Akashi et al., “New Aspects of Polymer Drugs”, Adv. Polym. Sci., 1990, 97, 108-146. |
Almarsson, O. et al., “Molecular Mechanics Calculations of the Structures of Polyamide Nucleic Acid DNA Duplexes and Triple Helical Hybrids”, Proc. Natl. Acad. Sci. USA, 1993, 90, 7518-7522. |
Almarsson O. et al., “Peptide Nucleic Acid (PNA) Conformation and Polymorphism in PNA-DNA and PNA-RNA Hybrids”, Proc. Natl. Acad. Sci. USA, 1993, 90, 9542-9546. |
Brady et al., “Large-Scale Synthesis of a Cyclic Hexapeptide Analogue of Somatostatin”, J. Org. Chem., 1987, 52, 764-769. |
Brown, S.C. et al., “NMR Solution Structure of a Peptide Nucleic Acid Complexed with RNA”, Science, 1994, 265, 777-780. |
Buttrey et al., “The Resolution of DL-β-(Thymin-1-YL)Alanine and Polymerisation of the β-(Thymin-1-YL) Alanines”, Tetrahedron, 1975, 31, 73-75. |
Chen, S. et al., “Molecular Dynamics and NMR Studies of Single-Stranded PNAs”, Tetrahedron Letters, 1994, 35(29), 5105-5108. |
De. Koning et al., “Unconventional Nucleotide Analogues V. Derivatives of 6-(1-pyrimidinyl)-and 6-(9-purinyl)-2-aminocaproic acid”, Recueil, 1971, 90, 874-884. |
Demidov, V. et al., “Stability of Peptide Nucleic Acids in Human Serum and Cellular Extracts”, Biochem. Pharmacol., 1994, 48(6), 1310-1313. |
Demidov, V. et al., “Sequence Selective Double Strand DNA Cleavage by PNA Targeting Using Nuclease S1”, Nucleic Acids Res., 1993, 21(9), 2103-2107. |
Dueholm, K.L. et al., “An Efficient Synthetic Approach to Bocaminoacetaldehyde and its Application in the Synthesis of 2-Boc-Aminoethylglycine Methyl Ester”, Org. Prep. Proc. Int., 1993, 25, 457-461. |
Doel et al., “An Approach tothe Synthesis of Peptide Analogues of Oligonucleotides (Nucleopeptides)”, Tetrahedron Lett., 1969, 27, 2285-2288. |
Doel et al., “The Synthesis of Peptides Containing Purine and Pyrimidine Derivatives of DL-Alanine”, Tetrahedron, 1974, 30, 2755-2759. |
Dueholm, K.L. et al., “Peptide Nucleic Acid (PNA) with a Chiral Backbone Based on Alanine”, Bioorg. Med. Chem. Lett., 1994, 4(8), 1077-1080. |
Dueholm, K.L. et al., “Synthesis of Peptide Nucleic Acids Monomers Containing the Four Natural Nucleobases: Tyymine, Cytosine, Adenine and Guanine, and Their Oligomerization”, J. Org. Chem., 1994, 59(19), 5767-5773. |
Egholm, M. et al., “Peptide Nucleic Acids (PNA). Oligonucleotide Analogues with an Achiral Peptide Backbone”, J. Am. Chem. Soc., 1992, 114, 1895-1897. |
Egholm, M. et al., “Recognition of Guanine and Adenine in DNA by Cytosine and Thymine Containing Peptide Nucleic Acids (PNA)”, J. Am. Chem. Soc., 1992, 114, 9677-9678. |
Egholm, M. et al., “Peptide Nucleic Acids Containing Adenine or Guanine Recognize Thymine and Cytosine in Completnary DNA Sequences”, J. Chem. Soc. Chem. Comm., 1993, 800-801. |
Flam, F., “Can DNA Mimics Improve on the Real Thing?”, Science, 1993, 262, 1647-1649. |
Frank-Kamenetskii, M., “A Change of Backbone”, Nature, 1991, 354, 505. |
Griffith, M.C. et al., “Single and Bis Peptide Nucleic Acids as Triplexing Agents: Binding and Stoichiometry”, J. Am. Chem. Soc., 1995, 117(2), 831-832. |
Hanvey et al., “Antisense and Antigene Properties of Peptide Nucleic Acids”, Science, 1992, 258, 1481-1485. |
Huang et al., “Acyclic Nucleic Acid Analogues: Synthesis and Oligomerization of γ, 4-Diamino-2-oxo-1(2H)-pyrimidinepentanoic Acid and σ 4-Diamino-2-oxo-1(2H)-pyrimidinehexanoic Acid”, J. Org. Chem., 1991, 56, 6007-6018. |
Hyrup, B. et al., “Modification of the Binding Affinity of Peptide Nucleic Acids (PNA). PNA with Extended Backbones Consisting of 2-Aminoethyl-B-Alanine or 3 Aminopropylglycine Units”, J. Chem. Soc. Chem. Comm., 1993, 6, 518-519. |
Hyrup, B. et al., “Structure-Activity Studies of the Binding of Modified Peptide Nucleic acids (PNA) to DNA”, J. Am. Chem. Soc., 1994, 35(29), 5173-5176. |
Inaki et al., “Functionality and Applicability of Synthetic Nucleic Acid Analogs”, in Current Topics in Polymer Science, Ottenbrite et al. (eds.), New York: Macmillan Pub. Co., 1987, 1, 80-100. |
Inaki, Y., “Synthetic Nucleic Analogs”, Prog. Polym. Sci., 1992, 17, 515-570. |
Kosynkina, L. et al., “A Convenient Synthesis of Chiral Peptide Nucleic Acid (PNA) Monomers”, Tetrahedron Letters, 1994, 35(29), 5173-5176. |
Lagriffoul, P.G. et al., “The Synthesis, Co-Oligomerization and Hybridization of a Thymine-Thymine Heterodimer Containing PNA”, Bioorg. Med. Chem. Lett., 1994, 4(8), 1081-1085. |
Leijon, M. et al., “Structural Characterization of PNA-DNA Duplexes by NMR Evidence for DNA in B-Like Conformation”, Biochem., 1994, 33(33), 9820-9825. |
Lu et al., “Synthesis of Polyesters Containing Nucleic Acid Base Derivatives as Pending Side Chains”, J. Polym. Sci.: Part A: Polymer Chemistry, 1986, 24, 525-536. |
Matthews et al., Analytical Bioch., 1988, 169, 1-25. |
Mollegaard, N.E. et al., “Peptide Nucleic Acid-DNA Strand Displacement Loops as Artificial Transcription Promoters”, Proc. Natl. Acad. Sci. USA, 1994, 91, 3892-3895. |
Nagae et al., “Functional Monomers and Polymers. CLIV. Application of Nucleic Acid Base Containing Polymers to High Performance Liquid Chromatography”, J. Polym. Sci.: Part A: Polymer Chemistry, 1989, 27, 2593-2609. |
Nielsen, P.E. et al., “Peptide Nucleic Acids (PNAs): Protein Antisense and Anti-Gene Agents”, Anti-Cancer Drug Design, 1993, 8, 53-63. |
Nielsen, P.E., “Peptide Nucleic Acids (PNA): Potential Antiviral Agents”, Int'l Antiviral News, 1993, 1, 37-39. |
Nielsen, P.E. et al., “Peptide Nucleic Acids (PNA): Oligonucleotide Analogs with a Polyamide Backbone”, Antisense Research and Applications, 1993, Crooke and B. Lebleu (Eds.), CRC Press, Boca Raton, FL, 363-373. |
Nielsen, P.E., “Peptide Nucleic Acid (PNA): A Model Structure for the Primordial Genetic Material?”, Orig. Life Evol. Biosphere, 1993, 23, 323-327. |
Nielsen, P.E., “Peptide Nucleic Acid (PNA): A DNA Mimic with a Peptide Backbone”, Bioconjugate Chem., 1994, 5, 3-7. |
Nielsen, P.E., “Sequence-Specific Transcription Arrest by peptide Nucleic Acid Bound to the NDA Template Strand”, Gene, 1994, 149, 139-145. |
Nollet et al., “Unconventional Nucleotide Analogues-III, 4-(N1-Pyrimidyl)-2-Aminobutyric Acids”, Tetrahedron, 1968, 25, 5989-5994. |
Nollet et al., “Unconventional Nucleotide Analogues-I, N9-Purinyl α-Amino Acids”, Tetrahedron, 1969, 25, 5971-5981. |
Nollet et al., “Unconventional Nucleotide Analogues-II, Synthesis of the Adenyl Analogue of Willardiine”, 1969, 25, 5983-5987. |
Nollet et al., “Michael Addition of 4-O-Ethyluracil. A Method for Specific N1-Alkylation of Hydroxpyridimines”, Tetrahedron Letters, 1969, 53, 4605-4606. |
Orum, H. et al., “Single Base Pair Mutation Analysis by PNA Directed PCR Clamping”, Nucleic Acids Research, 1993, 21(23), 5332-5336. |
Parkanyi, C. et al., “Synthesis of Polymethylene Chain-Bridged 6-Substituted 8-Azapurines and Related Compounds”, Collect. Czech. Chem. Commun., 1991, 56, 2382-2388. |
Peffer, N.J. et al., “Strand-Invasion of Duplex DNA by Peptide Nucleic Acid Oligomers”, Proc. Natl. Acad. Sci. USA, 1993, 90(22), 10648-10652. |
Pitha, J. et al., “Synthetic Analogs of Nucleic Acids”, Biomedical Polymers, Goldberg and Nakajima (Eds.), Academic Press, New York, 1989, 271-297. |
Pitha et al., “Inhibition of Murine Leukemia Virus Replication by Poly(vinyluracil) and Poly(vinyladenine)”, Proc. Natl Acad. Sci. USA, 1973, 70, 1204-1208. |
Pitha, J., “Physiological Activities of Synthetic Analogs of Polynucleotides”, Adv. Polym. Sci., 1983, 50, 1-16. |
Rose, D.J., “Characterization of Antisense Binding Properties of Peptide Nucleic Acids by Capillary Gel Electrophoresis”, Anal. Chem., 1993, 65(24), 3545-3549. |
Shvatschkin, Y.P. et al., “uspechi I perspektivi chimij nikleoaminokislot I nikleopeptidov”, Isnechi Chimij, 1982, 2, 311-330. |
Simon et al., “Peptoids: A modular approach to drug discovery”, Proc. Natl. Acad. Sci. USA, 1992, 89, 9367-9371. |
Takemoto et al., “Synthetic Nucleic Acid Analogs. preparation and Interactions”, Adv. Polym. Sci., 1981, 3-51. |
Takemoto, K., “Recent Problems Concerning Functional Monomers and Polymers Containing Nucleic Acid Bases”, Polymeric Drugs, Donaruma and Vogl (Eds.), Academic Press, New York, 1978, 103-129. |
Uhlmann et al., “Antisense Oligonucleotides: A New Therapeutic Principle”, Chem. Reviews, 1990, 90, 544-584. |
Weller et al., “Molecular Modeling of Acyclic Polyamide Oligonucleotide Analogues”, J. Org. Chem., 1991, 6000-6006. |
Wittung, P. et al., “DNA-Like Double Helix Formed by Peptide Nucleic Acid”, Nature, 1994, 368, 561-563. |
Anderson et al., “t-Butyloxycarbonylamino Acids and Their Use in Peptide Synthesis”, J. Am. Chem. Soc., 1957, 79, 6180-6183. |
Atherton et al., “A Physically Supported Gel Polymer for Low Pressure, Continuous Flow Solid Phase Reactions. Application to Solid Phase Peptide Synthesis”, J. Chem. Soc. Chem. Commun., 1981, 1151-1152. |
Barany et al., “Solid-phase peptide synthsis: a silver anniversary report”, Int. J. Peptide Protein Res., 1987, 30, 705-739. |
Barany et al., “A New Amino Protecting Group Removable by Reduction. Chemistry of the Dithiasuccinoyl (Dts) Function”, J. Am. Chem. Soc., 1977, 99, 7363-7365. |
Barton et al., “Solid-Phase Synthesis of Selectively Protected Peptides for Use as Building Units in the Solid-Phase Synthesis of Large Molecules”, J. Am. Chem. Soc., 1973, 95, 4501-4506. |
Bayer et al., “A New Support for Polypeptide Synthesis in Columns”, Tetrahedron Lett., 1970, 4503-4505. |
Beaucage et al., “Deoxynucleoside Phosphoramidites—A New Class of Key Intermediates for Deoxypolynucleotide Synthesis”, Tetrahedron Lett., 1981, 22, 1859-1862. |
Beran et al., “Substituted ω-(4-OXO-3, 4-Dihydro-5-Pyrimidinyl) Alkanoic Acids, Their Derivatives and Analogues”, Collect. Czech. Chem. Commun., 1983, 48, 292-299. |
Berg et al., “Long-Chain Polystyrene-Grafted Polyethylene Film Matrix: A New Support for Solid-Phase Peptide Synthesis”, J. Am. Chem. Soc., 1989, 111, 8024-8026. |
Bodanzsky, “Synthesis of Peptides by Aminolysis of Nitrophenyl Esters”, Nature, 1955, 175, 685. |
Bodanszky et al., “Active Esters and Resins in Peptide Synthesis”, Chem. Ind., 1964, 1423-1424. |
Brady et al., “Some Novel, Acid-Labile Amine Protecting Groups”, J. Org. Chem., 1977, 42, 143-146. |
Caruthers, “Gene Synthesis Machines: DNA Chemistry and Its Use”, Science, 1985, 230, 281-285. |
Carpino, “((9-Fluorenylmethyl)oxy)carbonly (FMOC) Amino Acid Fluorides. Convenient New Peptide Coupling Regents Applicable to the FMOC/tert-Butyl Strategy for Solution and Solid-Phase Syntheses”, J. Am. Chem. Soc., 1990, 112, 9651-9652. |
Carpino et al., “The 9-Fluorenylmethoxycarbonyl Function, a New Base Sensitive Amino-Protecting Group”, J. Am. Chem. Soc., 1970, 92, 5748-5749. |
Carpino et al., “The 9-Fluorenylmethoxycarbonyl Amino-Protecting Group” J. Org. Chem., 1972, 37(22), 3404-3409. |
Carpino, “Oxidative Reactions of Hydrazines. IV. Elimination of Nitrogen from 1,1-Disubstituted-2-arenesulfonhydrazides”, J. Am. Chem. Soc., 1957, 79, 4427-4431. |
Daniels et al., “Membranes as Solid Supports for Peptide Synthesis”, Tetrahedron Lett., 1989, 30(33), 4345-4348. |
Egholm et al., “Sequence-Selective Recognition of DNA by Strand Displacement with a Thymine-Substituted Polyamide”, Science, 1991, 254, 1497-1500. |
Egholm et al., “PNA hybridizes to complementary oligonucleotides obeying the Watson-Crick hydrogen-bonding rules”, Nature, 1993, 365, 566-568. |
Eichler et al., “Application of Cellulose Paper as Support Material in Simultaneous Solid Phase Peptide Synthesis”, Collect. Czech. Chem. Commun., 1989, 54, 1746-1752. |
Fissekis et al., “Synthesis of 5-Carboxymethyluridine. A Nucleoside from Transfer Ribonucleic Acid”, Biochemistry, 1970, 9(16), 3136-3142. |
Fodor et al., “Light-Directed, Spatially Addressable Parallel Chemical Synthsis”, Science, 1991, 251, 767-773. |
Fridkin et al., “A Snythesis of Cyclic Peptides Utilizing High Molecular Weight Carriers”, J. Am. Chem. Soc., 1965, 87, 4646-4648. |
Geysen et al., “Use of peptide synthesis of probe viral antigens for epitopes to a resolution of a single amino acid”, Proc. Natl. Acad. Sci. USA, 1984, 81, 3998-4002. |
Goodman et al., “Peptide Synthesis via Active Esters. IV. Racemization and Ring-Opening Reactions of Optically Active Oxazolones”, J. Am. Chem. Soc., 1964, 86, 2918-2922. |
Gorman, “An Apparatus for Simultaneous Manual Solid-Phase Synthesis of Multiple Peptide Analogs”, Anal. Biochem., 1984, 136, 397-406. |
Haaima, G. et al., “Peptide Nucleic Acids (PNAs) Containing Thymine Monomers Derived from Chiral Amino Acids: Hybridization and Solubility Properties of D-Lysine PNA,” Angew. Chem. Int. Ed. Engl., 1996, 35(17), 1939-1942. |
Hahn et al., “Design and Synthesis of a Peptide Having Chymotrypsin-Like Esterase Activity”, Science, 1990, 248, 1544-1547. |
Hass et al., “Adamantyloxycarbonyl, a New Blocking Group. Preparation of 1-Adamantyl Chloroformate”, J. Am. Chem. Soc., 1966, 88(9), 1988-1992. |
Heimer et al., “Synthesis of analogs and oligomers of N-(2-aminoethyl)glycine and their gastrointestinal absorption in the rat”, Int. J. Pept. Protein Res., 1984, 23, 203-211. |
Holm et al., “Multiple Column Peptide Synthesis”, Processing of the 20th European Peptide Symposium, Jung. G. et al. (eds.), Walter de Gruyter & Co., Berlin, 1989, 208-210. |
Houghten, “General method for the rapid solid-phase synthesis of large numbers of peptides: Specificity of antigen-antibody interaction at the level of individual amino acids”, Proc. Natl. Acad. Sci. USA, 1985, 82, 5131-5135. |
Jones, “Hydrogenation of Protected Leucine Enkephalin from a Resin During Solid Phase Synthesis”, Tetrahedron Lett., 1977, 33, 2853-2856. |
Kemp et al., “New Protective Groups for Peptide Synthesis—I The Bic Group Base and Solvent Lability of the 5-Benzisoxazolylmethyleneoxycarbonylamino function”, Tetrahderon, 1975, 52, 4625-4628. |
Kent et al., “Preparation and Properties of tert-Butyloxycarbonylaminoacyl-4-(oxymethyl) phenylacetamidomethyl-(Kel F-g-styrene) Resin, an Insoluble, Noncrosslinked Support for Solid Phase Peptide Synthesis”, Israel J. Chem., 1978, 17, 243-247. |
Kovacs et al., “Glutamic and Aspartic Anhydrides. Rearrangement of N-Carboxyglutamic 1,5-Anhydride to the Leuchs' Anhydride and Conversion of the Latter of Pyroglutamic Acid”, J. Am. Chem. Soc., 1963, 85, 1839-1844. |
Konig et al., “Racemisierung bei Peptidsynthesen”, Chem. Ber., 1970, 103, 2024-2033. |
Konig et al., “Eine neue Methode zur Synthese von Peptiden: Aktivierung der Carboxylgruppe mit Dicyclohexylcarbodiimid und 3-Hydroxy-4-oxo-3,4-dihydro-1.2.3-benzotriazin”, Chem. Ber., 1970, 103, 2034-2040. |
Krchnak et al., “Continuous-Flow Solid-Phase Peptide Synthesis”, Tetrahedron Lett., 1987, 28(38), 4469-4472. |
Krchnak et al., “Multiple continuous-flow solid-phase peptide synthesis”, Int. J. Peptide Protein Res., 1989, 33, 209-213. |
Kupryszewski, “O Estrach Chlorofenylowych Ainokwasow. II. Synteza Peptydow Poprzez Aminolize Aktywnych Estrow 2,4,6-Trojchlorofenylowych N-Chronionych Aminokwasow”,Rocz. Chem., 1961, 35, 595-600. |
Lebl et al., “Simulation of Continuous Solid Phase Synthesis: Synthesis of Methionine Enkephalin and its Analogs”, Peptide Res., 1989, 2(4), 297-300. |
Letsinger et al., “Synthesis of Thymidine Oligonucleotides by Phosphite Triester Intermediates”, J. Am. Chem. Soc., 1976, 98, 3655-3661. |
Li et al., “The Synthesis of a Protein Possessing Growth-Promoting and Lactogenic Activities”, J. Am. Chem. Soc., 1970, 92(26), 7608-7609. |
McKay et al., “New Amine-masking Groups for Peptide Synthesis”, J. Am. Chem. Soc., 1957, 79, 4686-4690. |
Matsueda et al., “A p-Methylbenzhydrylamine Resin for Improved Solid-Phase Synthesis of Peptide Amides”, Peptides, 1981, 45-50. |
Merrifield, “Solid Phase Peptide Synthesis. II. The Synthesis of Bradykinin”, J. Am. Chem. Soc., 1964, 86, 304-305. |
Merrifield, “Synthesis of the Antibacterial Peptide Cecropin A(1-33)”, Biochemistry, 1982, 21, 5020-5031. |
Merrifield, “Solid Phase Peptide Synthesis. I. The Synthesis of a Tetrapeptide”, J. Am. Chem. Soc., 1963, 85, 2149-2154. |
Merrifield, “Solid Phase Synthesis”, Science, 1986, 232, 341-347. |
Mitchell et al., “Preparation of Aminomethyl-polystryene Resin by Direct Amidomethylation”, Tetrahedron Lett., 1976, 42, 3795-3798. |
Mitchell et al., “Occurrence of N-Alkylation during the Acidolytic Cleavage of Urethane Protecting Groups”, J. Org. Chem., 1976, 41, 2015-2019. |
Mizutani et al., “Oligo(dT0-glyceryl porous glass, a better support for the preparation of mRNA”, J. Chromatogr., 1986, 356, 202-205. |
Mutter et al., “Rapid Procedure for Liquid-Phase Peptide Synthesis: The Crystallization Method”, Angew. Chem., Int. Ed. Engl., 1974, 13, 88. |
Nefkens et al., “A Novel Activated Ester in Peptide Synthesis”, J. Am. Chem. Soc., 1961, 83, 1263. |
Pietta et al., “Amide Protection and Amide Supports in Solid-phase Peptide Synthesis”, J. Chem. Soc., 1970, 650-651. |
Pless et al., “Uber die Geschwindigkeit der Aminolyse von verschiedenen neuen, aktivierten, N-geschutzten α-Aminosaure-phenylestern, insbesondere 2,4,5-Trichlorphenylestern”, Helv. Chim. Acta., 1963, 46(176), 1609-1625. |
Pollack et al., “Selective Chemical Catalysis by an Antibody”, Science, 1986, 234, 1570-1574. |
Rich et al., “Preparation of a New o-Nitrobenzyl Resin for Solid-Phase Synthesis of tert-Butyloxycarbonyl-Protected Peptide Acids”, J. Am. Chem. Soc., 1975, 97, 1575-1579. |
Rivaille et al., “Synthesis of LH-RH Using a New Phenolic Polymer as Solid Support and “BOP” Reagent for Fragment Coupling”, Tetrahedron, 1980, 36, 3413-3419. |
Sakakibara et al., “A New Method for Releasing Oxytocin from Fully-protected Nona-peptides Using Anhydrous Hydrogen Fluoride”, Bull. Chem. Soc. Jpn., 1965, 38(8), 1412-1413. |
Sarin et al., “Quantitative Monitoring of Solid-Phase Peptide Synthesis by the Ninhydrin Reaction”, Anal. Biochem., 1981, 117, 147-157. |
Schlatter et al., “Hydrogenation in Solid Phase Peptide Synthesis. I. Removal of Product from the Resin”, Tetrahedron Lett., 1977, 33, 2851-2852. |
Scott et al., “The Use of Resin Coated Glass Beads in the Form of a Packed Bed for the Solid Phase Synthesis of Peptides”, J. Chrom. Sci., 1971, 9, 577-591. |
Sheehan et al., “A New Method of Forming Peptide Bonds”, J. Am. Chem. Soc., 1955, 77, 1067-1068. |
Shemyakin et al., “Synthesis of Peptides in Solution on a Polymeric Support I. Synthesis of Glycylglycyl-L-Leucylglycine”, Tetrahedron Lett., 1965, 2323-2327. |
Shokat et al., “A new strategy for the generation of catalytic antibodies”, Nature, 1989, 338, 269-271. |
Sieber, “Selektive acidolytische Spaltung von Aralkyloxycarbonyl-Aminoschutzgruppen”, Helv. Chem. Acta., 1968, 51, 614-622. |
Tam et al., “Improved Synthesis of 4-(Boc-aminoacyloxymethyl)-phenylacetic Acids for use in Solid Phase Peptide Synthesis”, Synthesis, 1979, 955-957. |
Tam et al., “Multi-Detachable Resin Supports for Solid Phasae Fragment Synthesis”, Tetrahedron Lett., 1979, 51, 4935-4938. |
Tam et al., “Design and Synthesis of Multidetachable Resin Supports for Solid-Phase Peptide Synthesis”, J. Am. Chem. Soc., 1980, 102, 6117-6127. |
Tam, “A Gradative Deprotection Strategy for the Solid-Phase Synthesis of Peptide Amides Using p-(Acyloxy)benzhydrylamine Resin and the SN2 Deprotection Method”, J. Org. Chem., 1985, 50, 5291-5298. |
Tam et al., “SN2 Deprotection of Synthetic Peptides with a Low Concentration of HF in Dimethy Sulfide: Evidence and Application in Peptide Synthesis”, J. Am. Chem. Soc., 1983, 105, 6442-6455. |
Tam et al., “Mechanisms for the Removal of Benzyl Protecting Groups in Synthetic Peptides by Trifluoromethanesulfonic Acid-Trifluoroacetic Acid-Dimethyl Sulfide”, J. Am. Chem. Soc., 1986, 108, 5242-5251. |
Tregear, “Graft Copolymers as Insoluble Supports in Peptide Synthesis”, in Chemistry and Biology of Peptides, Meienhofer, J. (ed.), Ann Arbor Sci. Publ., Ann Arbor, 1972, 175-178. |
Tramontano et al., “Catalytic Antibodies”, Science, 1986, 234, 1566-1570. |
van Rietschoten “Simultaneous Synthesis of Two Peptide Analogs on Different Insoluble Supports”, in Peptides 1974, Wolman, Y. (ed), Wiley and Sons, New York, 1975, 113-116. |
Waldmann et al., “Allylester als selektiv abspaltbare Carboxyschutzgruppen in Peptide-und N-Glycopeptidsynthese”, Liebigs Ann. Chem., 1983, 1712-1725. |
Wieland et al., “Symmetrical Boc-Amino Acid Anhydrides for Exonomical Peptide Syntheses on a Solid Phase”, Angew. Chem. Int. Ed. Engl., 1971, 10(5), 366. |
Yajima et al., “Trifluoromethanesulphonic Acid, as a Deprotecting Reagent in Peptide Chemistry”, J. Chem. Soc. Chem. Comm., 1974, 107-108. |
Zervas et al., “New Methods in Peptide Synthesis. I. Tritylsulfenyl and o-Nitrophenylsulfenyl Groups as N-Protecting Groups”, J. Am. Chem. Soc., 1963, 85, 3660-3666. |
Barany et al., in The Peptides, vol. 2, Academic Press, New York, 1979, 1-284. |
Bodanszky, Principles of Peptide Synthesis, Springer-Verlag, Berlin-New York, 1984. |
Dean, P.D.G. et al. (eds.), Affinity Chromatography—A Practical Approach, IRL Press Ltd., Oxford, 1986. |
Harnes, B.D. et al. (eds.), Nucleic Acid Hybridization—A Practical Approach, IRL Press Ltd., Oxford, 1987. |
Odian, Principles of Polymerization, McGraw-Hill, New York, 1970. |
Scouten, W.H. (ed.), Solid Phase Biochemistry—Analytical and Synthetic Aspects, John Wiley & Sons, New York, 1983. |
Stewart et al., Solid Phase Peptide Synthesis, 2nd Ed., Pierce Chemical Company, Illinois, 1984. |
Helene, C. et al., “Specific regulation of gene expression by antisense, sense, and antigene nucleic acids”, Biochimica et Biophysica Acta, 1990, 1049, 99-125. |
Nielsen, P.E. et al., “Sequence-Selective Recognition of DNA restriction enzyme cleavage by PNA”, Nucl. Acids Res., 1993, 21, 197-200. |