Hendrich B. et al., “The thymine glycosylase MBD4 can bind to the product of deamination at methylated CpG sites”, Nature vol. 401, pp. 301-304 (Sep. 1999).* |
Accession No. AF114784, “Homo Sapiens methyl-CpG binding endonuclease (MED1) mRNA, complete cds”, Mar. 30, 1999.* |
Accession No. 095243, “Methyl-CpG binding protein MBD4”, May 1, 1999.* |
Kolodner, R., “Biochemistry and genetics of eukaryotic mismatch repair”; Genes & Development (1996), 10: 1433-1442. |
Modrich, P. et al., “Mismatch Repair in Replication Fidelity, Genetic Recombination, and Cancer Biology”; Annu. Rev. Biochem. (1996), 65: 101-33. |
Mashal, R.D. et al., “Detection of mutations by cleavage of DNA heteroduplexes with bacteriophage resolvases”; Nature Genetics (1995), vol. 9, 177-183. |
Dean, M., “Resolving DNA mutations”; Nature Genetics (1995), vol. 9, 103-104. |
Liu, B. et al., “Mismatch repair gene defects in sporadic colorectal cancers with microsatellite instability”; Nature Genetics (1995), vol. 9, 48-55. |
Lynch, H.T. et al., “Hereditary Nonpolyposis Colorectal Cancer (Lynch Syndrome)”; Cancer (1996), vol. 78, No. 6, 1149-1167. |
Bellacosa, A. et al.; “Hereditary Nonopolyposis Colorectal Cancer: Review of Clinical, Molecular Genetics, and Counseling Aspects”; American Journal of Medical Genetics (1996), 62: 353-364. |
Lewis, J.D. et al., “Purification, Sequence. and Cellular Localization of a Novel Chromosomal Protein That Binds to Methylated DNA”; Cell (1992), vol. 69, 905-914. |
Smith, J. et al., “Mutation detection with MutH, MutL, and MutS mismatch repair proteins”; Proc. Natl. Acad. Sci. USA (1996), vol. 93, 4374-4379. |
Umar A. et al., “Requirement for PCNA in DNA Mismatch Repair at a Step Preceding DNA Resynthesis”; Cell (1996), vol. 87, 65-73. |
Wöhrle, D. et al., “DNA Methylation and Triplet Repeat Stability: New Proposals Addressing Actual Questions on the CGG Repeat of Fragile X Syndrome”; American Journal of Medical Genetics (1996), 64: 266-267. |
Viel, A. et al., “Characterization of MSH2 and MLHI Mutations in Italian Families With Hereditary Nonpolyposis Colorectal Cancer”; Genes, Chromosomes & Cancer (1997), 18: 8-18. |
Cross, S.H. et al., “A component of the transcriptional repressor MeCP1 shares a motif with DNA methyltransferase and HRX proteins”; Nature Genetics (1997), vol. 16, 256-259. |
Datta, K. et al., “Akt Is a Direct Target of the Phosphatidylinositol 3-Kinase”; The Journal of Biological Chemistry (1996), vol. 271, No. 48, 30835-30839. |
Blank, A. et al., “Activity Staining of Nucleolytic Enzymes after Sodium Dodecyl Sulfate-Polyacrylamide Gel Electrophoresis: Use of Aqueous Isopropanol to Remove Detergent from Gels”; Analytical Biochemistry (1982), 120: 267-275. |
Modrich, P., “Mechanisms and Biological Effects of Mismatch Repair”; Annu. Rev. Genet. (1991), 25: 229-53. |
Liu, B. et al., “Analysis of mismatch repair genes in hereditary non-polyposis colorectal cancer patients”; Nature Medicine (1996), vol. 2, No. 2, 169-174. |
Plummer, S.J. et al., “Are we any closer to genetic testing for common malignancies?”; Nature Medicine (1996), vol. 2, No. 2, 156-158. |
Bird, A., “The Essentials of DNA Methylation”; Cell (1992), vol. 70, 5-8. |
Barras, F. et al., “The Great GATC: DNA methylation in E. coli”; TIG (1989), vol. 5, No. 5, 139-143. |
Hare, J.T. et al., “One role for DNA methylation in vertebrate cells is strand discrimination in mismatch repair”; Proc. Natl. Acad. Sci. USA (1985), vol. 82, 7350-7354. |
Kolodner, R.D., “Mismatch repair: mechanisms and relationship to cancer susceptibility”; TIBS—Oct. 1995, 397-401. |
Au, K.G., et al., “Initiation of Methyl-directed Mismatch Repair”; The Journal of Biological Chemistry (1992), vol. 267, No. 17, 12142-12148. |
Nan, X. et al., “Dissection of the methyl-CpG binding domain from the chromosomal protein MeCP2”; Nucleic Acids Research (1993), vol. 21, No. 21, 4886-4892. |