Reverse transcriptase (RT) is an enzyme required for replication of the Human Immunodeficiency Virus (HIV) and is the target of most of the therapeutic agents approved for clinical use in the treatment of AIDS. The majority of the drugs that have shown promising clinical results are nucleoside analogs. However, the success of the nucleoside analogs is limited by their toxicity and the ability of the HIV virus to develop drug resistant mutations in reverse transcriptase. The current proposal seeks to continue our mechanistic studies of RT to more complex physiologically relevant substrates and systems including natural tRNA3Lys and NCp7 protein. These studies will continue to focus on increasing our mechanistic understanding, at a molecular level, of the enzymatic activities of RT and the interaction with clinically significant nucleoside inhibitors, the mechanism of resistance to these compounds that develops through specific RT mutations, the mechanism of differential selectivity between the inhibition of HIV RT and the mitochondrial DNA polymerase as it relates to cytotoxicity, and finally to explore the molecular basis of synergy between nucleoside (N-RTIs) and nonnucleoside reverse transcriptase inhibitors (NNRTIs). Continuation of these aims will contribute to our overall understanding and development of a SAR (structure activity relationship) that correlates structural and stereochemical features of nucleoside analog drugs with their kinetic and mechanistic behavior toward relevant HIV-1 RT and polymerase targets. It is the ultimate goal of these studies to develop an in-depth understanding of the enzyme mechanism of HIV 1-RT and the interaction with inhibitors as well as to uncover the underlying mechanisms of drug resistance and toxicity that could ultimately lead to compounds that are less toxic, more selective, and hence more effective as therapeutics.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
2R01GM049551-12
Application #
6802185
Study Section
Special Emphasis Panel (ZRG1-AARR-A (O1))
Program Officer
Jones, Warren
Project Start
1993-04-01
Project End
2008-03-31
Budget Start
2004-04-01
Budget End
2005-03-31
Support Year
12
Fiscal Year
2004
Total Cost
$351,200
Indirect Cost
Name
Yale University
Department
Pharmacology
Type
Schools of Medicine
DUNS #
043207562
City
New Haven
State
CT
Country
United States
Zip Code
06520
Kudalkar, Shalley N; Beloor, Jagadish; Quijano, Elias et al. (2018) From in silico hit to long-acting late-stage preclinical candidate to combat HIV-1 infection. Proc Natl Acad Sci U S A 115:E802-E811
Baranovskiy, Andrey G; Duong, Vincent N; Babayeva, Nigar D et al. (2018) Activity and fidelity of human DNA polymerase ? depend on primer structure. J Biol Chem 293:6824-6843
Chan, Albert H; Lee, Won-Gil; Spasov, Krasimir A et al. (2017) Covalent inhibitors for eradication of drug-resistant HIV-1 reverse transcriptase: From design to protein crystallography. Proc Natl Acad Sci U S A 114:9725-9730
Kudalkar, Shalley N; Beloor, Jagadish; Chan, Albert H et al. (2017) Structural and Preclinical Studies of Computationally Designed Non-Nucleoside Reverse Transcriptase Inhibitors for Treating HIV infection. Mol Pharmacol 91:383-391
Li, Min; Mislak, Andrea C; Foli, Yram et al. (2016) The DNA Polymerase Gamma R953C Mutant Is Associated with Antiretroviral Therapy-Induced Mitochondrial Toxicity. Antimicrob Agents Chemother 60:5608-11
Mislak, Andrea C; Anderson, Karen S (2016) Insights into the Molecular Mechanism of Polymerization and Nucleoside Reverse Transcriptase Inhibitor Incorporation by Human PrimPol. Antimicrob Agents Chemother 60:561-9
Lee, Won-Gil; Frey, Kathleen M; Gallardo-Macias, Ricardo et al. (2015) Discovery and crystallography of bicyclic arylaminoazines as potent inhibitors of HIV-1 reverse transcriptase. Bioorg Med Chem Lett 25:4824-7
Frey, Kathleen M; Puleo, David E; Spasov, Krasimir A et al. (2015) Structure-based evaluation of non-nucleoside inhibitors with improved potency and solubility that target HIV reverse transcriptase variants. J Med Chem 58:2737-45
Sohl, Christal D; Szymanski, Michal R; Mislak, Andrea C et al. (2015) Probing the structural and molecular basis of nucleotide selectivity by human mitochondrial DNA polymerase ?. Proc Natl Acad Sci U S A 112:8596-601
Iyidogan, Pinar; Anderson, Karen S (2014) Current perspectives on HIV-1 antiretroviral drug resistance. Viruses 6:4095-139

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