Our long-term goal is to enhance our understanding of metalloprotein structure, function and inhibition. The tools we will use are those of theoretical, computational and medicinal chemistry. The long-term goal of the present proposal is to use these techniques to understand the structure, function and inhibition of the family of zinc (and magnesium) dependent sulfur alkylation enzymes called protein prenyltransferases. In particular, we will be study farnesyltransferase (FTase) and geranylgeranyltransferase type I (GGTase) using quantum mechanical (QM), QM/molecular mechanical (MM), molecular dynamics simulations, QM based X- ray refinement and docking/scoring studies. The overarching biological question we are addressing is the catalytic mechanism of zinc catalyzed protein prenylation and how this process can be inhibited to generate compounds relevant to cancer treatment, as well as other diseases. To reach this important biological goal we propose to study small molecule/enzyme interactions and the mechanism of these zinc catalyzed enzyme reactions using our theoretical tools. In order to enhance the quality of our computational efforts we are collaborating with experimentalists who are expert in the structure, function and inhibition of FTase and GGTase. Our experimental collaborators will assist in QM/MM based X-ray refinement studies, will generate mutant enzymes based on our computational observation in order to test our models, will carry out binding assays on novel small molecule inhibitors we identify and purchase and will synthesize novel compounds we propose. With the successful completion of the proposed project we will have generated mechanistic insights that will be translated into the design of novel inhibitors of FTase and GGTase that can be tested as treatment for human cancer.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM044974-17
Application #
7579015
Study Section
Special Emphasis Panel (ZRG1-BCMB-B (02))
Program Officer
Preusch, Peter C
Project Start
1991-04-01
Project End
2011-01-31
Budget Start
2009-02-01
Budget End
2010-01-31
Support Year
17
Fiscal Year
2009
Total Cost
$237,147
Indirect Cost
Name
University of Florida
Department
Chemistry
Type
Schools of Arts and Sciences
DUNS #
969663814
City
Gainesville
State
FL
Country
United States
Zip Code
32611
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Pan, Li-Li; Song, Lin Frank; Miao, Yipu et al. (2017) Mechanism of Formation of the Nonstandard Product in the Prenyltransferase Reaction of the G115T Mutant of FtmPT1: A Case of Reaction Dynamics Calling the Shots? Biochemistry 56:2995-3007
Yang, Y; Pan, L; Lightstone, F C et al. (2016) The Role of Molecular Dynamics Potential of Mean Force Calculations in the Investigation of Enzyme Catalysis. Methods Enzymol 577:1-29
Chakravorty, Dhruva K; Li, Pengfei; Tran, Trang T et al. (2016) Metal Ion Capture Mechanism of a Copper Metallochaperone. Biochemistry 55:501-9
Li, Pengfei; Song, Lin Frank; Merz Jr, Kenneth M (2015) Systematic Parameterization of Monovalent Ions Employing the Nonbonded Model. J Chem Theory Comput 11:1645-57
Miao, Yipu; Merz Jr, Kenneth M (2015) Acceleration of High Angular Momentum Electron Repulsion Integrals and Integral Derivatives on Graphics Processing Units. J Chem Theory Comput 11:1449-62
Li, Pengfei; Song, Lin Frank; Merz Jr, Kenneth M (2015) Parameterization of highly charged metal ions using the 12-6-4 LJ-type nonbonded model in explicit water. J Phys Chem B 119:883-95
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Pan, Li-Li; Yang, Yue; Merz Jr, Kenneth M (2014) Origin of product selectivity in a prenyl transfer reaction from the same intermediate: exploration of multiple FtmPT1-catalyzed prenyl transfer pathways. Biochemistry 53:6126-38

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