The objective of this research is to investigate the mechanism of mutagenesis and DNA repair induced by the nitrated pyrenes that are known environmental pollutants and are suspected to pose threats to human health. To accomplish this goal, we have used the tools of organic synthesis and recombinant DNA technology to construct specific DNA fragments and viral genomes that contained, at preselected sites, the major DNA adduct formed by 1-nitropyrene, and 1,6- and 1,8-dinitropyrene. In the past we investigated the mutagenic activity of some of these adducts in Escherichia coli. A major objective of the current application is to employ this technology to construct specific mutagenic hot spot sequences from the p53 gene and study sequence-specificity of mutagenesis in mammalian cells and in extracts from repair-proficient and -deficient human cell lines. Progeny DNA molecules will be isolated, and the mutagenic as well as toxic effects of the adduct will be studied both qualitatively and quantitatively. Another major objective of this proposal is to determine the thermodynamics and kinetics of interaction of the nucleotide excision repair proteins from E. coli and human cells, and compare the rates of incision on site-specific adducts in the same DNA sequence context as employed in the mutagenesis studies. Also, detailed physicochemical studies will be carried out on the modified oligonucleotides to understand the architectural effects of the adducts. A primary goal of this work is to define the relationship between the structure and three-dimensional effects of a lesion in DNA and the mutagenicity and DNA repair that it may induce. Another important aim is to understand the mechanism how the repair proteins, and specifically nucleotide excision repair, protect cells against the toxic and mutagenic properties of these DNA damaging agents.

Agency
National Institute of Health (NIH)
Institute
National Institute of Environmental Health Sciences (NIEHS)
Type
Research Project (R01)
Project #
5R01ES009127-09
Application #
7083550
Study Section
Chemical Pathology Study Section (CPA)
Program Officer
Shaughnessy, Daniel
Project Start
1998-02-01
Project End
2008-06-30
Budget Start
2006-07-01
Budget End
2008-06-30
Support Year
9
Fiscal Year
2006
Total Cost
$299,343
Indirect Cost
Name
University of Connecticut
Department
Chemistry
Type
Schools of Arts and Sciences
DUNS #
614209054
City
Storrs-Mansfield
State
CT
Country
United States
Zip Code
06269
Basu, Ashis K (2018) DNA Damage, Mutagenesis and Cancer. Int J Mol Sci 19:
Basu, Ashis K; Pande, Paritosh; Bose, Arindam (2017) Translesion Synthesis of 2'-Deoxyguanosine Lesions by Eukaryotic DNA Polymerases. Chem Res Toxicol 30:61-72
Tokarsky, E John; Wallenmeyer, Petra C; Phi, Kenneth K et al. (2017) Significant impact of divalent metal ions on the fidelity, sugar selectivity, and drug incorporation efficiency of human PrimPol. DNA Repair (Amst) 49:51-59
Chatterjee, Arindom; Malik, Chanchal K; Basu, Ashis K (2017) Synthesis of Oligodeoxynucleotides Containing a C8-2'-Deoxyguanosine Adduct Formed by the Carcinogen 3-Nitrobenzanthrone. Curr Protoc Nucleic Acid Chem 69:4.73.1-4.73.15
Tokarsky, E John; Gadkari, Varun V; Zahurancik, Walter J et al. (2016) Pre-steady-state kinetic investigation of bypass of a bulky guanine lesion by human Y-family DNA polymerases. DNA Repair (Amst) 46:20-28
Patra, Amritraj; Politica, Dustin A; Chatterjee, Arindom et al. (2016) Mechanism of Error-Free Bypass of the Environmental Carcinogen N-(2'-Deoxyguanosin-8-yl)-3-aminobenzanthrone Adduct by Human DNA Polymerase??. Chembiochem 17:2033-2037
Bose, Arindam; Surugihalli, Chaitra; Pande, Paritosh et al. (2016) Comparative Error-Free and Error-Prone Translesion Synthesis of N(2)-2'-Deoxyguanosine Adducts Formed by Mitomycin C and Its Metabolite, 2,7-Diaminomitosene, in Human Cells. Chem Res Toxicol 29:933-9
Raper, Austin T; Gadkari, Varun V; Maxwell, Brian A et al. (2016) Single-Molecule Investigation of Response to Oxidative DNA Damage by a Y-Family DNA Polymerase. Biochemistry 55:2187-96
Bose, Arindam; Pande, Paritosh; Jasti, Vijay P et al. (2015) DNA polymerases ? and ? cooperatively perform mutagenic translesion synthesis of the C8-2'-deoxyguanosine adduct of the dietary mutagen IQ in human cells. Nucleic Acids Res 43:8340-51
Vyas, Rajan; Efthimiopoulos, Georgia; Tokarsky, E John et al. (2015) Mechanistic Basis for the Bypass of a Bulky DNA Adduct Catalyzed by a Y-Family DNA Polymerase. J Am Chem Soc 137:12131-42

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