Through the broad, long term objectives of this research application we seek to understand the molecular mechanisms of metalloenzyme function, with specific focus on the mechanisms by which biological macromolecules recognize other macromolecular and small organic structures. Systematic investigations are proposed that focus on three major classes of recognition events in biological systems. (1) Protein -Protein Recognition. Here we seek to define the role of specific surface interactions; electrostatic, hydrogen bonding, and hydrophobic free energies provided through surface complimentary, which define the specificity and affinity in the formation of complexes between the metalloproteins involved in electron transfer events in cytochrome P-450 dependent oxygenase catalysis. (2) Protein Small Molecule Recognition. In this Specific Aim we seek to ascertain how the same fundamental forces of electrostatics, hydrogen bonding and the hand - glove fit of a substrate into the active site of an enzyme can give rise to the observed high degree control of regio- and stereo- specificity in cytochrome P-450 catalysis. In this regard we must define the role of protein and substrate motion on the recognition event. (3) Protein - Nucleic Acid Recognition. Again the same fundamental forces control recognition processes, but in this case we focus on our exciting recent discovery of a role for solvent water in mediating hydrogen bond recognition between protein and nucleic acid components. Representative systems in the binding/catalytic class (restriction endonuclease, recombinase) and binding/non-catalytic class (repressor-operator) are proposed for investigation. The question of molecular recognition is a central paradigm of molecular biology, playing central roles in most, if not all, cellular processes. Failed recognition events have been implicated in numerous disease states ranging from flawed control of gene regulation and cellular proliferation, to defects in specific metabolic activities. Historically, questions of molecular recognition have been approached through organic synthesis through actual structural studies of biomolecular complexes. Our proposed research efforts in this competitive renewal make concerted use of broad interdisciplinary tools and techniques. In particular, the use of recombinant DNA technology in concert with advanced biophysical methods has proven to be ideal for understanding the fundamental mechanisms of recognition in metalloenzyme systems. Our thrust in biological oxidations utilizes as exemplary systems the cytochromes P-450 which play great significance in the biotransformations of hepatic and adrenal tissues of humans and a plethora of oxidative metabolism across the plant, animal and archaebacterial kingdoms. Thus, the central problems of metalloenzyme biology, chemistry, and biophysics will be attacked through the selective choice of the tractable systems proposed in this application, and the combined use of recombinant DNA technology and state of the art structure - function characterization in order to place molecular mechanisms on a firm foundation for further scientific development.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM033775-13
Application #
2022009
Study Section
Physical Biochemistry Study Section (PB)
Project Start
1984-12-01
Project End
1998-11-30
Budget Start
1996-12-01
Budget End
1997-11-30
Support Year
13
Fiscal Year
1997
Total Cost
Indirect Cost
Name
University of Illinois Urbana-Champaign
Department
Biochemistry
Type
Schools of Arts and Sciences
DUNS #
041544081
City
Champaign
State
IL
Country
United States
Zip Code
61820
Mak, Piotr J; Duggal, Ruchia; Denisov, Ilia G et al. (2018) Human Cytochrome CYP17A1: The Structural Basis for Compromised Lyase Activity with 17-Hydroxyprogesterone. J Am Chem Soc 140:7324-7331
Denisov, Ilia G; Sligar, Stephen G (2017) Nanodiscs in Membrane Biochemistry and Biophysics. Chem Rev 117:4669-4713
Ye, Xin; McLean, Mark A; Sligar, Stephen G (2016) Phosphatidylinositol 4,5-Bisphosphate Modulates the Affinity of Talin-1 for Phospholipid Bilayers and Activates Its Autoinhibited Form. Biochemistry 55:5038-48
Denisov, Ilia G; Mak, Piotr J; Grinkova, Yelena V et al. (2016) The use of isomeric testosterone dimers to explore allosteric effects in substrate binding to cytochrome P450 CYP3A4. J Inorg Biochem 158:77-85
Reichart, Timothy M; Baksh, Michael M; Rhee, Jin-Kyu et al. (2016) Trimerization of the HIV Transmembrane Domain in Lipid Bilayers Modulates Broadly Neutralizing Antibody Binding. Angew Chem Int Ed Engl 55:2688-92
Carney, Christiane E; Lenov, Ivan L; Baker, Catherine J et al. (2015) Nanodiscs as a Modular Platform for Multimodal MR-Optical Imaging. Bioconjug Chem 26:899-905
Skar-Gislinge, Nicholas; Kynde, Søren A R; Denisov, Ilia G et al. (2015) Small-angle scattering determination of the shape and localization of human cytochrome P450 embedded in a phospholipid nanodisc environment. Acta Crystallogr D Biol Crystallogr 71:2412-21
Denisov, Ilia G; Grinkova, Yelena V; Baylon, Javier L et al. (2015) Mechanism of drug-drug interactions mediated by human cytochrome P450 CYP3A4 monomer. Biochemistry 54:2227-39
Mak, Piotr J; Gregory, Michael C; Denisov, Ilia G et al. (2015) Unveiling the crucial intermediates in androgen production. Proc Natl Acad Sci U S A 112:15856-61
Wilcox, Kyle C; Marunde, Matthew R; Das, Aditi et al. (2015) Nanoscale Synaptic Membrane Mimetic Allows Unbiased High Throughput Screen That Targets Binding Sites for Alzheimer's-Associated A? Oligomers. PLoS One 10:e0125263

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