Research in this laboratory is concerned with understanding the biology of radiation-induced DNA damage and its repair, and the mechanisms by which unrepaired damage is translated into biologic effects such as cell lethality, mutation, and carcinogenesis. Particular attention is given to the relationship of DNA damage and repair to the clinical manifestations of human genetic disorders [i.e. xeroderma pigmentosum (XP), Cockayne's syndrome (CS)] that exhibit cellular hypersensitivity to ionizing and nonionizing radiations, mental and growth retardation, and a predisposition to cancer. The broad and long term objective of this proposal is to gain insight as to the biologic significance of the cell's nuclear architecture on the regulation of DNA repair in vivo. In contrast to the significant progress in understanding the biochemical components and their interactions of DNA repair in vitro, very little is known about the nature of these interactions in vivo. Furthermore, there is very limited information about the cellular regulation of DNA repair and how interactions of DNA repair proteins with components of the nuclear architecture influences DNA repair in vivo.
The specific aims of this study are: 1) to confirm the role of intracellular trafficking of XPG proteins in regulation of DNA repair, 2) to understand interactions between DNA repair proteins and intranuclear architectural components, 3) to identify intranuclear components that regulate XPG activity at the cellular level, 4) to explore the molecular mechanism that controls the UV-induced movement of XPG and transcription-coupled repair. The experimental design to be used in the pursuit of these aims will employ: 1) deletion-mutagenesis to confirm the nuclear localization signals in XPG and to evaluate the effect of structural context for efficient nuclear targeting, 2) point-mutagenesis to determine the role of phosphorylation on nuclear localization, 3) biochemical fractionation and purification of intranuclear structures that control DNA repair at the cellular level, 4) in vitro phosphorylation assay to evaluate the role of phosphorylation in the regulation of UV-induced movement of XPG in the nucleus, 5) molecular cloning to identify intranuclear structural entities that control DNA repair activity in vivo, and the kinases that are postulated to control the cellular activity of XPG protein. Results of this research will help the researchers to understand the link between DNA repair and transcription at the cellular level, which appears to be the basis for the complexity of the XPG/CS syndrome.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
First Independent Research Support & Transition (FIRST) Awards (R29)
Project #
5R29CA071630-04
Application #
2895621
Study Section
Radiation Study Section (RAD)
Program Officer
Pelroy, Richard
Project Start
1996-09-01
Project End
2001-08-31
Budget Start
1999-09-20
Budget End
2000-08-31
Support Year
4
Fiscal Year
1999
Total Cost
Indirect Cost
Name
Los Alamos National Lab
Department
Type
Organized Research Units
DUNS #
City
Los Alamos
State
NM
Country
United States
Zip Code
87545
Gary, R; Kim, K; Cornelius, H L et al. (1999) Proliferating cell nuclear antigen facilitates excision in long-patch base excision repair. J Biol Chem 274:4354-63
Matsumoto, Y; Kim, K; Hurwitz, J et al. (1999) Reconstitution of proliferating cell nuclear antigen-dependent repair of apurinic/apyrimidinic sites with purified human proteins. J Biol Chem 274:33703-8
Gary, R; Park, M S; Nolan, J P et al. (1999) A novel role in DNA metabolism for the binding of Fen1/Rad27 to PCNA and implications for genetic risk. Mol Cell Biol 19:5373-82
Montecucco, A; Rossi, R; Levin, D S et al. (1998) DNA ligase I is recruited to sites of DNA replication by an interaction with proliferating cell nuclear antigen: identification of a common targeting mechanism for the assembly of replication factories. EMBO J 17:3786-95
Park, M S; Valdez, J; Gurley, L et al. (1997) Characterization of a putative helix-loop-helix motif in nucleotide excision repair endonuclease, XPG. J Biol Chem 272:27823-9
Tarsounas, M; Pearlman, R E; Gasser, P J et al. (1997) Protein-protein interactions in the synaptonemal complex. Mol Biol Cell 8:1405-14
Gary, R; Ludwig, D L; Cornelius, H L et al. (1997) The DNA repair endonuclease XPG binds to proliferating cell nuclear antigen (PCNA) and shares sequence elements with the PCNA-binding regions of FEN-1 and cyclin-dependent kinase inhibitor p21. J Biol Chem 272:24522-9
Shen, B; Nolan, J P; Sklar, L A et al. (1997) Functional analysis of point mutations in human flap endonuclease-1 active site. Nucleic Acids Res 25:3332-8