccc A/G gggacaccctcctccactcc7601ARD15intron 7 + 159cctccaggctgctaggcaga C/T ggcctcctctaaagcccagc7602ARD16intron 7 + 295tgaccagccctgccacccga G/T gagccttgggcagaaccctg7603ARD17intron 7 + 416actaccatggaggcccccac G/A acagagcgctgccccttgac7604NAT113′UTR 215aataataataataataataa A/T aaatgtattttaaagatggc7605NAT21exon 2 867cgtgcccaaacctggtgatg G/A atcccttactatttagaata7606NAT223′flank 521ccatccatactttgccacaa G/A agaaggaacatgagctttat7607NAT233′flank 573gatttgaaatcctgtggaca C/T ggggtgaattacttttaaaa7608NAT243′flank 918attttctgtttgtaaattcc A/G gtatcagggctatagtttaa7609NAT253′flank 979actattctccctcttcgact C/T gtgatgactataataatctt7610NAT263′flank 1958tacctattgaagtaagccta C/T gtcatatccacctatttgtt7611NAT273′flank 2034ccactgattcccagagctag T/G tcattaagaagacagtgcct7612NAT283′flank 2201cagattactggagggctact G/A tttgctcaccaatgcaaatg7613NAT293′flank 2818gggatatttgtctcctttct C/G cccagtgcatgttggaaacc7614NAT2103′flank 3237atatatattccaattaaaaa A/Δ caaaataaatttccgaaact7615NAT2113′flank 3386caacaaagagattttttaaa G/A ctttttaaaacaccagacag7616NAT2123′flank 3660cagcactattcgcaatagca A/G agatgtggaatcaatctaaa7617NAT2133′flank 3973agcagaaaaaataaataatg C/T gtactaggcttactacctgc7618NAT2143′flank 4029caaaacaaacccccatgaca T/C gagtttatctatataacaaa7619NAT2153′flank 4118ataagattaatatctgcata C/A aaatctttgtttacagcttg7620NAT2163′flank 4146tgtttacagcttgttatata C/T tgaattatgtctgctccccc7621NAT2173′flank 4279ttaatctgataggattggtg G/C ctttataagaaaaagaaaag7622NAT2183′flank 4323ttgctctctccccagtgcag T/G taccaaggaaaggccatgtg7623NAT2193′flank 4446tcaattggctttatctgcga T/C tctggaatcaggcaatactc7624NAT2203′flank 4462gcgattctggaatcaggcaa T/C actccatttcataaaacaga7625NAT221exon 2 + 288atgttaggagggtattttta C/T atccctccagttaacaaata7626NAT2225′flank − 2053ctggattgcaacattttaat T/C ccaggtgtcaggtttccaac7627NAT2235′flank − 1299gaatcaccagtgcgggaggt A/G taacagtgaacccaagacac7628NAT2245′flank − 1145ctgtagaacacaagyatatt C/T ggaggcagtttgtacatgcc7629NAT2255′flank − 1036ccttcccacagagtcccgag T/A tcatgtggcagcatgccaga7630NAT2265′flank − 94aaagatttgctaagagattc G/A cagaggcaacctgaggccct7631NAT2275′flank − 643atgtttatattttatattaa T/C attaatgtaaataaaaattt7632ABCE215′flanking − 673agctaagagtcaaagcaccc G/C ctttttccaccagcctcgcg7633ABCB225′flanking − 646ccaccagcctcgcgtgcctg T/G tcccttcacggacactctag7634ABCB235′flanking − 563ttgcaagcgctggctyctac A/C ggcgacctccctgcgctccc7635ABCB245′flanking − 236gctttgcgcgcggcgctaac G/T tgtgtagggcagatctgccc7636ABCB25intron 3 + 408aaggaaactgaggccaagac C/T ctaaatyctgaaactgcaca7637ABCB26exon 4 + 153ccctcaccatggtcaccctg A/G tcaccctgcctctgcttttc7638ABCB27intron 4 + 289gtatttctttagcatccaag G/T ggcatagctgtgtctctttc7639ABCB28intron 4 + 291atttctttagcatccaaggg C/G catagctgtgtctctttctc7640ABCB29intron 5 − 63ttccttcaggttaatgactg C/T ggttctttgtgtcccctcca7641ABCB210intron 7 − 185gtctctgcccttgtctttgc C/T gcttcttctatctctactcc7642ABCB2113′flanking + 71agcgcacttttcagctgcgg G/A tgtctcctcttttatcatcc7643ABCB2123′flanking + 129aactgcatcaccttttccct T/C aagctttttaattcctatga7644ABCB2133′flanking + 459cattcagggaggcccaggtc G/A tgtgacgtcgacagttgctg7645ABCB31intron 3 + 8tctcctttggcaggtaggtg G/A tgggcagctgggtccatttg7646ABCB32intron 4 + 104cttcacccgtatgccaggac C/T tggggatgcttttctcttgt7647ABCB33intron 10 + 219gcagcagtggtgctccctcc A/G tgggcagccccgtcaggtcc7648ABCB34intron 11 + (317-319)atggtgcccaggtggatgtg GTG/t tccatctcattcctgtcttt7649ABCB35exon 12 + 19agctgcaggactggaattcc T/C gtggggatcgcacagtgctg7650ABCB36exon 12 + (356-357)aggtggggtggggtggggtg GG/TGGTGGGGTGGA7651ggctgtctgtgtccaggaaaGSTM315′flanking − 144ccaacgccggcattagtcgc G/T cctgcgcacggccctgtgga7652GSTM32intron 7 + 165agcctaacttctataccttg A/G aggcactgtctacaaaaaaa7653GSTM33intron 7 + 257ctgttggactgggtggggtc T/G ttataagattggtgtatttt7654GSTM34exon 8 + 91cccagtggggcaacaagcct A/G tatgctgagcaggaggcaga7655GSTM41intron 4 + 67ttggctggattggggtgcta T/C gctcagagtgagtctgtgtt7656GSTM42intron 7 + 77gatgctttcccagtcctgga T/G ctgcataaagaataacttgc7657GSTM43intron 7 + 80gctttcccagtcctggatct G/A cataaagaataacttgcatt7658ALDH71intron 1 + 464catgaatgactctgggaaag A/G atcattcttagcaatggact7659ALDH72intron 1 + 2269aaatggaatccaaacagcaa G/G agacctcccctcaccggtca7660ALDH73intron 2 + 1349actgagcttctgccaccggc C/T gcctgccggccttcatgaga7661ALDH74intron 2 + 1820tccgtgtggaaggcaccttc C/G cccagcctcagtggctagga7662ALDH75intron 2 + 2046aacctcaggcgctgcctcag C/G cagggagccagcctggcccc7663ALDH76intron 2 + 2939aagcacgcactgaacatgga G/A tgagtgagtgaacgaatgaa7664ALDH77intron 3 + 7tgcccaagaacctggtgagc C/T ggccgggctgaggcgggcag7665ALDH78intron 4 + 36gccccttccggtcacccttc T/C ccgctcgaggcctcagggcc7666ALDH79intron 6 + (116-117)attctcctctctctctctct CT/Δ ggaccaggctgggagcagtc7667ALDH710intron 6 + 263cagaccctcatacgtgaccc T/C gctgccccccaggctcttag7668HMG17L113′untranslated + 864ctttctgatttttgatagtc G/C gttgaagaagggagtttgaa7669


In some embodiments, a drug-metabolizing enzyme is at least one of the following: epoxide hydrolase, methyltransferase, N-acetyltransferase, sulfotransferase, quinone oxidereductase, glutathione S-transferase, UDP-glycosyltransferase, aldehyde dehydrogenase, alcohol dehydrogenase, esterase, NDUF, cytochrome P450 (CYP) and ATP-binding cassette.


The present invention relates to a method for detecting a genetic polymorphism in a test subject using the genetic polymorphism data related to a drug metabolizing enzyme. The present invention analyzes the effectiveness, safety and strength of drugs metabolized by a drug metabolizing enzyme. The relationship between a disease and the drug to be evaluated is based on the results of the analysis. The genetic polymorphism data for the drug metabolizing enzyme is different for each patient with a given disease. Therefore, the effectiveness and safety of a specific drug depends on drug metabolism in the presence of certain genetic polymorphism data and the side effects in the presence of certain genetic polymorphism data. As a result, a physician can determine whether a certain drug should be used by a certain patient and can tailor drugs for use by a certain patient based on the genetic polymorphism data (so-called “made-to-order” treatments).


“Drug metabolizing enzymes” refer to a group of enzymes that catalyze in vivo structural changes in exogenous materials including drugs. When used for clinical purposes, the group of metabolizing enzymes includes some endogenous materials. Because drug-metabolizing enzymes absorb, metabolize and secrete drugs, the polymorphism of an enzyme depends on the amount of enzyme expressed (transcription and translation) and the amount of activity. As a result, there are blood serum concentrations of both unchanged materials and metabolites.


Drug metabolizing enzymes expressed by the genes that are targeted for genetic polymorphism analysis in the present invention include, but are not limited to the following classes of enzymes:


Epoxide hydrolases


Methyltransferases


N-acetyltransferases


Sulfotransferases


Quinone oxidereductases


Glutathione S-transferases


UDP-glycosyltransferases


Aldehyde dehydrogenases


Alcohol dehydrogenases


Esterases


Ubiquinone dehydrogenases: NDUF


Cytochrome P450s (CYPs)


ATP-binding cassettes


ATP-binding cassettes/Transporters


Examples and descriptions of these enzymes are provided below.


(1) Epoxide hydrolases are enzymes that hydrolyze epoxide using a trans-cleavage mechanism to produce 1,2-glycol. Examples include microsomal epoxide hydrolase 1 and cytoplasmic epoxide hydrolase 2.


(2) Methyltransferases are enzymes that catalyze transmethylation in amino groups, hydroxyl groups and thiol groups. Examples include the following.


Catechol-O-methyltransferase


Vitamin-N-methyltransferase


Phenylethanolamine-N-methyltransferase


Phosphatidylethanolamine-N-methyltransferase


Nicotinamide-N-methyltransferase


Acetylserotonin-O-methyltransferase


Thiopurine S-methyltransferase


(3) N-acetyltransferases are enzymes that catalyze transacetylation in amino groups, sulfonamide groups and hydrazine groups. Examples include the following.


Arylamine-N-acetyltransferase 1, 2


Arylalkylamine-N-acetyltransferase


N-acetyltransferase homologues of saccharomyces cerevisiae


LI intracellular adhesion molecules


(4) Sulfotransferases are enzymes that contribute to sulfate conjugation and catalyzes trans-sulfonylation in phenols, steroids, arylamines and biliary acid. Examples include the following.


Sulfotransferase 1A1, 1A2, 1A3, 1C, 1C2, 2A1, 2B1


Thyroid hormone sulfotransferase


Tyrosyl protein sulfotransferase 1, 2


Sulfotransferase-opening protein 3


Estrogen sulfotransferase


Cerebroside sulfotransferase


HNK-sulfotransferase 1


Carbohydrate sulfotransferase 2, 4, 5


Carbohydrate sulfotransferase 1, 3


(5) Quinone oxidereductases are enzymes that catalyze the reduction of quinones such as o-quinone and p-quinone. Examples include the following.


NAD(P)H: Quinone oxidereductase 1


NRH: Quinone oxidereductase 2


Quinone oxidereductase homologues


p53-induced gene 3 (PIG3) of a quinone oxide transferase homologue


(6) Glutathione S-transferases are enzymes that catalyze the conjugation of glutathione. Examples include the following.


Glutathione S-transferase Mu1, Mu2, Mu3, Mu4, Mu5


Glutathione S-transferase Z (zeta)


Glutathione S-transferase P (pi)


Glutathione S-transferase 1 T1 (zeta)


Glutathione S-transferase 1 Theta 1, Theta 2


Microsomal Glutathione S-transferase 1


Microsomal Glutathione S-transferase 1-1


Microsomal Glutathione S-transferase 2, 3


Microsomal Glutathione S-transferase Ha Subunit 1, 2


Microsomal Glutathione S-transferase A3, A4


Glutathione S-transferase A1, A4


Glutathione S-transferase M1, M2, M3, M4


(7) UDP-glycosyltransferases are enzymes that catalyze the contribution of glucuronic acid to functional groups such as hydroxyl groups, carboxyl groups, amino groups and thiol groups after their introduction in the 1 st drug metabolism route. Examples include the following.


UDP-glycosyltransferase 1


UDP-glycosyltransferase 1 Family Polypeptide A1


UDP-glycosyltransferase 2 Family Polypeptide A1, B7, B10, B4, B11, B15, B17


UDP-glycosyltransferase 8


Dolichyl-diP-oligosaccharide protein glycosyl transferase


(8) Aldehyde dehydrogenases are enzyme that converts aldehydes into carboxylic acids. Examples include Aldehyde dehydrogenase 1 through 10.


Aldehyde dehydrogenase 1 family member A1, A2, A3


Aldehyde dehydrogenase 1 family member B1


Formyltetrahydroforate dehydrogenase


Aldehyde dehydrogenase 2


Aldehyde dehydrogenase 3 family member A1, A2


Aldehyde dehydrogenase 3 family member B1, B2


Aldehyde dehydrogenase 5 family member A1


Aldehyde dehydrogenase 6 family member A1


Aldehyde dehydrogenase 8 family member A1


Aldehyde dehydrogenase 9 family member A1


(9) Alcohol dehydrogenases are enzymes that convert alcohols into aldehydes or ketones. Examples include the following.


Alcohol dehydrogenase 1 through 7


Hydroxy-CoA-dehydrogenase


Short-chain alcohol dehydrogenase family genes


(10) Esterases are enzymes that hydrolyze some esters. Examples include the following.


Arylacetoamide deacetylase


Granzyme A


Granzyme B


Interleukin 17


Ubiquitin carboxyl-terminal esterase L1, 3


Carboxyl esterase 1


Lipase A


Esterase D-formylglutathione hydrolase


Carboxylester lipase


Dolichyl-diphosphooligosaccharide-protein glycosyltransferase (DDOST)


Neuropathy target esterase


(11) Ubiquinone dehydrogenases (NDUF) are enzymes that support energy metabolism, e.g., as in the mitochondrial respiratory chain. Examples include NADH ubiquinone dehydrogenase 1a Subunit 1 through 10.


NADH-dehydrogenase (ubiquinone)1α-subcomplex 1 through 3 and 5 through 10


NADH-dehydrogenase (ubiquinone)1α/β-subcomplex 1


NADH-dehydrogenase (ubiquinone)1β-subcomplex 3, 5, 7


NADH-dehydrogenase (ubiquinone) Fe—S protein 1, 3, 4, 5, 6, 8


NADH-dehydrogenase (ubiquinone) flavoprotein 1 through 3


(12) Cytochrome P450s (CYPs) are enzymes that regulate 1st drug metabolism and introduce oxygen atoms to the drug. Examples include Cytochrome P450 (CYP) 1A1, CYP1A2, CYP1B1, CYP 2A6, CYP 2B6, CYP 2C8, CYP 2C18, CYP 2C9, CYP 2C19, CYP 2E1, CYP 2D6, CYP 2E1, CYP 2F1, CYP 3A3, CYP 3A4, CYP 3A5, CYP 3A7, CYP 3A43, CYP 4A11, CYP 4B1, CYP 4F2, CYP 4F3, CYP 4F8, CYP11B1, CYP 1B2, CYP17, CYP19, CYP 21A2, CYP 21A1, CYP 27B1 and CYP 27.


(13) ATP-binding cassettes absorb the drug and adjust the interstitial concentration with a transporter. Examples include the following.

    • ATP-Binding Cassette Subfamily A Members 1 through 6, 8
    • ATP-Binding Cassette Subfamily A Members 1, 4, 7, 8
    • ATP-Binding Cassette Subfamily B Members 1 through 11
    • ATP-Binding Cassette Subfamily B Members 1, 4, 7, 8, 9, 10, 11
    • ATP-Binding Cassette Subfamily C Members 1 through 6, 8 through 10
    • ATP-Binding Cassette Subfamily C Members 1, 2, 3, 4, 5, 7, 8, 9
    • ATP-Binding Cassette Subfamily D Members 1 through 4
    • ATP-Binding Cassette Subfamily D Members 1, 3, 4
    • ATP-Binding Cassette Subfamily E Members 1
    • ATP-Binding Cassette Subfamily F Members 1 through 3
    • ATP-Binding Cassette Subfamily F Member 1
    • ATP-Binding Cassette Subfamily G Members 1
    • ATP-Binding Cassette Subfamily G Members 1, 2, 4, 8
    • Organic anion transporters 1, 2, 3
    • Organic anion transporter polypeptides 1, 2, 8
    • Transporter 1 ATP-binding cassette subfamily B
    • Transporter 2 ATP-binding cassette subfamily B
    • SLC22A4 solute carrier family 22 (organic cation transporter) member 4
    • SLC22A5 solute carrier family 22 (organic cation transporter) member 5
    • SLC22A1 solute carrier family 22 (organic cation transporter) member 1
    • SLC22A2 solute carrier family 22 (organic cation transporter) member 2
    • SLC10A2 solute carrier family 10 (sodium/bile acid cotransporter family) member 2
    • SLC15A1 solute carrier family 15 (oligopeptide transporter) member 1


(14) Other enzymes include gamma glutamyl transferase 1, transglutaminase 1 and dihydropyrimidine dihydrogenase.


Genetic polymorphism data relating to DMEs can be obtained using any general genetic polymorphism detection method. Examples include, but are not limited to, PCR or other amplification methods, hybridization methods using an allele-specific oligonucleotide matrix (e.g., TAQMAN PCR method, INVADER assay method), primer extension reaction methods, sequencing methods, MALDI-TOF/MS methods and the DNA chip methods (e.g., microarrays). Examples of detection methods that are applicable to analysis of the DME associated polymorphisms of the present invention include but are not limited to those listed below.


1. Direct Sequencing Assays


In some embodiments of the present invention, variant sequences are detected using a direct sequencing technique. In these assays, DNA samples are first isolated from a subject using any suitable method. In some embodiments, the region of interest is cloned into a suitable vector and amplified by growth in a host cell (e.g., a bacteria). In other embodiments, DNA in the region of interest is amplified using PCR.


Following amplification, DNA in the region of interest (e.g., the region containing the SNP or mutation of interest) is sequenced using any suitable method, including but not limited to manual sequencing using radioactive marker nucleotides, or automated sequencing. The results of the sequencing are displayed using any suitable method. The sequence is examined and the presence or absence of a given SNP or mutation is determined.


2. PCR Assay


In some embodiments of the present invention, variant sequences are detected using a PCR-based assay. In some embodiments, the PCR assay comprises the use of oligonucleotide primers that hybridize only to the variant or wild type allele (e.g., to the region of polymorphism or mutation). Both sets of primers are used to amplify a sample of DNA. If only the mutant primers result in a PCR product, then the patient has the mutant allele. If only the wild-type primers result in a PCR product, then the patient has the wild type allele.


3. Fragment Length Polymorphism Assays


In some embodiments of the present invention, variant sequences are detected using a fragment length polymorphism assay. In a fragment length polymorphism assay, a unique DNA banding pattern based on cleaving the DNA at a series of positions is generated using an enzyme (e.g., a restriction enzyme or a CLEAVASE I [Third Wave Technologies, Madison, Wis.] enzyme). DNA fragments from a sample containing a SNP or a mutation will have a different banding pattern than wild type.


a. RFLP Assay


In some embodiments of the present invention, variant sequences are detected using a restriction fragment length polymorphism assay (RFLP). The region of interest is first isolated using PCR. The PCR products are then cleaved with restriction enzymes known to give a unique length fragment for a given polymorphism. The restriction-enzyme digested PCR products are generally separated by gel electrophoresis and may be visualized by ethidium bromide staining. The length of the fragments is compared to molecular weight markers and fragments generated from wild-type and mutant controls.


b. CFLP Assay


In other embodiments, variant sequences are detected using a CLEAVASE fragment length polymorphism assay (CFLP; Third Wave Technologies, Madison, Wis.; See e.g., U.S. Pat. Nos. 5,843,654; 5,843,669; 5,719,208; and 5,888,780; each of which is herein incorporated by reference). This assay is based on the observation that when single strands of DNA fold on themselves, they assume higher order structures that are highly individual to the precise sequence of the DNA molecule. These secondary structures involve partially duplexed regions of DNA such that single stranded regions are juxtaposed with double stranded DNA hairpins. The CLEAVASE I enzyme, is a structure-specific, thermostable nuclease that recognizes and cleaves the junctions between these single-stranded and double-stranded regions.


The region of interest is first isolated, for example, using PCR. In preferred embodiments, one or both strands are labeled. Then, DNA strands are separated by heating. Next, the reactions are cooled to allow intrastrand secondary structure to form. The PCR products are then treated with the CLEAVASE I enzyme to generate a series of fragments that are unique to a given SNP or mutation. The CLEAVASE enzyme treated PCR products are separated and detected (e.g., by denaturing gel electrophoresis) and visualized (e.g., by autoradiography, fluorescence imaging or staining). The length of the fragments is compared to molecular weight markers and fragments generated from wild-type and mutant controls.


4. Hybridization Assays


In preferred embodiments of the present invention, variant sequences are detected a hybridization assay. In a hybridization assay, the presence of absence of a given SNP or mutation is determined based on the ability of the DNA from the sample to hybridize to a complementary DNA molecule (e.g., a oligonucleotide probe). A variety of hybridization assays using a variety of technologies for hybridization and detection are available. A description of a selection of assays is provided below.


a. Direct Detection of Hybridization


In some embodiments, hybridization of a probe to the sequence of interest (e.g., a SNP or mutation) is detected directly by visualizing a bound probe (e.g., a Northern or Southern assay; See e.g., Ausabel et al. (eds.), Current Protocols in Molecular Biology, John Wiley & Sons, NY [1991]). In a these assays, genomic DNA (Southern) or RNA (Northern) is isolated from a subject. The DNA or RNA is then cleaved with a series of restriction enzymes that cleave infrequently in the genome and not near any of the markers being assayed. The DNA or RNA is then separated (e.g., on an agarose gel) and transferred to a membrane. A labeled (e.g., by incorporating a radionucleotide) probe or probes specific for the SNP or mutation being detected is allowed to contact the membrane under a condition or low, medium, or high stringency conditions. Unbound probe is removed and the presence of binding is detected by visualizing the labeled probe.


b. Detection of Hybridization Using “DNA Chip” Assays


In some embodiments of the present invention, variant sequences are detected using a DNA chip hybridization assay. In this assay, a series of oligonucleotide probes are affixed to a solid support. The oligonucleotide probes are designed to be unique to a given SNP or mutation. The DNA sample of interest is contacted with the DNA “chip” and hybridization is detected.


In some embodiments, the DNA chip assay is a GeneChip (Affymetrix, Santa Clara, Calif.; See e.g., U.S. Pat. Nos. 6,045,996; 5,925,525; and 5,858,659; each of which is herein incorporated by reference) assay. The GeneChip technology uses miniaturized, high-density arrays of oligonucleotide probes affixed to a “chip.” Probe arrays are manufactured by Affymetrix's light-directed chemical synthesis process, which combines solid-phase chemical synthesis with photolithographic fabrication techniques employed in the semiconductor industry. Using a series of photolithographic masks to define chip exposure sites, followed by specific chemical synthesis steps, the process constructs high-density arrays of oligonucleotides, with each probe in a predefined position in the array. Multiple probe arrays are synthesized simultaneously on a large glass wafer. The wafers are then diced, and individual probe arrays are packaged in injection-molded plastic cartridges, which protect them from the environment and serve as chambers for hybridization.


The nucleic acid to be analyzed is isolated, amplified by PCR, and labeled with a fluorescent reporter group. The labeled DNA is then incubated with the array using a fluidics station. The array is then inserted into the scanner, where patterns of hybridization are detected. The hybridization data are collected as light emitted from the fluorescent reporter groups already incorporated into the target, which is bound to the probe array. Probes that perfectly match the target generally produce stronger signals than those that have mismatches. Since the sequence and position of each probe on the array are known, by complementarity, the identity of the target nucleic acid applied to the probe array can be determined.


In other embodiments, a DNA microchip containing electronically captured probes (Nanogen, San Diego, Calif.) is utilized (See e.g., U.S. Pat. Nos. 6,017,696; 6,068,818; and 6,051,380; each of which are herein incorporated by reference). Through the use of microelectronics, Nanogen's technology enables the active movement and concentration of charged molecules to and from designated test sites on its semiconductor microchip. DNA capture probes unique to a given SNP or mutation are electronically placed at, or “addressed” to, specific sites on the microchip. Since DNA has a strong negative charge, it can be electronically moved to an area of positive charge.


First, a test site or a row of test sites on the microchip is electronically activated with a positive charge. Next, a solution containing the DNA probes is introduced onto the microchip. The negatively charged probes rapidly move to the positively charged sites, where they concentrate and are chemically bound to a site on the microchip. The microchip is then washed and another solution of distinct DNA probes is added until the array of specifically bound DNA probes is complete.


A test sample is then analyzed for the presence of target DNA molecules by determining which of the DNA capture probes hybridize, with complementary DNA in the test sample (e.g., a PCR amplified gene of interest). An electronic charge is also used to move and concentrate target molecules to one or more test sites on the microchip. The electronic concentration of sample DNA at each test site promotes rapid hybridization of sample DNA with complementary capture probes (hybridization may occur in minutes). To remove any unbound or nonspecifically bound DNA from each site, the polarity or charge of the site is reversed to negative, thereby forcing any unbound or nonspecifically bound DNA back into solution away from the capture probes. A laser-based fluorescence scanner is used to detect binding, In still further embodiments, an array technology based upon the segregation of fluids on a flat surface (chip) by differences in surface tension (ProtoGene, Palo Alto, Calif.) is utilized (See e.g., U.S. Pat. Nos. 6,001,311; 5,985,551; and 5,474,796; each of which is herein incorporated by reference). Protogene's technology is based on the fact that fluids can be segregated on a flat surface by differences in surface tension that have been imparted by chemical coatings. Once so segregated, oligonucleotide probes are synthesized directly on the chip by ink-jet printing of reagents. The array with its reaction sites defined by surface tension is mounted on a X/Y translation stage under a set of four piezoelectric nozzles, one for each of the four standard DNA bases. The translation stage moves along each of the rows of the array and the appropriate reagent is delivered to each of the reaction site. For example, the A amidite is delivered only to the sites where amidite A is to be coupled during that synthesis step and so on. Common reagents and washes are delivered by flooding the entire surface and then removing them by spinning.


DNA probes unique for the SNP or mutation of interest are affixed to the chip using Protogene's technology. The chip is then contacted with the PCR-amplified genes of interest. Following hybridization, unbound DNA is removed and hybridization is detected using any suitable method (e.g., by fluorescence de-quenching of an incorporated fluorescent group).


In yet other embodiments, a “bead array” is used for the detection of polymorphisms (Illumina, San Diego, Calif.; See e.g., PCT Publications WO 99/67641 and WO 00/39587, each of which is herein incorporated by reference). Illumina uses a BEAD ARRAY technology that combines fiber optic bundles and beads that self-assemble into an array. Each fiber optic bundle contains thousands to millions of individual fibers depending on the diameter of the bundle. The beads are coated with an oligonucleotide specific for the detection of a given SNP or mutation. Batches of beads are combined to form a pool specific to the array. To perform an assay, the BEAD ARRAY is contacted with a prepared subject sample (e.g., DNA). Hybridization is detected using any suitable method.


C. Enzymatic Detection of Hybridization


In some embodiments of the present invention, hybridization is detected by enzymatic cleavage of specific structures (INVADER assay, Third Wave Technologies; See e.g., U.S. Pat. Nos. 5,846,717, 6,090,543; 6,001,567; 5,985,557; and 5,994,069; each of which is herein incorporated by reference). The INVADER assay detects specific DNA and RNA sequences by using structure-specific enzymes to cleave a complex formed by the hybridization of overlapping oligonucleotide probes. Elevated temperature and an excess of one of the probes enable multiple probes to be cleaved for each target sequence present without temperature cycling. These cleaved probes then direct cleavage of a second labeled probe. The secondary probe oligonucleotide can be 5′-end labeled with a fluorescent dye that is quenched by a second dye or other quenching moiety. Upon cleavage, the de-quenched dye-labeled product may be detected using a standard fluorescence plate reader, or an instrument configured to collect fluorescence data during the course of the reaction (i.e., a “real-time” fluorescence detector, such as an ABI 7700 Sequence Detection System, Applied Biosystems, Foster City, Calif.).


The INVADER assay detects specific mutations and SNPs in unamplified genomic DNA. In an embodiment of the INVADER assay used for detecting SNPs in genomic DNA, two oligonucleotides (a primary probe specific either for a SNP/mutation or wild type sequence, and an INVADER oligonucleotide) hybridize in tandem to the genomic DNA to form an overlapping structure. A structure-specific nuclease enzyme recognizes this overlapping structure and cleaves the primary probe. In a secondary reaction, cleaved primary probe combines with a fluorescence-labeled secondary probe to create another overlapping structure that is cleaved by the enzyme. The initial and secondary reactions can run concurrently in the same vessel. Cleavage of the secondary probe is detected by using a fluorescence detector, as described above. The signal of the test sample may be compared to known positive and negative controls.


In some embodiments, hybridization of a bound probe is detected using a TAQMAN assay (PE Biosystems, Foster City, Calif.; See e.g., U.S. Pat. Nos. 5,962,233 and 5,538,848, each of which is herein incorporated by reference). The assay is performed during a PCR reaction. The TAQMAN assay exploits the 5′-3′ exonuclease activity of DNA polymerases such as AMPLITAQ DNA polymerase. A probe, specific for a given allele or mutation, is included in the PCR reaction. The probe consists of an oligonucleotide with a 5′-reporter dye (e.g., a fluorescent dye) and a 3′-quencher dye. During PCR, if the probe is bound to its target, the 5′-3′ nucleolytic activity of the AMPLITAQ polymerase cleaves the probe between the reporter and the quencher dye. The separation of the reporter dye from the quencher dye results in an increase of fluorescence. The signal accumulates with each cycle of PCR and can be monitored with a fluorimeter.


In still further embodiments, polymorphisms are detected using the SNP-IT primer extension assay (Orchid Biosciences, Princeton, N.J.; See e.g., U.S. Pat. Nos. 5,952,174 and 5,919,626, each of which is herein incorporated by reference). In this assay, SNPs are identified by using a specially synthesized DNA primer and a DNA polymerase to selectively extend the DNA chain by one base at the suspected SNP location. DNA in the region of interest is amplified and denatured. Polymerase reactions are then performed using miniaturized systems called microfluidics. Detection is accomplished by adding a label to the nucleotide suspected of being at the SNP or mutation location. Incorporation of the label into the DNA can be detected by any suitable method (e.g., if the nucleotide contains a biotin label, detection is via a fluorescently labeled antibody specific for biotin).


5. Other Detection Assays


Additional detection assays that are produced and utilized using the systems and methods of the present invention include, but are not limited to, enzyme mismatch cleavage methods (e.g., Variagenics, U.S. Pat. Nos. 6,110,684, 5,958,692, 5,851,770, herein incorporated by reference in their entireties); polymerase chain reaction; branched hybridization methods (e.g., Chiron, U.S. Pat. Nos. 5,849,481, 5,710,264, 5,124,246, and 5,624,802, herein incorporated by reference in their entireties); rolling circle replication (e.g., U.S. Pat. Nos. 6,210,884 and 6,183,960, herein incorporated by reference in their entireties); NASBA (e.g., U.S. Pat. No. 5,409,818, herein incorporated by reference in its entirety); molecular beacon technology (e.g., U.S. Pat. No. 6,150,097, herein incorporated by reference in its entirety); E-sensor technology (Motorola, U.S. Pat. Nos. 6,248,229, 6,221,583, 6,013,170, and 6,063,573, herein incorporated by reference in their entireties); cycling probe technology (e.g., U.S. Pat. Nos. 5,403,711, 5,011,769, and 5,660,988, herein incorporated by reference in their entireties); Dade Behring signal amplification methods (e.g., U.S. Pat. Nos. 6,121,001, 6,110,677, 5,914,230, 5,882,867, and 5,792,614, herein incorporated by reference in their entireties); ligase chain reaction (Barnay Proc. Natl. Acad. Sci USA 88, 189-93 (1991)); and sandwich hybridization methods (e.g., U.S. Pat. No. 5,288,609, herein incorporated by reference in its entirety).


6. Mass Spectroscopy Assay


In some embodiments, a MassARRAY system (Sequenom, San Diego, Calif.) is used to detect variant sequences (See e.g., U.S. Pat. Nos. 6,043,031; 5,777,324; and 5,605,798; each of which is herein incorporated by reference). DNA is isolated from blood samples using standard procedures. Next, specific DNA regions containing the mutation or SNP of interest, about 200 base pairs in length, are amplified by PCR. The amplified fragments are then attached by one strand to a solid surface and the non-immobilized strands are removed by standard denaturation and washing. The remaining immobilized single strand then serves as a template for automated enzymatic reactions that produce genotype specific diagnostic products.


Very small quantities of the enzymatic products, typically five to ten nanoliters, are then transferred to a SpectroCHIP array for subsequent automated analysis with the SpectroREADER mass spectrometer. Each spot is preloaded with light absorbing crystals that form a matrix with the dispensed diagnostic product. The MassARRAY system uses MALDI-TOF (Matrix Assisted Laser Desorption Ionization-Time of Flight) mass spectrometry. In a process known as desorption, the matrix is hit with a pulse from a laser beam. Energy from the laser beam is transferred to the matrix and it is vaporized resulting in a small amount of the diagnostic product being expelled into a flight tube. As the diagnostic product is charged when an electrical field pulse is subsequently applied to the tube they are launched down the flight tube towards a detector. The time between application of the electrical field pulse and collision of the diagnostic product with the detector is referred to as the time of flight. This is a very precise measure of the product's molecular weight, as a molecule's mass correlates directly with time of flight with smaller molecules flying faster than larger molecules. The entire assay is completed in less than one thousandth of a second, enabling samples to be analyzed in a total of 3-5 second including repetitive data collection. The SpectroTYPER software then calculates, records, compares and reports the genotypes at the rate of three seconds per sample.


In some embodiments, the present invention provides an oligonucleotide comprising a DME related sequence, or a complement of a DME-related sequence. In preferred embodiments, an oligonucleotide of the present invention comprises a sequence or a complement of a sequence selected from the group consisting SEQ ID NOs. 1-7669, or a substantially similar sequence.


In some embodiments, an oligonucleotide probe or oligonucleotide primer is created so the 5′ terminus, 3′ terminus or central base contains the genetic polymorphism site. In some preferred embodiments, an oligonucleotide is created comprising at least 13 contiguous bases of a sequence selected from SEQ ID NOs 1 through 7669, or the complement thereto, and further comprising the 21st nucleotide of the sequence selected from SEQ ID NOs 1 through 7669, or the complement thereto.


In some embodiments, an oligonucleotide of the present invention flanks or is adjacent to a polymorphic site, such that the presence of the polymorphism can be detected by modification of the oligonucleotide in a manner dependent on the presence or absence of the polymorphism.


In some embodiments, the present invention provides kits comprising one or more of the components necessary for practicing the present invention. For example, the present invention provides kits for storing or delivering the enzymes of the present invention and/or the reaction components necessary to practice a cleavage assay (e.g., the INVADER assay). The kit may include any and all components necessary or desired for the enzymes or assays including, but not limited to, the reagents themselves, buffers, control reagents (e.g., tissue samples, positive and negative control target oligonucleotides, etc.), solid supports, labels, written and/or pictorial instructions and product information, inhibitors, labeling and/or detection reagents, package environmental controls (e.g., ice, desiccants, etc.), and the like. In some embodiments, the kits provide a sub-set of the required components, wherein it is expected that the user will supply the remaining components. In some embodiments, the kits comprise two or more separate containers wherein each container houses a subset of the components to be delivered. For example, a first container (e.g., box) may contain an enzyme (e.g., structure specific cleavage enzyme in a suitable storage buffer and container), while a second box may contain oligonucleotides (e.g., INVADER oligonucleotides, probe oligonucleotides, control target oligonucleotides, etc.). In some embodiments one or more the reaction components may be provided in a predispensed format (i.e., pre-measured for use in a step of the procedure without re-measurement or re-dispensing). In some embodiments, selected reaction components are mixed and predispensed together. In preferred embodiments, predispensed reaction components are predispensed and are provided in a reaction vessel (including but not limited to a reaction tube or a well, as in, e.g., a microtiter plate). In particularly preferred embodiments, predispensed reaction components are dried down (e.g., desiccated or lyophilized) in a reaction vessel.


Examples of genetic polymorphism data (especially the SNP data) that can be used in the method of the present invention are shown in Table 1.


In Table 1, the name of the gene encoding the drug metabolizing enzyme is recorded in the gene name column. The base in capital letters is the SNP data in the sequence column. Two bases separated by a forward slash indicate the SNP of homo and hetero bases. For example, A/G indicates a homo allele A/A and G/G as well as a hetero allele A/G. The sequences in this table have 20 bases before and after the SNP. Here, the base in parentheses, for example the 26th (T) in ABCB4, indicates a polymorphism with an inserted base, and D, such as the 10th spot in NAT2, indicates a polymorphism with a deleted base. In Sequence No. 674, n is VNTR and (cctgy)x, where x is an integer between 1 and 50, indicates a repeated sequence. The bases with numbers in parentheses indicate the number of times they are repeated. For example, “(T) 9-12” in Sequence No. 1552 (ABCB11 No. 55 in Table 1) indicates T is repeated 9 to 12 times.


Here, “position” indicates the position of the SNP genome. The position of SNPs in the 5′ flanking region, intron region and 3′ flanking region are intron base sequences counted as a single number starting at the exon-intron junction. The position of SNPs in the exon region are exon base sequences counted as a single number starting at the exon-intron junction. Also, (+) or no symbol indicates a number counted in the 3′ upstream direction and (−) indicates a number counted in the 5′ downstream direction. The number in the “number” column indicates the position of the SNP in the gene maps of the various genes (FIG. 9 through FIG. 141 and FIG. 144 through 312).


The sequence represented by the SEQ ID Nos. 1-7669 can readily be associated with the corresponding gene, chromosome, and chromosomal position. Each of the genes shown in Table 1 correlates to a corresponding Figure in the present application. The Figures show a map of the gene with positional identifiers for each of the polymorphisms. The Figures also provide an accession number that correlates to public genome databases, allowing the genetic context of the polymorphism and the gene to be understood. Using the information in Table 1, the Figures, and public genome databases, one skilled in the art is able to identify flanking sequences. This allows, for example, the development of PCR primers that flank the polymorphism. Considerations for PCR primer design are known in the art for both single PCR reactions and multiplex reactions (See e.g., Henegariu et al., BioTechniques 23:504-511 [1997] and PCR Applications, edited by Innis, Gelfand, and Sninsky, Academic Press, San Diego, Calif. 1999), each of which is herein incorporated by references in its entirety). Examples of primers that find use in the amplification of sequences containing polymorphisms, as well as amplification conditions, are found at the IMS-JST JSNP database website (See, submissions from Laboratory for Genotyping, The SNP Research Center, The Institute of Physical and Chemical Research (RIKEN)).


One example of information generated using SEQ ID Nos. 1-7669 and information in publicly available databases is provided in FIG. 143. The first column in this figure shows that 3360 entries are made, corresponding to the first 3360 entries found in Table 1. The second column, entitled “GENE” provides a gene name abbreviation, while the next column provides a long gene name. The next columns show the chromosome (CHROM), a reference mRNA accession number (REF. mRNA), a locus link database accession number (L-LINK), an OMIM database accession number (OMIM_ID) which allows disease association information to be readily obtained, the exon count for the gene (EXONS), and the number of polymorphisms in the gene (NO GENE).


Creating an Oligonucleotide Probe or Oligonucleotide Primer


In some embodiments, an oligonucleotide used as a primer and/or probe in the detection method of the present invention serves as the template of the base sequences (Sequence No. 1 through 7669) shown in Table 1 if, for example, a SNP is to be detected. The primer/probe can be designed so it is synthesized as the base sequence itself or as a portion of the base sequence. In preferred embodiments, the SNP is included in the base sequence of the primer/probe (and denoted in capital letters in the base sequence column of Table 1). The primers/probes may also be complementary to the non-mutant sequence.


The SNP in the following example is designed so it is on the 3′ or 5′ end of the base sequence. It is designed to be within four bases of the 3′ or 5′ end, and ideally within two bases of the end. The SNP can also be in the center of the oligonucleotide base sequence. Here, “center” means the number of the bases from the SNP base to the 5′ end is substantially equal to the number of bases from the SNP base to the 3′ end. If there is an odd number of bases in the oligonucleotide, the central region should be essentially five bases in length, preferably three bases in length, and ideally one base in length. In a base sequence with 41 bases, for example, the central region should be bases 19 through 23, preferably bases 20 through 22, and ideally base 21. If there is an even number of bases, the central region should be four bases and ideally two bases. In a base sequence of 40 bases, for example, the central region should be bases 19 through 22 and ideally base 20.


If the polymorphism consists of a plurality of bases, in some embodiments, the probe/primer is designed so the full polymorphism sequence is contained in the probe/primer. In some preferred embodiments, it is designed so one of the bases 1 through 4 on the 5′ end or 3′ end complementing the primer DNA corresponds to the base at the very end of the polymorphism bases. (This is called the “corresponding base”; ideally, it is the base at the 5′ or 3′ end). For example, in the INVADER assay, if a probe and INVADER oligonucleotide are prepared to detect a genetic polymorphism (CAGAGGCT) in No. 12 of NDUFA7 in Table 1 (Sequence No. 828), the position of the corresponding base in the probe in FIG. 4a (a “T” base in the figure) is designed to become “C” at the far left of sequence CAGAGGCT, and the N base in the INVADER oligonucleotide shown in FIG. 4b is designed to replace the “C” at the far left of CAGAGGCT with A, T, C or G). Conversely, if designed so the position of the corresponding base in the INVADER oligonucleotide is the far right “T” in CAGAGGCT, the “N” base is such that the corresponding base in the probe is “T.” Further, the corresponding base of the INVADER oligonucleotide and the allele probe can be set anywhere in the CAGAGGCT sequence.


In preferred embodiments, the length of the base sequence is at least 13 bases, preferably between 13 and 60 bases, more preferably between 15 and 40 bases, and ideally between 18 and 30 bases. These oligonucleotide base sequences can be used as probes, as forward (sense) primers or as reverse (anti-sense) primers to detect target genes.


These oligonucleotides can link regions hybridized with genome DNA in tandem to unhybridized regions. The linking order can be upstream or downstream. The hybridized regions in these oligonucleotides can be designed from base sequence data containing the SNP described in Table 1, and created so the sequence containing the region hybridized with genome DNA closest to the 5′ or 3′ end is the SNP. These oligonucleotides can be used as probes to detect SNP using the INVADER assay.


The primer used in some embodiments of the present invention is designed to determine the functional change caused by the SNPs in the base sequences in Table 1, to determine whether the change is effective or ineffective, and to determine the existence of side effects. It is designed to include the SNP in the PCR-amplified base sequence. In some preferred embodiments, the primer should have at least 15 base sequences, preferably between 15 and 30 base sequences, and ideally between 18 and 24 base sequences. The template DNA regions in the primer base sequence should contain 500 bp or less amplified fragments, preferably between 100 and 300 bp fragments, and ideally between 100 and 150 bp fragments.


The oligonucleotide probes and primers designed in this manner can be synthesized chemically using any method commonly known in the art. For example, the oligonucleotides can be synthesized using a commercially available chemical synthesis device. The production of probes can be conducted automatically by adding fluorescent tags (e.g., FAM, VIC, Cy3) or other labels.


These oligonucleotides can be included in genetic polymorphism detection kits along with polymerase (e.g., Taq polymerase), a buffering solution (e.g., a Tris buffering solution), dNTP, fluorescent dyes (e.g., VIC, FAM), or other desired kit components.


Detection


In some embodiments, the oligonucleotides prepared in the examples above are used as primers/probes, and the genes or a portion thereof (template DNA) encoding the drug metabolizing enzyme is amplified using DNA polymerase. A primer/probe prepared in this manner can be hybridized with template DNA and used to detect DNA with the target genetic polymorphism. The DNA used as the template can be prepared using any method commonly known in the art. Examples include cesium chloride density gradient ultra centrifugation method, the SDS solvency method or the phenol chloroform extraction method.


1 Detection Using PCR


The amplification can be performed using a polymerase chain reaction (PCR). The DNA polymerase can be LA Taq DNA polymerase (Takara), Ex Taq polymerase (Takara), AMPLITAQ Gold polymerase (Applied Biosystems), AMPLITAQ (Applied Biosystems) or Pfu DNA polymerase (Stratagene), as well as other polymerases.


An illustrative example of amplification conditions is provided below. The present invention is not limited to the conditions provided in this example. In preferred embodiments, each cycle in the transforming phase should last between 10 and 40 seconds at 85° C. to 105° C. and preferably 20 and 30 seconds at 94° C., each cycle in the annealing phase should last 30 seconds to 1 minute at 50° C. to 72° C. and preferably 20 seconds to 1 minute at 60° C., and each cycle in the elongation phase should last 1 minute to 4 minutes between 65° C. and 75° C. and preferably 2 minutes to 3 minutes at 72° C. There should be 30 to 40 cycles, although fewer or more cycles are contemplated. In order to completely transform the template DNA and the primer, each cycle in the transforming phase should last 1 minute to 5 minutes at 95° C. before the amplifying cycle. If AMPLITAQ GOLD polymerase manufactured by Applied Biosystems is used, it should last from 8 minutes to 15 minutes and ideally from 10 minutes to 12 minutes. In order to completely elongate the amplified DNA, the elongation phase should last between 1 minute and 10 minutes at 72° C. after the amplification cycle. If the amplified product is not immediately detected, it should be processed again at 4° C. to make sure the amplification was not irregular. In this way, the gene encoding the drug metabolizing enzyme is amplified.


After amplification, gel electrophoresis is performed on the amplified product, the amplified product is stained using ethidium bromide or SYBR Green, and one, two or three bands are detected in the amplified product (DNA fragments) to determine the portion (DNA fragment) of the drug metabolizing enzyme containing the genetic polymorphism in the gene encoding the drug metabolizing enzyme. Polyacrylamide gel electrophoresis or capillary electrophoresis can be performed instead of aerogel electrophoresis. PCR can be performed using a primer tagged with a fluorescent dye to detect the amplified product. A detection method that does not require electrophoresis can also be used, such as bonding the amplified product in solid phase to a microplate and detecting the amplified product using a fluorescent or enzymatic reaction.


2. Detection Using the TAQMAN PCR Method


In the TAQMAN PCR method, the PCR reaction is performed using a fluorescent dye-tagged allele-specific oligo and Taq DNA polymerase. The allele-specific oligo used in the TAQMAN PCR method (TAQMAN probe) can be designed based on the SNP data. The 5′ end of the TAQMAN probe is tagged using a fluorescent reporter dye R such as FAM or VIC, and the 3′ end is tagged using a quencher Q (light-quenching substance). (See FIG. 1.). Here, the fluorescent light energy absorbed by the quencher is not detected. Because the 3′ end of the TAQMAN probe is phosphorylated, there is no elongation reaction from the TAQMAN probe in the PCR reaction (FIG. 1). However, a PCR reaction is performed on the TAQMAN probe with TaqDNA polymerase and a primer designed to amplify the region containing the SNP. The following reaction occurs.


First, the TAQMAN probe is hybridized in a specific sequence of template DNA (FIG. 2a) and an elongation reaction is simultaneously performed from the PCR primer (FIG. 2b). Because the Taq DNA polymerase has 5′ nuclease activity, the hybridized TAQMAN probe is severed as the PCR primer elongation reaction continues. When the TAQMAN probe is severed, the quencher has no effect on the fluorescent dye, and the fluorescent light is detected (FIG. 2c).


For example, suppose there is an A allele (Allele 1) and a G allele (Allele 2) at the SNP position as shown in FIG. 3. Allele 1 is tagged by a specific TAQMAN probe with FAM and Allele 2 is tagged by a specific TAQMAN probe with VIC (see FIG. 3). Two different allele-specific oligos are added to the PCR drug, and TAQMAN PCR is performed on the detected template. The fluorescence detector then detects the fluorescent intensity of the FAM and VIC. When the SNP position in the allele and the position corresponding to the SNP in the TAQMAN probe are complementary, the probe is hybridized with the allele, the fluorescent dye in the probe is severed by the Taq polymerase, the effect of the quencher is eliminated, and the intensity of the fluorescence is detected.


If the template is homozygous for Allele 1, strong FAM fluorescence is detected and hardly any VIC fluorescence is detected. If the template is heterozygous for Allele 1 and Allele 2, both FAM and VIC fluorescence are detected.


3. SNP Detection Using the INVADER assay


In the INVADER assay, an allele-specific oligo and the template are hydridized to detect the SNP. In the INVADER assay, two different non-tagged oligos and one fluorescent dye-tagged oligo are used. One of the two non-tagged oligos is known as the probe. In some embodiments, the probe has a region hybridized to the genome DNA (template DNA) and a region (called a flap) that is not hydridized with the genome DNA, and that has a sequence unrelated to the sequence of the genomic DNA. The hybridized region has base sequences corresponding to the SNP (FIG. 4a). The flap sequence is complementary to a FRET probe (described below). The other of the two non-tagged oligos is called the INVADER oligonucleotide. This oligonucleotide is designed so that it is hybridized in complementary fashion from the SNP position towards the 3′ end of the genome DNA (FIG. 4b). In some preferred embodiments, the sequence corresponding to the SNP position can be any base (denoted by N in FIG. 4b). When the template DNA genome is hybridized with the two probes, the base (N) from the INVADER oligonucleotide is inserted in the SNP position (FIG. 4c) forming a cleavage structure at the SNP position.


In some embodiments, the fluorescent dye-tagged oligonucleotide is a sequence completely unrelated to the alleles. This probe is a FRET (fluorescence resonance energy transfer) probe (FIG. 5). The fluorescent dye R tags the base (reporter) at the 5′ end of the FRET prove. A quencher Q absorbs the fluorescence. Here, the quencher absorbs the fluorescent light and the light is not detected. A specific region (Region 1) is designed on the 5′ end of the FRET probe (reporter base) to face the 3′ end from Region 1 (This region is Region 2). As a result, Region 1 and Region 2 form a complementary duplex (FIG. 5). The 3′-region from the regions forming the complementary duplex can be hybridized with the flap of the allele probe to form a complementary chain (FIG. 5).


In the INVADER assay, a cleavage agent (e.g., CLEAVASE enzyme, Third Wave Technologies, Madison, Wis.) is used, which is an enzyme (5′ nuclease) with specific endonuclease activity for identifying and cleaving a specific DNA structure. When the genome DNA, the probe and the INVADER oligonucleotide form a cleavage structure at the SNP position, the cleavage agent severs 3′ of the SNP position on the allele probe. The section with three bases forming a flap with the 5′ end is identified as shown in FIG. 4c, and the flap is severed. The structure with the SNP position is identified by the cleavage agent (FIG. 6a), the probe is severed at the flap position, and the flap is separated (FIG. 6b). Next, the released flap from the probe bonds with the FRET probe in complementary fashion to form a duplex (FIG. 6c). The cleavage agent identifies this structure and cleaves the section with the fluorescent dye. The cleaved fluorescent dye is no longer affected by the quencher and fluorescent light becomes detectable (FIG. 6d). If the SNP position does not match the sequence corresponding to the SNP in the allele probe as shown in FIG. 7, the specific DNA structure is not identified by the cleavage agent, the probe is not severed, and fluorescent light is not detected.


When the SNP is T/C, for example, a T INVADER oligonucleotide, a T probe, a FRET probe with FAM bonded to the reporter for the T SNP, a C INVADER oligonucleotide, a C probe and a FRET probe with VIC bonded to the reporter for the C SNP are prepared. These are combined and SNP detection is performed. If there is a T/T homo, FAM fluorescence is generated. If there is a C/C homo, VIC fluorescence is detected. If there is a T/C hetero, both FAM and VIC fluorescence are detected. Because the FAM and VIC fluorescence wavelengths are different, both can be readily identified.


Detection Using the SniPer Method


In order to detect SNP using the SniPer method, an allele identifier is amplified using RCA. The genome DNA template is a straight chain, and a probe is hybridized with the genome DNA. When there is a complementary match between the probe sequence and the genome DNA template sequence and a complementary chain forms, a ligation reaction on the genome DNA forms a ring. As a result, RCA continues on cyclic DNA. If the end of the probe does not match the genome DNA, the RCA reaction does not occur because there is no ligation and no ring. In the SniPer method, therefore, a single chain probe is designed to anneal the genome DNA and create a ring. This single chain probe is called a padlock probe. The severed end of the padlock probe is the sequence corresponding to the target SNP. The padlock probe and the genome DNA mix and a ligation reaction occurs. If the severed end of the padlock probe and the SNP section of the genome DNA are complementary, the severed end of the padlock probe connects and forms a ring during the ligation reaction. If they are not complementary, a ring does not form. Therefore, only a padlock probe corresponding to the target SNP forms a ring and is amplified by the DNA polymerase. The presence of amplification is used to detect the SNP. A synthetic oligonucleotide with a hairpin structure and a fluorescent dye and quencher on both ends can be used in the detection process.


Detection Using the MALDI-TOF/MS Method


In the matrix assisted laser desorption-time of flight/mass spectroscopy (MALDI-TOF/MS) method, SNP typing is performed using a mass spectrometer. A preferred embodiments of this method has the following steps.


(i) PCR Amplification and Refinement of DNA Fragments Containing SNP


After making sure the base at the SNP location and the PCR primer do not overlap, the DNA fragment is amplified, exonuclease or alkali phosphatase processing is performed on the amplified product, the dNTP is removed, and the amplified fragment is refined.


(ii) Primer Extension Reaction (Thermal Cycle) and Refinement


A primer ten or more times the template in the region identified as the PCR product is added, a thermal cycle reaction is performed, and a primer elongation reaction is performed. The primer used here is designed so the 3′ end is next to the base corresponding to the SNP position. The primer length should be 15 to 30 bases, ideally 20 to 25 bases. If there is a multiplex reaction, a sequence that is not complementary to the template is added to the 5′ end. There should be 20 to 30 (ideally 25) thermal cycles at two different temperatures. These should be 85 to 105° C. (ideally 94° C.) and 35 to 40° C. (ideally 37° C.).


The reaction product is then refined using a refining kit so it can be used in the mass spectrometer.


(iii) Mass Spectroscopy Using a Mass Spectrometer


The elongated and refined reaction product is applied to the mass spectrometer, and a quality of the target product is measured. In other words, the refined product is mixed with the matrix and 0.5 to 1.0 mL spots are formed on the MALDI plate. After drying the plate, the substance is irradiated by a laser beam and a spectrogram is produced.


Detection Using the Base Sequence Determining Method


In the present invention, a polymorphism can be detected using an elongation reaction on a single base. In other words, four different types of dideoxynucleotides identified by different fluorescent compounds are added to reaction systems including the gene to be detected and a single base elongation reaction is performed. Here, the base to be elongated is the polymorphism. Two reactions are performed; one to stop the DNA synthesis and another to identify the 3′ end of the DNA molecule with fluorescence. Electrophoresis is performed on four different reaction solutions with the same lanes and capillaries for the sequencing gel. The sequence is determined by detecting the differences in the fluorescent dyes identifying the DNA bands using a fluorescence detector. The oligonucleotides with one base elongated have the elongation confirmed using different types of fluorescent dyes in a fluorescence detector and mass spectrometer. Instead of fluorescent-tagged dideoxynucleotides, the primer can be identified using fluorescence used with non-tagged dideoxynucleotides.


Drug Evaluation


Using information obtained by the methods of the present invention, the efficacy and stability of the drug metabolized by the drug metabolizing enzyme can be evaluated.


For example, in some embodiments, the drug can be evaluated using a typing system. In other words, the frequency of expressed and unexpressed alleles (e.g., toxic alleles that cause undesired side effects) can be compared using any one of the detection methods mentioned above. Once they have been compared, markers can be selected to indicate, for example, a toxic expression where the allele frequency differs. In statistical analysis, this is usually set as ×2. However, this is different in other methods such as the Fisher method. The active components (altered and metabolized drug components) in the drug will be reflected in blood and tissue concentrations. All of the genetic polymorphisms can be checked against the causes of the toxic effects to isolate specific correlating genetic polymorphisms. The substances corresponding to the probes or primers used to analyze all of the genetic polymorphisms are prepared beforehand on reaction plates, cards or glass plates, and unprepared human genome DNA is added and reacted to determine the allele pattern. If there are genetic polymorphisms correlating with toxicity or other phenotypes, then human side-effects can be expected or predicted. The same is true of drug effectiveness. Because the genetic polymorphisms correlating to effectiveness and side-effects differ depending on the drug, typing performed using genetic polymorphisms can be performed to anticipate effectiveness and side-effects.


Differences in allele frequency can be determined in certain instances by comparing the frequency of genetic polymorphisms to effectiveness/ineffectiveness or the presence/absence of side-effects. If, for example, an SNP analysis is performed on persons with a toxic reaction (side-effect) to Drug A, the results may show a 90% of the people have T/T (e.g., detected based on the intensity of fluorescent FAM light). The same results may show 10% of people with no toxic reaction have a T/T and 90% have a C/C. As a result of the SNP analysis, the evaluation may be not to administer Drug A to persons with T/T.


Drug Screening


In the present invention, the genetic polymorphism data obtained as described above is compared to genetic polymorphism data from genes encoding certain drug metabolizing enzymes to indicate the safety and effectiveness of drugs metabolized by these drug metabolizing enzymes. Therefore, the genetic polymorphism data obtained using the method of the present invention can be used to determine the likely effectiveness of certain drug therapies and to select the appropriate drug.


The evaluation methods described above can be used. Genetic polymorphisms with correlations to side-effects and effectiveness are said to be influenced by the activation, transfer and translation of certain enzymes. The cause and effect relationship with the side-effect or effectiveness expression mechanism may be indirect. The metabolization of drugs is being studied by pharmaceutical companies in laboratory and clinical testing. If there are genetic polymorphisms in enzyme genes correlating with severe side-effects, they can be removed and used under different conditions. The same is true of effectiveness. Drugs can be screened, therefore, using side-effects and effectiveness data. A wide variety of conditions and diseases (See e.g., Physician's Desk Reference) benefit from analysis using the systems and methods of the present invention.


In some embodiments of the present invention, a sample is taken from a subject (e.g., by a drug company) and sent to a laboratory for analysis using a detection assay. The laboratory results (e.g., detection assay test result data) is returned to the party providing the sample such that an appropriate decision can be made, including, but not limited to, development or administration of a drug to a subject.


In clinical testing (Tests I through III), the frequency of the expression of genetic polymorphisms can be studied in volunteers exhibiting certain side-effects and volunteers not exhibiting the same side-effects to a drug. In this way, novel genetic polymorphisms correlating with side-effects and effectiveness can be detected. This information can be used to screen drugs. Exemplary drugs and drug-related data and other information that find use in or with the present invention, including but are not limited to the methods and databases described herein, are described in the PHYSICIANS' DESK REFERENCE (PDR). (e.g., 2002 Edition, Medical Economics Company, Inc., Montvale, N.J.). The PDR is expressly incorporated by reference herein as if fully set forth.


EXPERIMENTAL EXAMPLES

The following examples are provided in order to demonstrate and further illustrate certain preferred embodiments and aspects of the present invention and are not to be construed as limiting the scope thereof.


Example 1
Obtaining SNP Data

(1) DNA Extraction


Blood was extracted from 48 unrelated people in the presence of EDTA. The DNA was extracted in the following way based on the method in the Genome Analysis Manual (Yusuke Nakamura ed., Springer-Verlag Tokyo).


Ten milliliters of blood was transferred to a 50 ml test tube and centrifuged for five minutes at room temperature and 3000 rpm. After the supernatant (blood serum) had been removed using a pipette, 30 ml of RBC-dissolving buffer (10 mM NH4 HCO3, 144 mM NH3Cl) was added. After mixing until there was no sediment, it was allowed to stand for 20 minutes at room temperature. After being centrifuged for five minutes at room temperature and 3000 rpm, the supernatant (blood serum) was again removed using a pipette to obtain white blood cells. Another 30 ml of RBC-dissolving buffer was added and the process was repeated twice. Then, 4 ml of proteinase K buffer [50 mM Tris-HCl (pH 7.4), 100 mM NaCl, 1 mM EDTA (pH 8.0)] was added to the white blood cells, 200 ml of SDS was added, 200 ml of 10 mg/ml proteinase K was added, and the solution was tumble-mixed. The solution was then allowed to stand overnight at 37° C. The next day, 4 ml of phenol was added, and the solution was slowly tumble-mixed for four hours using a Taitec T-50 Rotator. After being centrifuged for 10 minutes at room temperature and 3000 rpm, the supernatant was removed using a new tube. Then, 4 ml of phenol-chloroform-isoamylalcohol (volume ratio 25:24:1) was added, the solution was tumble-mixed for two hours in the manner described above, and the solution was centrifuged. The supernatant was removed using a new tube, 4 ml of chloroform-isoamylalcohol (volume ratio 24:1) was added, and the solution was tumble-mixed. Fibrous white precipitate (DNA) was removed using a 2 ml tube, 1 ml of 70% ethanol was added, and the solution was tumble-mixed. The DNA was transferred to a new tube, dried and dissolved in 500 ml of TE solution [10 mM Tris-HCl (pH 4.7), 1 mM EDTA (pH 7.4)] to obtain a genome DNA sample.


(2) PCR


A genome sequence was obtained from the GenBank DNA Database. After removing the repeating sequences using the RepMask computer program, the PCR primer was set so there would be approximately 1 kb of PCR product. The genome DNA from 48 unrelated people was prepared at the same concentration. After mixing the same amount of DNA from three people in a single tube, 60 ng was used in the PCR. The PCR was Ex-Taq (Takara 2.5 U) and performed using the GeneAmp PCR System 9700 (PE Applied Biosystems). After reacting for two hours at 94° C., denaturing was performed for 30 seconds at 96° C., annealing was performed for 30 seconds at 55° C. or 60° C., and elongation was performed for one minute at 72° C. in each cycle. There were 35 cycles.


(3) Sequence


After refining the PCR product using Arraylt (Telechem), the sequence reaction was performed using the BigDye Terminator RR Mix (PE Applied Biosystems). After reacting for two hours at 96° C., denaturing was performed for 20 seconds at 96° C., annealing was performed for 30 seconds at 50° C., and elongation was performed for 4 minutes at 60° C. in each cycle using the GeneAmp PCR System 9700 (PE Applied Biosysytems). There were 25 cycles. After the sequencing reaction, the sequencing was analyzed using the ABI Prism 3700 DNA Analyzer.


(4) SNP Detection


An analysis was performed on the SNP detection using the PolyPhred computer program (Nickerson et al., 1997, Nucleic Acid Res., 25, 2745-2751).


(5) Results


The SNP results shown in Table 1 were obtained. The analyzed drug metabolizing enzyme, the abbreviation of the enzyme, the databank (GenBank) accession number, the structure of the gene for the drug metabolizing enzyme, and the position of the SNPs are shown in FIG. 9 through FIG. 141 and FIG. 144 through 312. In FIG. 9 through FIG. 141 and FIG. 144 through 312, the exons are blank boxes or black lines in the genes denoted by the horizontal lines. The position of the SNPs is denoted above the genes with solid lines and numbers.


Example 2
Typing

Typing was performed on two different groups of patients using the INVADER assay. In FIG. 142, the x-axis (Allele 1) indicates the intensity of the FAM fluorescent light corresponding to T, and the x-axis (Allele 2) indicates the intensity of the VIC fluorescent light corresponding to C. The slanted line indicates the SNP pattern for T/T, the black circles denote the pattern for C/C, and the white circles denote the pattern for T/C. The black squares indicate the background values. The x marks indicate where the detection failed. The group of patients in the graph for panel A (top) had many C/C SNP patterns and the group of patients in the graph for panel B (bottom) had many T/T SNP patterns.


Example 3
SNP Detection

Genome DNA was extracted from five unrelated people using the method described in Example 1, and the SNPs in three different drug metabolizing enzyme genes (EPHX1, ABCB2, AANAT) were detected using the INVADER assay method. The INVADER oligonucleotides and probes were designed using base sequence No. 3 (Sequence No. 49) and No. 17 (Sequence No. 63) in the case of EPHX1, base sequence No. 4 (Sequence No. 4) and No. 11 (Sequence No. 11) in the case of ABCB2, and base sequence No. 3 (Sequence No. 561) in the case of AANAT. The positions of the SNPs are shown in Table 1.


The results are shown in Table 2.

TABLE 2EPHX1ABCB2AANATDrugNo. 3No. 17No. 4No. 11No. 3MetabolizingSeq.Seq.Seq.Seq.Seq.Enzyme GeneNo. 49No. 63No. 4No. 11No. 561SNP(T/G)(A/G)(G/T)(G/A)(T/A)Subject IT/TA/GT/TG/AT/TSubject IIT/TA/AG/GG/GT/ASubject IIIT/GA/AG/GA/AT/TSubject IVG/GA/GG/TG/GT/TSubject VT/GA/GG/TG/AT/A


As shown in Table 2, the SNPs in the drug metabolizing genes of patients can be detected and the patterns determined using the method of the present invention.


Example 4
Correlation Between SNP Genotypes and Optimal Amounts of a Medicament for Treatment Validity and Safety

In this example, validity and safety of medicaments were investigated using SNP analysis.


Thiopurine S-methyltransferase (TPMT) is an enzyme that transfers a methyl group to a sulfur atom attached to a purine ring, and is one of the major enzymes for metabolizing drugs such as the anti-cancer agents 6-mercaptopurine and 6-thioguanine, and thiopurine derivatives such as the immunosuppressive agent azathioprine. This example shows a correlation between optimal amounts of azathioprine and various combinations of the alleles at the 868th SNP of intron 3 of TPMT (Seki, et al., J Hum Genet 45(5):299 [2000], incorporated by reference herein in its entirety; Accession No. AB045146.1) (G or T alleles) and the 2682nd SNP of intron 3 (C or A alleles)(Table 3 and Table 4).

TABLE 38682682HighLowTTAA20TTAT30TTTT10GTAA02GTAT17GTTT41GGAA10GGAT01GGTT10


Optimal amounts of azathioprine were determined by adopting suppression of rejection after renal transplantation as an index. A group of patients in which the validity of treatment with 100 mg/day of azathioprine was confirmed was designated as a high dose group, and a group of patients in which side effects developed with treatment of 100 mg/day, but in which validity was confirmed with a treatment of 50 mg/day was designated as a low dose group. Table 3 indicates the number of patients having each combination of alleles, with the columns labeled “High” and “Low” representing the numbers of patients of each genotype in the high dose and the low dose groups, respectively. Side effects include leukopenia, anthema, angiitis, nausea/vomiting, anorexia, diarrhea, malaise, myalgia, arthralgia, fever, chill, and dizziness. More serious side effects include, for example, blood disorders, shock-like symptoms, infectious diseases, and hepatic disorders, and renal disorders.


Investigation of a correlation between the high dose and low dose groups and the two types of SNPs indicated above revealed that when G is present in at least one allele at the 868th SNP of intron 3 (G/G homozygous or G/T heterozygous) and A is present in at least one allele at the 2682nd SNP of intron 3 (A/A homozygous or A/T heterozygous), side effects were developed with 100 mg/day and 50 mg/day was an optimal amount for 10 out of 12 patients (low dose group), while 100 mg/day was an optimal amount for 11 out of 12 patients with other allele combinations (high dose group) (Table 4). Investigation of this combination of two SNP loci in patients enables prediction of optimal amounts of azathioprine for treatment prior to the administration of the drug, for improved validity and safety. These results indicate that the validity and safety of medicaments can be predicted using analysis of SNPs associated with medicament metabolic enzymes, e.g., as described in this specification and including but not limited to the DME-associated SNPs listed in Table 1. As used in this example only, the term “optimal amount” refers to the best dosage selected from the tested amounts of 50 mg/day or 100/mg per day. It will be appreciated by those skilled in the art that a study testing additional amounts of a medicament (e.g., a study in which amounts are varied in smaller increments, such as 40, 50, 60, 70, 80, 90, etc. mg/day) would provide additional information regarding ranges of amounts giving optimal performance for patients having a particular genotype, and that optimal amounts of this or any other medicament are not limited to the particular amounts of 50 or 100 mg/day tested in this example.

TABLE 4Optimal amountGenotype100 mg/day50 mg/dayG as the 868th SNP and A210as the 2682ndOther combinations111
(Fisher exact test: p = 0.0003)


Filed herewith on compact disk, and expressly incorporated herein by reference, is a Sequence Listing provided as a file entitled “10583.txt,” created Mar. 22, 2006, 1,416 kb in size.


Sequence Listing Free Text

SEQ ID NO:39: n indicates t (Position 21).


SEQ ID NO:64: n indicates c (Position 21).


SEQ ID NO:580: n indicates a or deletion (Position 21).


SEQ ID NO:634: n indicates a or deletion (Position 21).


SEQ ID NO:656: n indicates a or deletion (Position 21).


SEQ ID NO:658: n indicates c or deletion (Position 21).


SEQ ID NO:671: n indicates a or deletion (Position 21).


SEQ ID NO:672: n indicates g or deletion (Position 21).


SEQ ID NO:673: n indicates c or deletion (Position 21).


SEQ ID NO:674: n indicates (cctgy)x or deletion (Position 21).


SEQ ID NO:676: n indicates gaa or deletion (Position 21).


SEQ ID NO:677: n indicates ag or deletion (Position 21).


SEQ ID NO:785: n indicates ta. (Position 21).


SEQ ID NO:797: n indicates acac. (Position 21).


SEQ ID NO:806: n indicates gatttgtggtatccag. (Position 21).


SEQ ID NO:808: n indicates ag or deletion (Position 21).


SEQ ID NO:809: n indicates ta or deletion (Position 21).


SEQ ID NO:815: n indicates t (Position 21).


SEQ ID NO:828: n indicates cagaggct (Position 21).


SEQ ID NO:830: n indicates ca or deletion (Position 21).


SEQ ID NO:831: n indicates ag or deletion (Position 21).


SEQ ID NO:843: n indicates gtaaa (Position 21).


SEQ ID NO:845: n indicates a (Position 21).


SEQ ID NO:888: n indicates tc (Position 21).


SEQ ID NO:890: n indicates t or deletion (Position 21).


SEQ ID NO:913: n indicates t or deletion (Position 21).


SEQ ID NO:932: n indicates t or deletion (Position 21).


SEQ ID NO:933: n indicates t or deletion (Position 21).


SEQ ID NO:955: n indicates at or deletion (Position 21).


SEQ ID NO:956: n indicates a or deletion (Position 21).


SEQ ID NO:957: n indicates c or deletion (Position 21).


SEQ ID NO:987: n indicates c (Position 21).


SEQ ID NO:999: n indicates gtt or deletion (Position 21).


SEQ ID NO:1164: n indicates at (Position 21).


SEQ ID NO:1166: n indicates c or deletion (Position 21).


SEQ ID NO:1167: n indicates t or deletion (Position 21).


SEQ ID NO:1168: n indicates t or deletion (Position 21).


SEQ ID NO:1169: n indicates g (Position 21).


SEQ ID NO:1171: n indicates c (Position 21).


SEQ ID NO:1173: n indicates t (Position 21).


SEQ ID NO:1175: n indicates c or deletion (Position 21).


SEQ ID NO:1200: n indicates a or deletion (Position 21).


SEQ ID NO:1204: n indicates a (Position 21).


SEQ ID NO:1207: n indicates tt (Position 21).


SEQ ID NO:1210: n indicates at (Position 21).


SEQ ID NO:1245: n indicates t (Position 21).


SEQ ID NO:1248: n indicates t or deletion (Position 21).


SEQ ID NO:1249: n indicates t (Position 21).


SEQ ID NO:1251: n indicates a or deletion (Position 21).


SEQ ID NO:1252: n indicates tgt or deletion (Position 21).


SEQ ID NO:1260: n indicates t or deletion (Position 21).


SEQ ID NO:1309: n indicates a or deletion (Position 21).


SEQ ID NO:1389: n indicates g or deletion (Position 21).


SEQ ID NO:1411: n indicates a or deletion (Position 21).


SEQ ID NO:1417: n indicates aaag (Position 21).


SEQ ID NO:1424: n indicates gtg or deletion (Position 21).


SEQ ID NO:1426: n indicates gg or tggtggggtgga (Position 21).


SEQ ID NO:1429: n indicates at or deletion (Position 21).


SEQ ID NO:1436: n indicates a (Position 21).


SEQ ID NO:1453: n indicates c or deletion (Position 21).


SEQ ID NO:1456: n indicates gg (Position 21).


SEQ ID NO:1465: n indicates gtc or deletion (Position 21).


SEQ ID NO:1487: n indicates t or deletion (Position 21).


SEQ ID NO:1494: n indicates tt (Position 21).


SEQ ID NO:1497: n indicates t repeated 9 to 12 times (Position 21).


SEQ ID NO:1499: n indicates a or deletion (Position 21).


SEQ ID NO:1501: n indicates a repeated 10 to 13 times (Position 21).


SEQ ID NO:1504: n indicates ct or deletion (Position 21).


SEQ ID NO:1507: n indicates cagatcttcttcagctaatttagaaatgt (Position 21).


SEQ ID NO:1533: n indicates a or deletion (Position 21).


SEQ ID NO:1540: n indicates c (Position 21).


SEQ ID NO:1545: n indicates t (Position 21).


SEQ ID NO:1552: n indicates t repeated 9 to 12 times (Position 21).


SEQ ID NO:1555: n indicates t (Position 21).


SEQ ID NO:1557: n indicates aaaaaaagaaaa (Position 21).


SEQ ID NO:1558: n indicates aaaaaaaaaaaa (Position 21).


SEQ ID NO:1559: n indicates aaaaaaaaaa (Position 21).


SEQ ID NO:1563: n indicates t or deletion (Position 21).


SEQ ID NO:1572: n indicates c (Position 21).


SEQ ID NO:1574: n indicates a or deletion (Position 21).


SEQ ID NO:1575: n indicates c or deletion (Position 21).


SEQ ID NO:1596: n indicates cct or deletion (Position 21).


SEQ ID NO:1598: n indicates tc (Position 21).


SEQ ID NO:1616: n indicates ca or deletion (Position 21).


SEQ ID NO:1638: n indicates g (Position 21).


SEQ ID NO:1661: n indicates t or deletion (Position 21).


SEQ ID NO:1690: n indicates gccag (Position 21).


SEQ ID NO:1718: n indicates t (Position 21).


SEQ ID NO:1723: n indicates c or deletion (Position 21).


SEQ ID NO:1729: n indicates tc or deletion (Position 21).


SEQ ID NO:1740: n indicates ct or deletion (Position 21).


SEQ ID NO:1771: n indicates a (Position 21).


SEQ ID NO:1781: n indicates a or deletion (Position 21).


SEQ ID NO:1787: n indicates t or deletion (Position 21).


SEQ ID NO:1791: n indicates t or deletion (Position 21).


SEQ ID NO:1792: n indicates g or deletion (Position 21).


SEQ ID NO:1800: n indicates t or deletion (Position 21).


SEQ ID NO:1801: n indicates t or deletion (Position 21).


SEQ ID NO:1802: n indicates a or deletion (Position 21).


SEQ ID NO:1815: n indicates a or deletion (Position 21).


SEQ ID NO:1819: n indicates ca or deletion (Position 21).


SEQ ID NO:1820: n indicates t or deletion (Position 21).


SEQ ID NO:1824: n indicates t or deletion (Position 21).


SEQ ID NO:1829: n indicates t or deletion (Position 21).


SEQ ID NO:1830: n indicates c or deletion (Position 21).


SEQ ID NO:1838: n indicates a or deletion (Position 21).


SEQ ID NO:1840: n indicates t or deletion (Position 21).


SEQ ID NO:1847: n indicates gatt or deletion (Position 21).


SEQ ID NO:1848: n indicates t (Position 21).


SEQ ID NO:1853: n indicates t or deletion (Position 21).


SEQ ID NO:1854: n indicates gt (Position 21).


SEQ ID NO:1857: n indicates a or deletion (Position 21).


SEQ ID NO:1858: n indicates a or deletion (Position 21).


SEQ ID NO:1862: n indicates t or deletion (Position 21).


SEQ ID NO:1865: n indicates at or deletion (Position 21).


SEQ ID NO:1871: n indicates a or deletion (Position 21).


SEQ ID NO:1874: n indicates t or deletion (Position 21).


SEQ ID NO:1877: n indicates at or deletion (Position 21).


SEQ ID NO:1878: n indicates a or deletion (Position 21).


SEQ ID NO:1879: n indicates t repeated 12 to 14 times (Position 21).


SEQ ID NO:1882: n indicates t or deletion (Position 21).


SEQ ID NO:1884: n indicates cac or deletion (Position 21).


SEQ ID NO:1891: n indicates cca (Position 21).


SEQ ID NO:1919: n indicates t or deletion (Position 21).


SEQ ID NO:1949: n indicates c or deletion (Position 21).


SEQ ID NO:1957: n indicates aaaa or deletion (Position 21).


SEQ ID NO:1970: n indicates c or deletion (Position 21).


SEQ ID NO:1980: n indicates t repeated 7 to 9 times (Position 21).


SEQ ID NO:1981: n indicates a or deletion (Position 21).


SEQ ID NO:1993: n indicates taac or deletion (Position 21).


SEQ ID NO:1994: n indicates ctcttt (Position 21).


SEQ ID NO:1995: n indicates ct (Position 21).


SEQ ID NO:2002: n indicates a or deletion (Position 21).


SEQ ID NO:2005: n indicates t or deletion (Position 21).


SEQ ID NO:2008: n indicates g or deletion (Position 21).


SEQ ID NO:2011: n indicates aattagaa or deletion (Position 21).


SEQ ID NO:2012: n indicates tttaaaa or ttttaa (Position 21).


SEQ ID NO:2015: n indicates t or deletion (Position 21).


SEQ ID NO:2020: n indicates t or deletion (Position 21).


SEQ ID NO:2024: n indicates g or deletion (Position 21).


SEQ ID NO:2025: n indicates t or deletion (Position 21).


SEQ ID NO:2030: n indicates aaa or deletion (Position 21).


SEQ ID NO:2031: n indicates a or deletion (Position 21).


SEQ ID NO:2042: n indicates c (Position 21).


SEQ ID NO:2072: n indicates a or deletion (Position 21).


SEQ ID NO:2074: n indicates a or deletion (Position 21).


SEQ ID NO:2243: n indicates tca repeated 14 to 16 times (Position 21).


SEQ ID NO:2244: n indicates a repeated 8 to 10 times (Position 21).


SEQ ID NO:2245: n indicates cacagtcat or deletion (Position 21).


SEQ ID NO:2246: n indicates tt or deletion (Position 21).


SEQ ID NO:2247: n indicates a repeated 10 to 12 times (Position 21).


SEQ ID NO:2248: n indicates c or deletion (Position 21).


SEQ ID NO:2249: n indicates a repeated 16 to 18 times (Position 21).


SEQ ID NO:2250: n indicates g (Position 21).


SEQ ID NO:2252: n indicates c or deletion (Position 21).


SEQ ID NO:2253: n indicates t or deletion (Position 21).


SEQ ID NO:2254: n indicates a or deletion (Position 21).


SEQ ID NO:2255: n indicates tg (Position 21).


SEQ ID NO:2257: n indicates t repeated 10 to 13 (Position 21).


SEQ ID NO:2258: n indicates gt repeated 11 to 13 times (Position 21).


SEQ ID NO:2259: n indicates a or deletion (Position 21).


SEQ ID NO:2260: n indicates g or deletion (Position 21).


SEQ ID NO:2261: n indicates g or deletion (Position 21).


SEQ ID NO:2262: n indicates t repeated 9 to 11 times (Position 21).


SEQ ID NO:2263: n indicates g (Position 21).


SEQ ID NO:2265: n indicates tt or deletion (Position 21).


SEQ ID NO:2266: n indicates a repeated 7 to 9 times (Position 21).


SEQ ID NO:2267: n indicates t repeated 9 to 11 times (Position 21).


SEQ ID NO:2268: n indicates a repeated 9 to 10 times (Position 21).


SEQ ID NO:2269: n indicates gt or deletion (Position 21).


SEQ ID NO:2270: n indicates a or deletion (Position 21).


SEQ ID NO:2271: n indicates t (Position 21).


SEQ ID NO:2273: n indicates a or deletion (Position 21).


SEQ ID NO:2274: n indicates ct or deletion (Position 21).


SEQ ID NO:2275: n indicates g or deletion (Position 21).


SEQ ID NO:2276: n indicates a or deletion (Position 21).


SEQ ID NO:2277: n indicates a or deletion (Position 21).


SEQ ID NO:2278: n indicates a or deletion (Position 21).


SEQ ID NO:2279: n indicates c or deletion (Position 21).


SEQ ID NO:2280: n indicates aaag or deletion (Position 21).


SEQ ID NO:2348: n indicates t repeated 22 to 26 times (Position 21).


SEQ ID NO:2349: n indicates g repeated 8 to 10 times (Position 21).


SEQ ID NO:2350: n indicates c repeated 6 to 7 times (Position 21).


SEQ ID NO:2351: n indicates a repeated 12 to 14 times (Position 21).


SEQ ID NO:2427: n indicates caccaggcagcagactctgatgaggaggggagggg (Position 21).


SEQ ID NO:2429: n indicates g (Position 21).


SEQ ID NO:2474: n indicates tcac or deletion (Position 21).


SEQ ID NO:2475: n indicates t or deletion (Position 21).


SEQ ID NO:2476: n indicates t repeated 9 to 11 times (Position 21).


SEQ ID NO:2477: n indicates a repeated 7 to 8 times (Position 21).


SEQ ID NO:2495: n indicates t repeated 13 to 16 times (Position 21).


SEQ ID NO:2496: n indicates t repeated 9 to 10 times (Position 21).


SEQ ID NO:2497: n indicates t repeated 14 to 16 times (Position 21).


SEQ ID NO:2498: n indicates t repeated 13 to 17 times (Position 21).


SEQ ID NO:2499: n indicates t (Position 21).


SEQ ID NO:2501: n indicates a repeated 8 to 9 times (Position 21).


SEQ ID NO:2502: n indicates t repeated 8 to 9 times (Position 21).


SEQ ID NO:2503: n indicates gcagtattactgtagt or deletion (Position 21).


SEQ ID NO:2504: n indicates t repeated 13 to 14 times (Position 21).


SEQ ID NO:2505: n indicates t repeated 9 to 10 times (Position 21).


SEQ ID NO:2506: n indicates t repeated 10 to 11 times (Position 21).


SEQ ID NO:2524: n indicates t or deletion (Position 21).


SEQ ID NO:2525: n indicates t repeated 12 to 15 times (Position 21).


SEQ ID NO:2586: n indicates a or deletion (Position 21).


SEQ ID NO:2587: n indicates at or deletion (Position 21).


SEQ ID NO:2594: n indicates t or deletion (Position 21).


SEQ ID NO:2595: n indicates ttc or deletion (Position 21).


SEQ ID NO:2606: n indicates ctt (Position 21).


SEQ ID NO:2651: n indicates c repeated 9 to 11 times (Position 21).


SEQ ID NO:2652: n indicates a repeated 15 to 21 times (Position 21).


SEQ ID NO:2653: n indicates ggggtggcggggtggg or deletion (Position 21).


SEQ ID NO:2654: n indicates t or deletion (Position 21).


SEQ ID NO:2655: n indicates a (Position 21).


SEQ ID NO:2657: n indicates a or deletion (Position 21).


SEQ ID NO:2658: n indicates t repeated 10 to 12 times (Position 21).


SEQ ID NO:2659: n indicates tt (Position 21).


SEQ ID NO:2661: n indicates tccctccttgaagctgatcgt or deletion (Position 21).


SEQ ID NO:2662: n indicates ca repeated 12 to 18 times (Position 21).


SEQ ID NO:2685: n indicates a repeated 18 to 20 times (Position 21).


SEQ ID NO:2686: n indicates aa (Position 21).


SEQ ID NO:2688: n indicates t or deletion (Position 21).


SEQ ID NO:2689: n indicates t repeated 9 to 13 times (Position 21).


SEQ ID NO:2690: n indicates aa or deletion (Position 21).


SEQ ID NO:2691: n indicates ttgaca or gtccaatat (Position 21).


SEQ ID NO:2692: n indicates cta or deletion (Position 21).


SEQ ID NO:2693: n indicates t repeated 9 to 10 times (Position 21).


SEQ ID NO:2694: n indicates gagatgttgtggctcacat (Position 21).


SEQ ID NO:2696: n indicates cc or deletion (Position 21).


SEQ ID NO:2697: n indicates act or deletion (Position 21).


SEQ ID NO:2755: n indicates tat or deletion (Position 21).


SEQ ID NO:2756: n indicates ac repeated 14 to 17 times (Position 21).


SEQ ID NO:2757: n indicates a repeated 16 to 27 times (Position 21).


SEQ ID NO:2758: n indicates t or deletion (Position 21).


SEQ ID NO:2759: n indicates a repeated 8 to 10 times (Position 21).


SEQ ID NO:2760: n indicates gt repeated 9 to 11 times (Position 21).


SEQ ID NO:2761: n indicates aa or deletion (Position 21).


SEQ ID NO:2762: n indicates t or deletion (Position 21).


SEQ ID NO:2763: n indicates ac repeated 8 to 12 times (Position 21).


SEQ ID NO:2764: n indicates a or deletion (Position 21).


SEQ ID NO:2810: n indicates a (Position 21).


SEQ ID NO:2812: n indicates aa or deletion (Position 21).


SEQ ID NO:2813: n indicates ca or deletion (Position 21).


SEQ ID NO:2814: n indicates t or deletion (Position 21).


SEQ ID NO:2815: n indicates tgtgtg or deletion (Position 21).


SEQ ID NO:2912: n indicates a (Position 21).


SEQ ID NO:2914: n indicates g (Position 21).


SEQ ID NO:2916: n indicates actt or deletion (Position 21).


SEQ ID NO:2917: n indicates ttta or deletion (Position 21).


SEQ ID NO:2918: n indicates a repeated 11 to 13 times (Position 21).


SEQ ID NO:2919: n indicates t repeated 8 to 10 times (Position 21).


SEQ ID NO:2920: n indicates a repeated 12 to 14 times (Position 21).


SEQ ID NO:2921: n indicates cttgta or deletion (Position 21).


SEQ ID NO:2922: n indicates a repeated 9 to 10 times (Position 21).


SEQ ID NO:2923: n indicates ctt or deletion (Position 21).


SEQ ID NO:2924: n indicates ctt (Position 21).


SEQ ID NO:2926: n indicates a or deletion (Position 21).


SEQ ID NO:2927: n indicates a repeated 9 to 11 times (Position 21).


SEQ ID NO:2928: n indicates tgt or deletion (Position 21).


SEQ ID NO:2929: n indicates a repeated 24 to 27 times (Position 21).


SEQ ID NO:2930: n indicates ta repeated 10 to 21 times (Position 21).


SEQ ID NO:2931: n indicates a repeated 8 to 10 times (Position 21).


SEQ ID NO:2932: n indicates a repeated 11 to 13 times (Position 21).


SEQ ID NO:2933: n indicates a repeated 8 to 10 times (Position 21).


SEQ ID NO:2999: n indicates tatc or deletion (Position 21).


SEQ ID NO:3000: n indicates atattcacttggtatctg or deletion (Position 21).


SEQ ID NO:3001: n indicates ttta or deletion (Position 21).


SEQ ID NO:3002: n indicates t (Position 21).


SEQ ID NO:3004: n indicates g or deletion (Position 21).


SEQ ID NO:3005: n indicates a or deletion (Position 21).


SEQ ID NO:3006: n indicates a repeated 9 to 11 times (Position 21).


SEQ ID NO:3007: n indicates g or deletion (Position 21).


SEQ ID NO:3008: n indicates at repeated 4 to 5 times (Position 21).


SEQ ID NO:3009: n indicates t repeated 7 to 8 times (Position 21).


SEQ ID NO:3010: n indicates t repeated 19 to 23 times (Position 21).


SEQ ID NO:3011: n indicates t or deletion (Position 21).


SEQ ID NO:3012: n indicates tgat or deletion (Position 21).


SEQ ID NO:3013: n indicates t repeated 8 to 10 times (Position 21).


SEQ ID NO:3014: n indicates a or deletion (Position 21).


SEQ ID NO:3021: n indicates a repeated 13 to 15 times (Position 21).


SEQ ID NO:3022: n indicates t repeated 12 to 15 times (Position 21).


SEQ ID NO:3042: n indicates g (Position 21).


SEQ ID NO:3044: n indicates a or deletion (Position 21).


SEQ ID NO:3046: n indicates g or deletion (Position 21).


SEQ ID NO:3047: n indicates t repeated 11 to 13 times (Position 21).


SEQ ID NO:3049: n indicates a or deletion (Position 21).


SEQ ID NO:3051: n indicates t repeated 9 to 11 times (Position 21).


SEQ ID NO:3054: n indicates t or deletion (Position 21).


SEQ ID NO:3056: n indicates t or deletion (Position 21).


SEQ ID NO:3060: n indicates t or deletion (Position 21).


SEQ ID NO:3065: n indicates aaga (Position 21).


SEQ ID NO:3069: n indicates aaaa or deletion (Position 21).


SEQ ID NO:3073: n indicates t repeated 9 to 11 times (Position 21).


SEQ ID NO:3081: n indicates a or deletion (Position 21).


SEQ ID NO:3103: n indicates t repeated 11 to 13 times (Position 21).


SEQ ID NO:3119: n indicates acta (Position 21).


SEQ ID NO:3125: n indicates gtg or deletion (Position 21).


SEQ ID NO:3130: n indicates t repeated 11 to 12 times (Position 21).


SEQ ID NO:3140: n indicates tta or deletion (Position 21).


SEQ ID NO:3154: n indicates g (Position 21).


SEQ ID NO:3156: n indicates a (Position 21).


SEQ ID NO:3158: n indicates cct or deletion (Position 21).


SEQ ID NO:3169: n indicates gga or deletion (Position 21).


SEQ ID NO:3179: n indicates t repeated 12 to 14 times (Position 21).


SEQ IUD NO:3184: n indicates t repeated 16 to 17 times (Position 21).


SEQ ID NO:3196: n indicates g (Position 21).


SEQ ID NO:3273: n indicates ag (Position 21).


SEQ ID NO:3306: n indicates g (Position 21).


SEQ ID NO:3310: n indicates c (Position 21).


SEQ ID NO:3315: n indicates ct or deletion (Position 21).


SEQ ID NO:3317: n indicates gc or deletion (Position 21).


SEQ ID NO:3352: n indicates t repeated 9 to 11 times (Position 21).


SEQ ID NO:3355: n indicates a (Position 21).


SEQ ID NO:3358: n indicates t or deletion (Position 21).


SEQ ID NO: 3510: n represents at or deletion (Location 21).


SEQ ID NO: 3512: n represents c or deletion (Location 21).


SEQ ID NO: 3513: n represents t or deletion (Location 21).


SEQ ID NO:3514: n represents t or deletion (Location 21).


SEQ ID NO:3515: n represents g or deletion (Location 21).


SEQ ID NO:3517: n represents c or deletion (Location 21).


SEQ ID NO:3519: n represents t or deletion (Location 21).


SEQ ID NO:3521: n represents c or deletion (Location 21).


SEQ ID NO:3649: n represents 14 to 16 repeats of tca (from Location 21).


SEQ ID NO:3650: n represents 8 to 10 repeats of a (from Location 21).


SEQ ID NO:3651: n represents cacagtcat or deletion (Location 21).


SEQ ID NO:3652: n represents tt or deletion (Location 21).


SEQ ID NO:3653: n represents 10 to 12 repeats of a (from Location 21).


SEQ ID NO:3654: n represents c or deletion (Location 21).


SEQ ID NO:3655: n represents 16 to 18 repeats of a (from Location 21).


SEQ ID NO:3656: n represents g or deletion (Location 21).


SEQ ID NO:3658: n represents c or deletion (Location 21).


SEQ ID NO:3659: n represents t or deletion (Location 21).


SEQ ID NO:3660: n represents a or deletion (Location 21).


SEQ ID NO:3661: n represents tg or deletion (Location 21).


SEQ ID NO:3663: n represents 10 to 13 repeats oft (from Location 21).


SEQ ID NO:3664: n represents 11 to 13 repeats of gt (from Location 21).


SEQ ID NO:3665: n represents a or deletion (Location 21).


SEQ ID NO:3666: n represents g or deletion (Location 21).


SEQ ID NO:3667: n represents g or deletion (Location 21).


SEQ ID NO:3668: n represents 9 to 11 repeats of t (from Location 21).


SEQ ID NO:3669: n represents g or deletion (Location 21).


SEQ ID NO:3671: n represents tt or deletion (Location 21).


SEQ ID NO:3672: n represents 7 to 9 repeats of a (from Location 21).


SEQ ID NO:3673: n represents 9 to 11 repeats of t (from Location 21).


SEQ ID NO:3674: n represents 9 to 10 repeats of a (from Location 21).


SEQ ID NO:3675: n represents gt or deletion (Location 21).


SEQ ID NO:3676: n represents a or deletion (Location 21).


SEQ ID NO:3677: n represents t or deletion (Location 21).


SEQ ID NO:3679: n represents a or deletion (Location 21).


SEQ ID NO:3680: n represents ct or deletion (Location 21).


SEQ ID NO:3681: n represents g or deletion (Location 21).


SEQ ID NO:3682: n represents a or deletion (Location 21).


SEQ ID NO:3683: n represents a or deletion (Location 21).


SEQ ID NO:3684: n represents a or deletion (Location 21).


SEQ ID NO:3685: n represents c or deletion (Location 21).


SEQ ID NO:3686: n represents aaag or deletion (Location 21).


SEQ ID NO:3751: n represents 22 to 26 repeats oft (from Location 21).


SEQ ID NO:3752: n represents 8 to 10 repeats of g (from Location 21).


SEQ ID NO:3753: n represents 6 to 7 repeats of c (from Location 21).


SEQ ID NO:3754: n represents 12 to 14 repeats of a (from Location 21).


SEQ ID NO:3833: n represents tt or deletion (Location 21).


SEQ ID NO:3834: n represents 9 to 11 repeats of a (from Location 21).


SEQ ID NO:3835: n represents 8 to 12 repeats of a (from Location 21).


SEQ ID NO:3836: n represents t or deletion (Location 21).


SEQ ID NO:3837: n represents t or deletion (Location 21).


SEQ ID NO:3838: n represents t or deletion (Location 21).


SEQ ID NO:3839: n represents a or deletion (Location 21).


SEQ ID NO:3840: n represents t or deletion (Location 21).


SEQ ID NO:3841: n represents t or deletion (Location 21).


SEQ ID NO:3842: n represents 11 to 15 repeats of t (from Location 21).


SEQ ID NO:3843: n represents cat or deletion (Location 21).


SEQ ID NO:3844: n represents t or deletion (Location 21).


SEQ ID NO:3845: n represents a or deletion (Location 21).


SEQ ID NO:3846: n represents a or deletion (Location 21).


SEQ ID NO:3847: n represents t or deletion (Location 21).


SEQ ID NO:3848: n represents a or deletion (Location 21).


SEQ ID NO:3857: n represents g or deletion (Location 21).


SEQ ID NO:3879: n represents a or deletion (Location 21).


SEQ ID NO:3885: n represents aaag or deletion (Location 21).


SEQ ID NO:3915: n represents t or deletion (Location 21).


SEQ ID NO:3918: n represents a or deletion (Location 21).


SEQ ID NO:3926: n represents at or deletion (Location 21).


SEQ ID NO:3933: n represents a or deletion (Location 21).


SEQ ID NO:3950: n represents c or deletion (Location 21).


SEQ ID NO:3953: n represents gg or deletion (Location 21).


SEQ ID NO:3962: n represents gtc or deletion (Location 21).


SEQ ID NO:3984: n represents t or deletion (Location 21).


SEQ ID NO:3991: n represents tt or deletion (Location 21).


SEQ ID NO:3994: n represents 9 to 12 repeats oft (from Location 21).


SEQ ID NO:3996: n represents a or deletion (Location 21).


SEQ ID NO:3998: n represents 10 to 13 repeats of a (from Location 21).


SEQ ID NO:4001: n represents ct or deletion (Location 21).


SEQ ID NO:4004: n represents cagatcttcttcagctaatttagaaatgt or deletion (Location 21).


SEQ ID NO:4030: n represents a or deletion (Location 21).


SEQ ID NO:4037: n represents c or deletion (Location 21).


SEQ ID NO:4042: n represents t or deletion (Location 21).


SEQ ID NO:4049: n represents 9 to 12 repeats of t (from Location 21).


SEQ ID NO:4052: n represents t or deletion (Location 21).


SEQ ID NO:4054: n represents g (a)4, a (a)4 or a (Location 21).


SEQ ID NO:4058: n represents t or deletion (Location 21).


SEQ ID NO:4067: n represents c or deletion (Location 21).


SEQ ID NO:4069: n represents a or deletion (Location 21).


SEQ ID NO:4070: n represents c or deletion (Location 21).


SEQ ID NO:4077: n represents g or deletion (Location 21).


SEQ ID NO:4079: n represents 18 to 20 repeats of t (from Location 21).


SEQ ID NO:4084: n represents 11 to 13 repeats of a (from Location 21).


SEQ ID NO:4085: n represents gaaa or deletion (Location 21).


SEQ ID NO:4089: n represents 10 to 12 repeats of a (from Location 21).


SEQ ID NO:4092: n represents c or deletion (Location 21).


SEQ ID NO:4102: n represents ca or deletion (Location 21).


SEQ ID NO:4109: n represents at or deletion (Location 21).


SEQ ID NO:4113: n represents ctt or deletion (Location 21).


SEQ ID NO:4115: n represents g or deletion (Location 21).


SEQ ID NO:4117: n represents ggggct or deletion (Location 21).


SEQ ID NO:4121: n represents 19 to 22 repeats of t (from Location 21).


SEQ ID NO:4126: n represents 6 to 7 repeats of t (from Location 21).


SEQ ID NO:4129: n represents 11 to 13 repeats oft (from Location 21).


SEQ ID NO:4173: n represents 7 to 8 repeats of c (from Location 21).


SEQ ID NO:4175: n represents 10 to 12 repeats of a (from Location 21).


SEQ ID NO:4183: n represents c or deletion (Location 21).


SEQ ID NO:4188: n represents aaga or deletion (Location 21).


SEQ ID NO:4190: n represents 9 to 11 repeats of a (from Location 21).


SEQ ID NO:4193: n represents ct or deletion (Location 21).


SEQ ID NO:4198: n represents 8 to 9 repeats of t (from Location 21).


SEQ ID NO:4218: n represents g or deletion (Location 21).


SEQ ID NO:4224: n represents cttt or deletion (Location 21).


SEQ ID NO:4229: n represents t or deletion (Location 21).


SEQ ID NO:4234: n represents c or deletion (Location 21).


SEQ ID NO:4235: n represents a or deletion (Location 21).


SEQ ID NO:4238: n represents gtt or deletion (Location 21).


SEQ ID NO:4239: n represents t or deletion (Location 21).


SEQ ID NO:4259: n represents at or deletion (Location 21).


SEQ ID NO:4273: n represents g or deletion (Location 21).


SEQ ID NO:4280: n represents 15 to 17 repeats of a (from Location 21).


SEQ ID NO:4294: n represents t or deletion (Location 21).


SEQ ID NO:4298: n represents t or deletion (Location 21).


SEQ ID NO:4310: n represents t or deletion (Location 21).


SEQ ID NO:4314: n represents a or deletion (Location 21).


SEQ ID NO:4315: n represents 13 to 15 repeats oft (from Location 21).


SEQ ID NO:4316: n represents 12 to 13 repeats of a (from Location 21).


SEQ ID NO:4317: n represents t or deletion (Location 21).


SEQ ID NO:4319: n represents t or deletion (Location 21).


SEQ ID NO:4320: n represents 13 to 15 repeats of a (from Location 21).


SEQ ID NO:4325: n represents a or deletion (Location 21).


SEQ ID NO:4331: n represents 5 to 11 repeats oft (from Location 21).


SEQ ID NO:4333: n represents 8 to 9 repeats oft (from Location 21).


SEQ ID NO:4334: n represents t or deletion (Location 21).


SEQ ID NO:4345: n represents 9 to 10 repeats oft (from Location 21).


SEQ ID NO:4348: n represents 10 to 11 repeats of a (from Location 21).


SEQ ID NO:4354: n represents a or deletion (Location 21).


SEQ ID NO:4361: n represents a or deletion (Location 21).


SEQ ID NO:4372: n represents ct or deletion (Location 21).


SEQ ID NO:4391: n represents t or deletion (Location 21).


SEQ ID NO:4397: n represents a or deletion (Location 21).


SEQ ID NO:4398: n represents at or deletion (Location 21).


SEQ ID NO:4408: n represents tgtccaaaggaaggacacg or deletion (Location 21).


SEQ ID NO:4414: n represents 6 to 8 repeats of tc (from Location 21).


SEQ ID NO:4416: n represents c or deletion (Location 21).


SEQ ID NO:4419: n represents t or deletion (Location 21).


SEQ ID NO:4424: n represents t or deletion (Location 21).


SEQ ID NO:4425: n represents c or deletion (Location 21).


SEQ ID NO:4433: n represents a or deletion (Location 21).


SEQ ID NO:4435: n represents t or deletion (Location 21).


SEQ ID NO:4442: n represents 6 to 7 repeats of gatt (from Location 21).


SEQ ID NO:4443: n represents t or deletion (Location 21).


SEQ ID NO:4448: n represents t or deletion (Location 21).


SEQ ID NO:4449: n represents gt or deletion (Location 21).


SEQ ID NO:4452: n represents a or deletion (Location 21).


SEQ ID NO:4453: n represents a or deletion (Location 21).


SEQ ID NO:4457: n represents t or deletion (Location 21).


SEQ ID NO:4460: n represents at or deletion (Location 21).


SEQ ID NO:4466: n represents a or deletion (Location 21).


SEQ ID NO:4469: n represents t or deletion (Location 21).


SEQ ID NO:4472: n represents at or deletion (Location 21).


SEQ ID NO:4473: n represents a or deletion (Location 21).


SEQ ID NO:4474: n represents 12 to 14 repeats of t (from Location 21).


SEQ ID NO:4477: n represents t or deletion (Location 21).


SEQ ID NO:4479: n represents cac or deletion (Location 21).


SEQ ID NO:4486: n represents cca or deletion (Location 21).


SEQ ID NO:4514: n represents t or deletion (Location 21).


SEQ ID NO:4544: n represents c or deletion (Location 21).


SEQ ID NO:4552: n represents aaaa or deletion (Location 21).


SEQ ID NO:4565: n represents c or deletion (Location 21).


SEQ ID NO:4575: n represents 8 to 9 repeats of t (from Location 21).


SEQ ID NO:4576: n represents a or deletion (Location 21).


SEQ ID NO:4588: n represents taac or deletion (Location 21).


SEQ ID NO:4589: n represents ctcttt or deletion (Location 21).


SEQ ID NO:4590: n represents ct or deletion (Location 21).


SEQ ID NO:4597: n represents a or deletion (Location 21).


SEQ ID NO:4600: n represents t or deletion (Location 21).


SEQ ID NO:4603: n represents g or deletion (Location 21).


SEQ ID NO:4606: n represents aattagaa or deletion (Location 21).


SEQ ID NO:4607: n represents tttaaaa or ttttaa (Location 21).


SEQ ID NO:4610: n represents t or deletion (Location 21).


SEQ ID NO:4615: n represents t or deletion (Location 21).


SEQ ID NO:4627: n represents c or deletion (Location 21).


SEQ ID NO:4652: n represents 11 to 14 repeats of t (from Location 21).


SEQ ID NO:4653: n represents t or deletion (Location 21).


SEQ ID NO:4654: n represents 10 to 13 repeats of t (from Location 21).


SEQ ID NO:4655: n represents t or deletion (Location 21).


SEQ ID NO:4657: n represents t or deletion (Location 21).


SEQ ID NO:4658: n represents ta or deletion (Location 21).


SEQ ID NO:4660: n represents 13 to 15 repeats of t (from Location 21).


SEQ ID NO:4661: n represents c or deletion (Location 21).


SEQ ID NO:4662: n represents 17 to 20 repeats of a (from Location 21).


SEQ ID NO:4663: n represents 11 to 13 repeats oft (from Location 21).


SEQ ID NO:4664: n represents 8 to 9 repeats oft (from Location 21).


SEQ ID NO:4665: n represents 10 to 11 repeats of a (from Location 21).


SEQ ID NO:4666: n represents 16 to 19 repeats of a (from Location 21).


SEQ ID NO:4758: n represents g or deletion (Location 21).


SEQ ID NO:4760: n represents 6 to 7 repeats of a (from Location 21).


SEQ ID NO:4761: n represents c or deletion (Location 21).


SEQ ID NO:4763: n represents tcctcaggg or deletion (Location 21).


SEQ ID NO:4764: n represents 8 to 10 repeats of cgc (from Location 21).


SEQ ID NO:4765: n represents 10 to 12 repeats of a (from Location 21).


SEQ ID NO:4766: n represents caccaggcagcagactctgatgaggaggggaggggg or deletion (Location 21).


SEQ ID NO:4768: n represents g or deletion (Location 21).


SEQ ID NO:4808: n represents tcac or deletion (Location 21).


SEQ ID NO:4809: n represents t or deletion (Location 21).


SEQ ID NO:4810: n represents 9 to 11 repeats oft (from Location 21).


SEQ ID NO:4811: n represents 7 to 8 repeats of a (from Location 21).


SEQ ID NO:4847: n represents agg or deletion (Location 21).


SEQ ID NO:4848: n represents taacatt or deletion (Location 21).


SEQ ID NO:4849: n represents 10 to 12 repeats of a (from Location 21).


SEQ ID NO:4850: n represents 15 to 17 repeats oft (from Location 21).


SEQ ID NO:4851: n represents 11 to 13 repeats of a (from Location 21).


SEQ ID NO:4877: n represents 11 to 13 repeats of t (from Location 21).


SEQ ID NO:4878: n represents t or deletion (Location 21).


SEQ ID NO:4879: n represents t or deletion (Location 21).


SEQ ID NO:4880: n represents 10 to 12 repeats of a (from Location 21).


SEQ ID NO:4881: n represents t or deletion (Location 21)


SEQ ID NO:4883: n represents 7 to 9 repeats of c (from Location 21).


SEQ ID NO:4884: n represents a or deletion (Location 21)


SEQ ID NO:4891: n represents 13 to 16 repeats of t (from Location 21).


SEQ ID NO:4892: n represents 9 to 10 repeats of t (from Location 21).


SEQ ID NO:4893: n represents 14 to 16 repeats of t (from Location 21).


SEQ ID NO:4894: n represents 13 to 17 repeats of t (from Location 21).


SEQ ID NO:4895: n represents t or deletion (Location 21).


SEQ ID NO:4897: n represents 8 to 9 repeats of a (from Location 21).


SEQ ID NO:4898: n represents 8 to 9 repeats of t (from Location 21).


SEQ ID NO:4899: n represents gcagtattactgtagt or deletion (Location 21).


SEQ ID NO:4900: n represents 13 to 14 repeats of t (from Location 21).


SEQ ID NO:4901: n represents 9 to 10 repeats oft (from Location 21).


SEQ ID NO:4902: n represents 10 to 11 repeats oft (from Location 21).


SEQ ID NO:4907: n represents 10 to 14 repeats of a (from Location 21).


SEQ ID NO:4908: n represents 13 to 15 repeats of a (from Location 21).


SEQ ID NO:4909: n represents a or deletion (Location 21).


SEQ ID NO:4910: n represents t or deletion (Location 21).


SEQ ID NO:4918: n represents 13 to 15 repeats of a (from Location 21).


SEQ ID NO:4919: n represents 12 to 15 repeats of a (from Location 21).


SEQ ID NO:4936: n represents g or deletion (Location 21).


SEQ ID NO:4938: n represents aa or deletion (Location 21).


SEQ ID NO:4983: n represents a or deletion (Location 21).


SEQ ID NO:4985: n represents aa or deletion (Location 21).


SEQ ID NO:4986: n represents ca or deletion (Location 21).


SEQ ID NO:4987: n represents t or deletion (Location 21).


SEQ ID NO:4988: n represents tgtgtg or deletion (Location 21).


SEQ ID NO:5076: n represents a or deletion (Location 21).


SEQ ID NO:5078: n represents g or deletion (Location 21).


SEQ ID NO:5080: n represents actt or deletion (Location 21).


SEQ ID NO:5081: n represents ttta or deletion (Location 21).


SEQ ID NO:5082: n represents 11 to 13 repeats of a (from Location 21).


SEQ ID NO:5083: n represents 8 to 10 repeats of t (from Location 21).


SEQ ID NO:5084: n represents 12 to 14 repeats of a (from Location 21).


SEQ ID NO:5085: n represents cttgta or deletion (Location 21).


SEQ ID NO:5086: n represents 9 to 10 repeats of a (from Location 21).


SEQ ID NO:5087: n represents ctt or deletion (Location 21).


SEQ ID NO:5088: n represents ctt or deletion (Location 21).


SEQ ID NO:5090: n represents a or deletion (Location 21).


SEQ ID NO:5091: n represents 9 to 11 repeats of a (from Location 21)


SEQ ID NO:5092: n represents tgt or deletion (Location 21).


SEQ ID NO:5093: n represents 24 to 27 repeats of a (from Location 21)


SEQ ID NO:5094: n represents 10 to 21 repeats of ta (from Location 21)


SEQ ID NO:5095: n represents 8 to 10 repeats of a (from Location 21)


SEQ ID NO:5096: n represents 11 to 13 repeats of a (from Location 21)


SEQ ID NO:5097: n represents 8 to 10 repeats of a (from Location 21)


SEQ ID NO:5155: n represents ctat or deletion (Location 21).


SEQ ID NO:5156: n represents atattcacttggtatctg or deletion (Location 21).


SEQ ID NO:5157: n represents ttta or deletion (Location 21).


SEQ ID NO:5158: n represents t or deletion (Location 21).


SEQ ID NO:5160: n represents g or deletion (Location 21).


SEQ ID NO:5161: n represents a or deletion (Location 21).


SEQ ID NO:5162: n represents 9 to 11 repeats of a (from Location 21).


SEQ ID NO:5163: n represents g or deletion (Location 21).


SEQ ID NO:5164: n represents 4 to 5 repeats of at (from Location 21).


SEQ ID NO:5165: n represents 7 to 8 repeats of t (from Location 21).


SEQ ID NO:5166: n represents 19 to 23 repeats oft (from Location 21).


SEQ ID NO:5167: n represents t or deletion (Location 21).


SEQ ID NO:5168: n represents tgat or deletion (Location 21).


SEQ ID NO:5169: n represents 8 to 10 repeats of t (from Location 21).


SEQ ID NO:5170: n represents a or deletion (Location 21).


SEQ ID NO:5187: n represents gtg or deletion (Location 21).


SEQ ID NO:5189: n represents gg or tggtggggtgga (Location 21).


SEQ ID NO:5209: n represents acaaca or deletion (Location 21).


SEQ ID NO:5210: n represents 11 to 13 repeats oft (from Location 21).


SEQ ID NO:5212: n represents 15 to 18 repeats of ac (from Location 21).


SEQ ID NO:5218: n represents 18 to 26 repeats oft (from Location 21).


SEQ ID NO:5227: n represents tc or deletion (Location 21).


SEQ ID NO:5231: n represents 16 to 18 repeats of t (from Location 21).


SEQ ID NO:5246: n represents 18 to 20 repeats of t (from Location 21).


SEQ ID NO:5247: n represents tggtaagt or deletion (Location 21).


SEQ ID NO:5249: n represents t or deletion (Location 21).


SEQ ID NO:5255: n represents g or deletion (Location 21).


SEQ ID NO:5256: n represents g or deletion (Location 21).


SEQ ID NO:5257: n represents c or deletion (Location 21).


SEQ ID NO:5258: n represents ctct or deletion (Location 21).


SEQ ID NO:5261: n represents a or deletion (Location 21).


SEQ ID NO:5264: n represents t or deletion (Location 21).


SEQ ID NO:5271: n represents 14 to 17 repeats oft (from Location 21).


SEQ ID NO:5276: n represents 12 to 15 repeats oft (from Location 21).


SEQ ID NO:5277: n represents 10 to 13 repeats of a (from Location 21).


SEQ ID NO:5278: n represents 25 to 27 repeats of a (from Location 21).


SEQ ID NO:5299: n represents c or deletion (Location 21).


SEQ ID NO:5308: n represents 20 to 24 repeats oft (from Location 21).


SEQ ID NO:5311: n represents t or deletion (Location 21).


SEQ ID NO:5312: n represents t or deletion (Location 21).


SEQ ID NO:5314: n represents g or deletion (Location 21).


SEQ ID NO:5320: n represents 18 to 23 repeats oft (from Location 21).


SEQ ID NO:5340: n represents c or deletion (Location 21).


SEQ ID NO:5400: n represents a or deletion (Location 21).


SEQ ID NO:5404: n represents a or deletion (Location 21).


SEQ ID NO:5407: n represents tt or deletion (Location 21).


SEQ ID NO:5410: n represents at or deletion (Location 21).


SEQ ID NO:5436: n represents tgt or deletion (Location 21).


SEQ ID NO:5445: n represents t or deletion (Location 21).


SEQ ID NO:5550: n represents t or deletion (Location 21).


SEQ ID NO:5556: n represents g or deletion (Location 21).


SEQ ID NO:5557: n represents 11 to 13 repeats of t (from Location 21).


SEQ ID NO:5559: n represents a or deletion (Location 21).


SEQ ID NO:5561: n represents 9 to 11 repeats of t (from Location 21).


SEQ ID NO:5564: n represents t or deletion (Location 21).


SEQ ID NO:5566: n represents t or deletion (Location 21).


SEQ ID NO:5570: n represents t or deletion (Location 21).


SEQ ID NO:5575: n represents aaga or deletion (Location 21).


SEQ ID NO:5579: n represents aaaa or deletion (Location 21).


SEQ ID NO:5583: n represents 9 to 11 repeats of t (from Location 21).


SEQ ID NO:5591: n represents a or deletion (Location 21).


SEQ ID NO:5614: n represents 11 to 13 repeats oft (from Location 21).


SEQ ID NO:5630: n represents acta or deletion (Location 21).


SEQ ID NO:5636: n represents gtg or deletion (Location 21).


SEQ ID NO:5641: n represents 11 to 12 repeats oft (from Location 21).


SEQ ID NO:5651: n represents tta or deletion (Location 21).


SEQ ID NO:5665: n represents g or deletion (Location 21).


SEQ ID NO:5667: n represents a or deletion (Location 21).


SEQ ID NO:5669: n represents cct or deletion (Location 21).


SEQ ID NO:5680: n represents gga or deletion (Location 21).


SEQ ID NO:5690: n represents 12 to 14 repeats oft (from Location 21).


SEQ ID NO:5695: n represents 16 to 17 repeats of t (from Location 21).


SEQ ID NO:5707: n represents g or deletion (Location 21).


SEQ ID NO:5740: n represents c or deletion (Location 21).


SEQ ID NO:5800: n represents ag or deletion (Location 21).


SEQ ID NO:5806: n represents g or deletion (Location 21).


SEQ ID NO:5807: n represents a or deletion (Location 21).


SEQ ID NO:5835: n represents g or deletion (Location 21).


SEQ ID NO:5839: n represents c or deletion (Location 21).


SEQ ID NO:5844: n represents ct or deletion (Location 21).


SEQ ID NO:5846: n represents gc or deletion (Location 21).


SEQ ID NO:5849: n represents c or deletion (Location 21).


SEQ ID NO:5884: n represents c or deletion (Location 21).


SEQ ID NO:5890: n represents tc or deletion (Location 21).


SEQ ID NO:5902: n represents c or deletion (Location 21).


SEQ ID NO:5904: n represents g or deletion (Location 21).


SEQ ID NO:5917: n represents a or deletion (Location 21).


SEQ ID NO:5921: n represents ca or deletion (Location 21).


SEQ ID NO:5922: n represents t or deletion (Location 21).


SEQ ID NO:5934: n represents ct or deletion (Location 21).


SEQ ID NO:5965: n represents a or deletion (Location 21).


SEQ ID NO:5980: n represents t or deletion (Location 21).


SEQ ID NO:5981: n represents t or deletion (Location 21).


SEQ ID NO:5981: n represents 11 to 13 repeats oft (from Location 21).


SEQ ID NO:5987: n represents t or deletion (Location 21).


SEQ ID NO:5989: n represents 16 to 18 repeats of t (from Location 21).


SEQ ID NO:5991: n represents ctta or deletion (Location 21).


SEQ ID NO:5992: n represents c or deletion (Location 21).


SEQ ID NO:5994: n represents 10 to 12 repeats of a (from Location 21).


SEQ ID NO:5995: n represents gt or deletion (Location 21).


SEQ ID NO:5996: n represents a or deletion (Location 21).


SEQ ID NO:6001: n represents aatt or deletion (Location 21).


SEQ ID NO:6003: n represents t or deletion (Location 21).


SEQ ID NO:6009: n represents g or deletion (Location 21).


SEQ ID NO:6021: n represents at or deletion (Location 21).


SEQ ID NO:6027: n represents 4 to 5 repeats of caaaa (from Location 21).


SEQ ID NO:6036: n represents 9 to 10 repeats of a (from Location 21).


SEQ ID NO:6041: n represents a or deletion (Location 21).


SEQ ID NO:6047: n represents t or deletion (Location 21).


SEQ ID NO:6051: n represents t or deletion (Location 21).


SEQ ID NO:6052: n represents g or deletion (Location 21).


SEQ ID NO:6060: n represents t or deletion (Location 21).


SEQ ID NO:6061: n represents t or deletion (Location 21).


SEQ ID NO:6062: n represents a or deletion (Location 21).


SEQ ID NO:6072: n represents gaa or deletion (Location 21).


SEQ ID NO:6073: n represents ag or deletion (Location 21).


SEQ ID NO:6089: n represents 9 to 11 repeats of t (from Location 21).


SEQ ID NO:6090: n represents a or deletion (Location 21).


SEQ ID NO:6091: n represents t or deletion (Location 21).


SEQ ID NO:6173: n represents tat or deletion (Location 21).


SEQ ID NO:6174: n represents 14 to 17 repeats of ac (from Location 21).


SEQ ID NO:6175: n represents 16 to 27 repeats of a (from Location 21).


SEQ ID NO:6176: n represents t or deletion (Location 21).


SEQ ID NO:6177: n represents 8 to 10 repeats of a (from Location 21).


SEQ ID NO:6178: n represents 9 to 11 repeats of gt (from Location 21).


SEQ ID NO:6179: n represents aa or deletion (Location 21).


SEQ ID NO:6180: n represents t or deletion (Location 21).


SEQ ID NO:6181: n represents 8 to 12 repeats of ac (from Location 21).


SEQ ID NO:6182: n represents a or deletion (Location 21).


SEQ ID NO:6202: n represents agg or deletion (Location 21).


SEQ ID NO:6204: n represents 11 to 15 repeats of a (from Location 21).


SEQ ID NO:6205: n represents 11 to 14 repeats of a (from Location 21).


SEQ ID NO:6208: n represents gt or deletion (Location 21).


SEQ ID NO:6224: n represents ta or deletion (Location 21).


SEQ ID NO:6307: n represents 16 to 19 repeats of a (from Location 21).


SEQ ID NO:6308: n represents aa or deletion (Location 21).


SEQ ID NO:6310: n represents t or deletion (Location 21).


SEQ ID NO:6311: n represents 10 to 12 repeats oft (from Location 21).


SEQ ID NO:6312: n represents aa or deletion (Location 21).


SEQ ID NO:6313: n represents ttgacagtccaatat, ttgaca, gtccaatat or deletion (Location 21).


SEQ ID NO:6314: n represents cta or deletion (Location 21).


SEQ ID NO:6315: n represents a or deletion (Location 21).


SEQ ID NO:6317: n represents 9 to 11 repeats of t (From Location 21).


SEQ ID NO:6318: n represents c or deletion (Location 21).


SEQ ID NO:6320: n represents gagatgttgtggctcacat or deletion (Location 21).


SEQ ID NO:6322: n represents cc or deletion (Location 21).


SEQ ID NO:6323: n represents act or deletion (Location 21).


SEQ ID NO:6405: n represents a or deletion (Location 21).


SEQ ID NO:6415: n represents 8 to 11 repeats oft (from Location 21).


SEQ ID NO:6416: n represents 10 to 13 repeats oft (from Location 21).


SEQ ID NO:6472: n represents g or deletion (Location 21).


SEQ ID NO:6473: n represents c or deletion (Location 21).


SEQ ID NO:6554: n represents t or deletion (Location 21).


SEQ ID NO:6555: n represents 12 to 15 repeats oft (from Location 21).


SEQ ID NO:6609: n represents a or deletion (Location 21).


SEQ ID NO:6610: n represents at or deletion (Location 21).


SEQ ID NO:6725: n represents 16 repeats of cctgc or 16 repeats of cctgt (from Location 21).


SEQ ID NO:6726: n represents t or deletion (Location 21).


SEQ ID NO:6728: n represents c or deletion (Location 21).


SEQ ID NO:6739: n represents acac or deletion (Location 21).


SEQ ID NO:6748: n represents gatttgtggtatccag or deletion (Location 21).


SEQ ID NO:6750: n represents ag or deletion (Location 21).


SEQ ID NO:6751: n represents ta or deletion (Location 21).


SEQ ID NO:6757: n represents t or deletion (Location 21).


SEQ ID NO:6759: n represents 12 to 14 repeats of gt from Location 21).


SEQ ID NO:6771: n represents cagaggct or deletion (Location 21).


SEQ ID NO:6772: n represents ct or deletion (Location 21).


SEQ ID NO:6773: n represents ag or deletion (Location 21).


SEQ ID NO:6785: n represents gtaaa or deletion (Location 21).


SEQ ID NO:6786: n represents aaaaa or deletion (Location 21).


SEQ ID NO:6787: n represents a or deletion (Location 21).


SEQ ID NO:6828: n represents tc or deletion (Location 21).


SEQ ID NO:6830: n represents t or deletion (Location 21).


SEQ ID NO:6831: n represents t or deletion (Location 21).


SEQ ID NO:6832: n represents gaagaaactgttgacagttt or deletion (Location 21).


SEQ ID NO:6833: n represents cct or deletion (Location 21).


SEQ ID NO:6834: n represents tttc or deletion (Location 21).


SEQ ID NO:6835: n represents ttcttttaaaattg or deletion (Location 21).


SEQ ID NO:6837: n represents ttcaggccttt or deletion (Location 21).


SEQ ID NO:6839: n represents ggcctg or deletion (Location 21).


SEQ ID NO:6841: n represents a or deletion (Location 21).


SEQ ID NO:6870: n represents 9 to 11 repeats of c (from Location 21).


SEQ ID NO:6871: n represents 15 to 21 repeats of a (from Location 21).


SEQ ID NO:6872: n represents ggggtggcggggtggg or deletion (Location 21).


SEQ ID NO:6873: n represents t or deletion (Location 21).


SEQ ID NO:6874: n represents a or deletion (Location 21).


SEQ ID NO:6876: n represents a or deletion (Location 21).


SEQ ID NO:6877: n represents 10 to 12 repeats oft (from Location 21).


SEQ ID NO:6878: n represents tt or deletion (Location 21).


SEQ ID NO:6880: n represents tccctccttgaagctgatcgt or deletion (Location 21).


SEQ ID NO:6881: n represents 12 to 18 repeats of ca (from Location 21).


SEQ ID NO:6894: n represents gtt or deletion (Location 21).


SEQ ID NO:6897: n represents ga or deletion (Location 21).


SEQ ID NO:6921: n represents t or deletion (Location 21).


SEQ ID NO:6940: n represents t or deletion (Location 21).


SEQ ID NO:6941: n represents t or deletion (Location 21).


SEQ ID NO:6942: n represents t or deletion (Location 21).


SEQ ID NO:6965: n represents at or deletion (Location 21).


SEQ ID NO:6966: n represents a or deletion (Location 21).


SEQ if NO:6967: n represents c or deletion (Location 21).


SEQ ID NO:6997: n represents c or deletion (Location 21).


SEQ ID NO:7005: n represents t or deletion (Location 21).


SEQ ID NO:7006: n represents ttc or deletion (Location 21).


SEQ ID NO:7017: n represents ctt or deletion (Location 21).


SEQ ID NO:7049: n represents 8 to 9 repeats of a (from Location 21).


SEQ ID NO:7053: n represents 10 to 12 repeats of t (from Location 21).


SEQ ID NO:7059: n represents 22 to 25 repeats of t (from Location 21).


SEQ ID NO:7070: n represents t or deletion (Location 21).


SEQ ID NO:7073: n represents a or deletion (Location 21).


SEQ ID NO:7074: n represents a or deletion (Location 21).


SEQ ID NO:7076: n represents c or deletion (Location 21).


SEQ ID NO:7077: n represents 10 to 12 repeats oft (from Location 21).


SEQ ID NO:7078: n represents a or deletion (Location 21).


SEQ ID NO:7079: n represents 9 to 11 repeats of t (from Location 21).


SEQ ID NO:7082: n represents a or deletion (Location 21).


SEQ ID NO:7085: n represents t or deletion (Location 21).


SEQ ID NO:7089: n represents a or deletion (Location 21).


SEQ ID NO:7101: n represents a or deletion (Location 21).


SEQ ID NO:7105: n represents a or deletion (Location 21).


SEQ ID NO:7114: n represents 9 to 10 repeats of t (from Location 21).


SEQ ID NO:7115: n represents aag or deletion (Location 21).


SEQ ID NO:7117: n represents t or deletion (Location 21).


SEQ ID NO:7118: n represents t or deletion (Location 21).


SEQ ID NO:7120: n represents t or deletion (Location 21).


SEQ ID NO:7121: n represents t or deletion (Location 21).


SEQ ID NO:7123: n represents t or deletion (Location 21).


SEQ ID NO:7125: n represents a or deletion (Location 21).


SEQ ID NO:7127: n represents a or deletion (Location 21).


SEQ ID NO:7134: n represents 7 to 8 repeats of gt (from Location 21).


SEQ ID NO:7146: n represents cct or deletion (Location 21).


SEQ ID NO:7148: n represents tc or deletion (Location 21).


SEQ ID NO:7164: n represents ca or deletion (Location 21).


SEQ ID NO:7186: n represents g or deletion (Location 21).


SEQ ID NO:7209: n represents t or deletion (Location 21).


SEQ ID NO:7238: n represents gccag or deletion (Location 21).


SEQ ID NO:7278: n represents a or deletion (Location 21).


SEQ ID NO:7281: n represents g or deletion (Location 21).


SEQ ID NO:7282: n represents t or deletion (Location 21).


SEQ ID NO:7287: n represents aaa or deletion (Location 21).


SEQ ID NO:7288: n represents a or deletion (Location 21).


SEQ ID NO:7299: n represents c or deletion (Location 21).


SEQ ID NO:7329: n represents 17 to 19 repeats of a (from Location 21).


SEQ ID NO:7332: n represents 16 to 18 repeats of a (from Location 21).


SEQ ID NO:7333: n represents 4 to 6 repeats of ga (from Location 21).


SEQ ID NO:7346: n represents a or deletion (Location 21).


SEQ ID NO:7375: n represents 2 to 3 repeats of tc (from Location 21).


SEQ ID NO:7381: n represents 6 to 7 repeats of a (from Location 21).


SEQ ID NO:7383: n represents 13 to 15 repeats of a (from Location 21).


SEQ ID NO:7385: n represents 9 to 10 repeats oft (from Location 21).


SEQ ID NO:7387: n represents 11 to 14 repeats of a (from Location 21).


SEQ ID NO:7389: n represents 14 to 17 repeats oft (from Location 21).


SEQ ID NO:7390: n represents 8 to 9 repeats of a (from Location 21).


SEQ ID NO:7397: n represents g or deletion (Location 21).


SEQ ID NO:7417: n represents 14 to 17 repeats oft (from Location 21).


SEQ ID NO:7421: n represents 7 to 9 repeats of g (from Location 21).


SEQ ID NO:7426: n represents 9 to 10 repeats of a (from Location 21).


SEQ ID NO:7434: n represents 9 to 10 repeats of a (from Location 21).


SEQ ID NO:7436: n represents 6 to 7 repeats of g (from Location 21).


SEQ ID NO:7443: n represents g or deletion (Location 21).


SEQ ID NO:7458: n represents 8 to 9 repeats of a (from Location 21).


SEQ ID NO:7461: n represents 4 to 6 repeats of c (from Location 21).


SEQ ID NO:7483: n represents ggcgaaggcggcggc or deletion (Location 21).


SEQ ID NO:7485: n represents ata or deletion (Location 21).


SEQ ID NO:7488: n represents 11 to 12 repeats of t (from Location 21).


SEQ ID NO:7489: n represents 12 to 14 repeats of t (from Location 21).


SEQ ID NO:7493: n represents 9 to 10 repeats oft (from Location 21).


SEQ ID NO:7495: n represents 6 to 7 repeats of ta (from Location 21).


SEQ ID NO:7497: n represents tgtatacgtatacatacgtatacatatatacatacgtatata or deletion (Location 21).


SEQ ID NO:7503: n represents attt or deletion (Location 21).


SEQ ID NO:7510: n represents cct or deletion (Location 21).


SEQ ID NO:7519: n represents tgtt or deletion (Location 21).


SEQ ID NO:7520: n represents a or deletion (Location 21).


SEQ ID NO:7531: n represents 9 to 10 repeats of t (from Location 21).


SEQ ID NO:7538: n represents a or deletion (Location 21).


SEQ ID NO:7566: n represents a or deletion (Location 21).


SEQ ID NO:7615: n represents a or deletion (Location 21).


SEQ ID NO:7649: n represents gtg or deletion (Location 21).


SEQ ID NO:7651: n represents gg or tggtggggtgga (Location 21).


SEQ ID NO:7667: n represents ct or deletion (Location 21).


All publications and patents mentioned in the above specification are herein incorporated by reference. Various modifications and variations of the described method and system of the invention will be apparent to those skilled in the art without departing from the scope and spirit of the invention. Although the invention has been described in connection with specific preferred embodiments, it should be understood that the invention as claimed should not be unduly limited to such specific embodiments. Indeed, various modifications of the described modes for carrying out the invention which are obvious to those skilled in the relevant fields are intended to be within the scope of the following claims.

Claims
  • 1. A method of genotyping a subject, comprising; a. providing nucleic acid from a subject; and b. detecting the presence of at least one polymorphism in said nucleic acid, said at least one polymorphism selected from the group consisting of polymorphisms found in SEQ ID NOs:1-7669.
  • 2. The method of claim 1, further comprising step c) providing a prognosis to said subject based on the presence or absence of said at least one polymorphism.
  • 3. The method of claim 2, wherein said prognosis comprises a genotype relative risk.
  • 4. The method of claim 2, wherein said prognosis comprises a population attributable risk.
  • 5. The method of claim 1, wherein said detecting step comprises use of a hybridization assay.
  • 6. The method of claim 1, wherein said detecting step comprises use of a TAQMAN assay.
  • 7. The method of claim 1, wherein said detecting step comprises use of an invasive cleavage assay.
  • 8. The method of claim 1, wherein said detecting step comprises use of mass spectroscopy.
  • 9. The method of claim 5, wherein said hybridization assay is selected from the group consisting of a microarray assay or a bead array assay.
  • 10. The method of claim 1, wherein said detecting step comprises use of a polymerase chain reaction.
  • 11. The method of claim 1, wherein said detecting step comprises use of a rolling circle extension assay.
  • 12. The method of claim 1, wherein said detecting step comprises use of a hybridization assay employing a probe complementary to a polymorphism.
  • 13. The method of claim 1, wherein said detecting step comprises use of a primer extension assay.
  • 14. The method of claim 1, wherein said detecting step comprises use of an enzyme mismatch cleavage assay.
  • 15. The method of claim 1, wherein said detecting step comprises use of a branched hybridization assay.
  • 16. The method of claim 1, wherein said detecting step comprises use of a NASBA assay.
  • 17. The method of claim 1, wherein said detecting step comprises use of a molecular beacon assay.
  • 18. The method of claim 1, wherein said detecting step comprises use of a cycling probe assay.
  • 19. The method of claim 1, wherein said detecting step comprises use of a ligase chain reaction assay.
  • 20. The method of claim 1, wherein said detection step comprises use of a sandwich hybridization assay.
Priority Claims (5)
Number Date Country Kind
2000-399,443 Dec 2000 JP national
2001-135,256 May 2001 JP national
2001-256,862 Aug 2001 JP national
2001-395196 Dec 2001 JP national
PCT/JP01/11592 Dec 2001 WO international
Parent Case Info

The present application is a Divisional of application Ser. No. 10/035,833 filed Dec. 27, 2001, which claims priority to Japanese Patent Application Ser. Nos. 2000-399,443 filed Dec. 27, 2000, 2001-135,256 filed May 2, 2001, 2001-256,862 filed Aug. 27, 2001, and 2001-395,196, filed Dec. 26, 2001, each of which was filed with the Commissioner of the Japanese Patent Office. Right of priority under 35 U.S.C. 119 is claimed from these Japanese patent applications under the Paris Convention for the Protection of Industrial Property. The present invention also claims priority to PCT application PCT/JP01/11592, filed Dec. 27, 2001 in the Japanese receiving office. Each of these applications are herein incorporated by reference in their entireties.

Divisions (1)
Number Date Country
Parent 10035833 Dec 2001 US
Child 11387074 Mar 2006 US