Lazar et al, “Transforming Growth Factor x:Mutation of Aspartic Acid 47 and Leucine 48 Results in Different Biological Activities”, Mar. 1988, Molecular and Cellular Biology vol. 8 No. 3, pp. 1247-1252.* |
Broun et al, “Catalytic Plasticity of Fatty Acid Modification Enzymes Underlying Chemical Diversity of Plant Lipids”, Nov. 1998, Science vol. 282, pp. 1315-1317.* |
Bork, “Powers and Pitfalls in Sequence Analysis: The 70% Hurdle”, Genome Research vol. 10: 398-400.* |
Errami et al., “Ku86 Defines the Genetic Defect and Restores X-Ray Resistance and V(D)J Recombination to Complementation Group 5 Hamster Cell Mutants”, Mol. Cell Bio. 16(4):1519-1526 (1996). |
Falzon et al., “The nucleotide sequence of a mouse cDNA encoding the 80 kDa subunit of the Ku (p70/p80) autoantigen” Nucleic Acids Research 20(14):3784 (1992). |
Ludwig et al., “Ku80 gene expression is SP1-dependent and sensitive to CpG methylation within a novel cis element”, Gene 199:181-194 (1997). |
Frit et al., Ku70/Ku80 Protein Complex Inhibits the Binding of Nucleotide Excision Repair Proteins on Linear DNA in Vitro J. Mol. Biol. 284:963-973 (1998). |
Database EMBL Nucleotide and Protein Sequences, HINXTON GB AC=AW066150.687006H02.yl 687—Early embryo from Delaware Zea mays cDNA, mRNA sequence. EST Oct. 18, 1999. |
Troelstra, C. and Jaspers, N.G.J., 1994, Current Biology, 4(12): 1149-1151, “Ku starts at the end”. |
Taccioli, et al., 1994, Science, 265: 1442-1445, “Ku80: Product of the XRCC5 Gene and Its Role in DNA Repair and V(D)J Recombination”. |
Cary, et al., 1998, Nucleic Acids Res., 26(4): 974-979, “A central region of Ku80 mediates interaction with Ku70 in vivo”. |
Osipovich, et al., 1997, J. Biological Chem., 272(43): 27259-27265, “Defining the Minimal Domain of Ku80 for Interaction with Ku70*”. |
Wang, et al., 1998, J. Biological Chem., 273(47): 31068-31074, “A Model for Ku Heterodimer Assembly and Interaction with DNA”. |
Jackson, S. and Jeggo, P., 1995, TIBS 20, 412-415, “DNA double-strand repair and V(D)J recombination: involvement of DNA-PK”. |
Shinohara, A. and Ogawa, T., 1995, TIBS 20, 387-391, “Homologous recombination and the roles of double-strand breaks”. |
Chu, G., 1997, J. Biological Chem., 272(39):24097-24100, “Double Strand Break Repair*”. |
Feldmann, et al., J. Biological Chem., 271(44): 27765-27769, “HDF2, the Second Subunit of the Ku Homologue from Saccharomyces cerevisiae*”. |
Yaneva, M. and Arnett, F.C., 1989, Clin. exp. Immunol., 76: 366-372, “Antibodies against Ku protein in sera from patients with autoimmune diseases”. |
Jacoby, D., and Wensink, P., 1994, J. Biological Chem., 269(15): 11484-11491, “Yolk Protein Factor 1 Is a Drosophila Homolog of Ku, the DNA-binding Subunit of a DNA-dependent Protein Kinase from Humans”. |
Polotnianka, et al., 1998, Current Biology, 8(14): 831-834, “The yeast Ku heterodimer is essential for protection of the telomere against nucleolytic and recombinational activities”. |
Roth, et al., 1995, Current Biology, 5(5): 496-499, “How to make ends meet”. |
Boulton, S. and Jackson S., 1998, The EMBO Journal, 17(6): 1819-1828, “Components of the Ku-dependent non-homologous end-joining pathway are involved in telomeric length maintenance and telomeric silencing”. |
Yoo, S. and Dynan, W., 1998, Biochemistry, 37: 1336-1343, “Characterization of the RNA Binding Properties of Ku Protein”. |
Mimori, et al., 1986, J. Biological Chem., 261(5): 2274-2278, “Characterization of the DNA-binding Protein Antigen Ku Recognized by Autoantibodies from Patients with Rheumatic Disorders*”. |
Lindahl, et al., 1995, TIBS 20, 405-411, “Post-translational modification of poly(ADP-ribose) polymerase induced by DNA strand breaks”. |
Anderson, et al., 1992, Critical Review in Eukaryotic Gene Exp., 2(4): 283-314, “The Nuclear Serine/Threonine Protein Kinase DNA-PK”. |
DVIR, et al., 1992, Proc. Natl. Acad. Sci., 89: 11920-11924, “Ku autoantigen is the regulatory component of a template-associated protein kinase that phosphorylates RNA polymerase II”. |