) DNA synthesis and ligation are required to complete the homologous recombinational repair of DNA double-strand breaks (DSBs). These processes respectively replace the genetic information lost during the nucleolytic processing of DSBs, and restore the integrity of the phosphodiester backbone of the recombining molecules. We hypothesize that DNA synthesis and ligation are temporally coupled in a DNA damage-dependent manner to the initial steps of homologous recombination, in particular heteroduplex formation. We will systematically search for associations between recombination and DNA synthesis proteins and determine whether these associations are modulated in a DNA damage-dependent manner by a combination of in vitro and in vivo approaches. The effects of complex formation between recombination and DNA synthesis proteins on the functional properties of the interacting proteins will be determined. Specifically we will examine whether novel complexes of recombination and DNA synthesis proteins can catalyze heteroduplex formation and strand invasion-dependent synthesis. In collaboration with Project 1 we will reconstitute strand invasion-dependent DNA synthesis with purified recombination proteins and DNA polymerases with their accessory factors. The putative role of DNA ligase I in the cellular response to ionizing radiation and, more specifically, in the completion of homologous recombination repair will be examined in studies with a DNA ligase I-deficient human cell line. The goal of this study is to elucidate the molecular mechanisms by which homology-dependent repair of DSBs is completed. This information will form the basis for understanding how this pathway is regulated in normal cells and how abnormalities in this pathway result in cancer formation. This project will be conducted in close collaboration with Projects 1, 3, and 4, and will require the services of the animal, macromolecular synthesis and analyses, and imaging cores.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Program Projects (P01)
Project #
1P01CA081020-01A1
Application #
6401881
Study Section
Subcommittee E - Prevention &Control (NCI)
Project Start
2000-06-05
Project End
2004-05-31
Budget Start
Budget End
Support Year
1
Fiscal Year
2000
Total Cost
Indirect Cost
Name
University of Texas Health Science Center San Antonio
Department
Type
DUNS #
800772162
City
San Antonio
State
TX
Country
United States
Zip Code
78229
Yang, Hui; Matsumoto, Yoshihiro; Trujillo, Kelly M et al. (2015) Role of the yeast DNA repair protein Nej1 in end processing during the repair of DNA double strand breaks by non-homologous end joining. DNA Repair (Amst) 31:1-10
Daley, James M; Niu, Hengyao; Sung, Patrick (2013) Roles of DNA helicases in the mediation and regulation of homologous recombination. Adv Exp Med Biol 767:185-202
Daley, James M; Sung, Patrick (2013) RIF1 in DNA break repair pathway choice. Mol Cell 49:840-1
Shu, Zhanyong; Vijayakumar, Sangeetha; Chen, Chi-Fen et al. (2004) Purified human SUV3p exhibits multiple-substrate unwinding activity upon conformational change. Biochemistry 43:4781-90
Tan, Wei; Zheng, Lei; Lee, Wen-Hwa et al. (2004) Functional dissection of transcription factor ZBRK1 reveals zinc fingers with dual roles in DNA-binding and BRCA1-dependent transcriptional repression. J Biol Chem 279:6576-87
Ting, Nicholas S Y; Lee, Wen-Hwa (2004) The DNA double-strand break response pathway: becoming more BRCAish than ever. DNA Repair (Amst) 3:935-44
Motycka, Teresa A; Bessho, Tadayoshi; Post, Sean M et al. (2004) Physical and functional interaction between the XPF/ERCC1 endonuclease and hRad52. J Biol Chem 279:13634-9
Utomo, Ahmad; Jiang, Xianzhi; Furuta, Saori et al. (2004) Identification of a novel putative non-selenocysteine containing phospholipid hydroperoxide glutathione peroxidase (NPGPx) essential for alleviating oxidative stress generated from polyunsaturated fatty acids in breast cancer cells. J Biol Chem 279:43522-9
Lin, Horng-Ru; Ting, Nicholas S Y; Qin, Jun et al. (2003) M phase-specific phosphorylation of BRCA2 by Polo-like kinase 1 correlates with the dissociation of the BRCA2-P/CAF complex. J Biol Chem 278:35979-87
Post, Sean M; Tomkinson, Alan E; Lee, Eva Y-H P (2003) The human checkpoint Rad protein Rad17 is chromatin-associated throughout the cell cycle, localizes to DNA replication sites, and interacts with DNA polymerase epsilon. Nucleic Acids Res 31:5568-75

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