Many carcinogens become covalently attached to DNA and cause genotoxic damage by nucleotide misincorporation and polymerase blockage. Several lines of evidence indicate that these events are kinetically controlled and not governed only by thermodynamic stability of base pairing. Efforts in this laboratory are directed towards understanding interactions between DNA adducts and polymerases. HIV-1 reverse transcriptase (RT) will be crystallized with a 7,8-dihydro-8-oxoguanine (8-oxoG)-containing oligonucleotide and nucleoside triphosphate (dNTP), and results will be analyzed in the context of pre-steady-state kinetics. The kinetics of misincorporation and blocking of HIV-1 RT will be analyzed in terms of a model of multiple binary/ternary complexes vs. altered polymerase-DNA affinity, using 06-substituted guanines as a model. A series of N2-substituted guanine oligonucleotide derivatives will be used to systematically probe the effect of steric bulk on the kinetics of polymerase incorporation, blocking, and misincorporation. Other pre-steady- state kinetic studies will be directed towards using fluorescence and circular dichroism to directly observe putative conformational changes in polymerase cycles. Pre-steady-state kinetic approaches will be applied to polymerase delta, the major mammalian leading strand replicative enzyme, to determine the applicability of prokaryotic models in studies of normal incorporation, miscoding, and blockage by this enzyme. The general hypothesis is that normal incorporation, misincorporation, pausing, and complete blockage differ because these events represent a continuum of varying fits of polymerase- DNA-dNTP ternary complexes, reflected in rate constants for conformational changes and phosphodiester bond formation. The overall goal is understanding molecular mechanisms of mutagenesis as a part of chemical carcinogenesis.

Agency
National Institute of Health (NIH)
Institute
National Institute of Environmental Health Sciences (NIEHS)
Type
Research Project (R01)
Project #
5R01ES010375-04
Application #
6630436
Study Section
Chemical Pathology Study Section (CPA)
Program Officer
Shaughnessy, Daniel
Project Start
2000-08-05
Project End
2005-07-31
Budget Start
2003-08-01
Budget End
2004-07-31
Support Year
4
Fiscal Year
2003
Total Cost
$325,272
Indirect Cost
Name
Vanderbilt University Medical Center
Department
Biochemistry
Type
Schools of Medicine
DUNS #
004413456
City
Nashville
State
TN
Country
United States
Zip Code
37212
Choi, Jeong-Yun; Patra, Amritaj; Yeom, Mina et al. (2016) Kinetic and Structural Impact of Metal Ions and Genetic Variations on Human DNA Polymerase ?. J Biol Chem 291:21063-21073
Patra, Amritraj; Su, Yan; Zhang, Qianqian et al. (2016) Structural and Kinetic Analysis of Miscoding Opposite the DNA Adduct 1,N6-Ethenodeoxyadenosine by Human Translesion DNA Polymerase ?. J Biol Chem 291:14134-45
Su, Yan; Egli, Martin; Guengerich, F Peter (2016) Mechanism of Ribonucleotide Incorporation by Human DNA Polymerase ?. J Biol Chem 291:3747-56
Yeom, Mina; Kim, In-Hyeok; Kim, Jae-Kwon et al. (2016) Effects of Twelve Germline Missense Variations on DNA Lesion and G-Quadruplex Bypass Activities of Human DNA Polymerase REV1. Chem Res Toxicol 29:367-79
Su, Yan; Peter Guengerich, F (2016) Pre-Steady-State Kinetic Analysis of Single-Nucleotide Incorporation by DNA Polymerases. Curr Protoc Nucleic Acid Chem 65:7.23.1-7.23.10
Patra, Amitraj; Zhang, Qianqian; Guengerich, F Peter et al. (2016) Mechanisms of Insertion of dCTP and dTTP Opposite the DNA Lesion O6-Methyl-2'-deoxyguanosine by Human DNA Polymerase ?. J Biol Chem 291:24304-24313
Kim, Jae-Kwon; Yeom, Mina; Hong, Jin-Kyung et al. (2016) Six Germline Genetic Variations Impair the Translesion Synthesis Activity of Human DNA Polymerase ?. Chem Res Toxicol 29:1741-1754
O'Flaherty, D K; Patra, A; Su, Y et al. (2016) Lesion Orientation of O(4)-Alkylthymidine Influences Replication by Human DNA Polymerase ?. Chem Sci 7:4896-4904
Liu, Binyan; Xue, Qizhen; Tang, Yong et al. (2016) Mechanisms of mutagenesis: DNA replication in the presence of DNA damage. Mutat Res Rev Mutat Res 768:53-67
Patra, Amritaj; Zhang, Qianqian; Lei, Li et al. (2015) Structural and kinetic analysis of nucleoside triphosphate incorporation opposite an abasic site by human translesion DNA polymerase ?. J Biol Chem 290:8028-38

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