A regulatory motif of fundamental importance to metabolic control is the allosteric modification of enzymatic activity. The long term objective of this application is to increase our understanding of the mechanisms by which allosteric ligands are able to modify enzymatic activity through binding to sites on the enzyme removed from the active site. In particular we are interested in systems in which the allosteric ligands achieve their effects by altering the affinity of enzyme for its substrate. We specifically propose to study three different allosteric systems: prokaryotic phosphofructokinase (PFK) isolated from both Escherichia coli and Bacillus stearothermophilus; carbamoyl phosphate synthetase (CPS) from E. Coli; and NAD-dependent isocitrate dehydrogenase (ICDH) obtained from beef heart mitochondria. All of these enzymes fulfill important regulatory niches in metabolism. Even more importantly for the objectives of this application, however, they present opportunities for answering mechanistic questions that have general relevance to many other allosteric enzymes. By studying these enzymes we hope to be able to answer several questions regarding allosteric response including the following: 1) Is it appropriate to view allosteric behavior in terms of a two-state model even when two X-ray crystal structures are known? 2) Can temperature alter the nature as well as the magnitude of allosteric response? 3) How can two structurally similar ligands have opposite allosteric effects when binding to the same site? and 4) Can a single quantitative model be derived to explain the actions of an allosteric ligand that achieves its effects by altering both the tertiary conformation and the aggregation state of an enzyme? Our approach begins with a systematic and thorough linked-function characterization of the actions of an allosteric ligand. This analysis yields terms that quantify not only the affinity of the substrate and effector ligand, but also the nature and magnitude of the allosteric influence. By monitoring the changes induced in these parameters by modifications of an experimental variable; such as ligand structure, enzyme structure, temperature, enzyme concentration, etc.; insight can be gained into the relationship between the experimental variable and the actions of the allosteric ligand. This approach will be complemented by physical studies; notably fluorescence intensity, spectral distribution, polarization, and lifetime measurements of intrinsic tryptophan residues and covalently attached extrinsic fluorescent probes; to further define the structural consequences resulting from allosteric ligand binding.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM033216-09
Application #
3282624
Study Section
Biochemistry Study Section (BIO)
Project Start
1983-08-01
Project End
1994-06-30
Budget Start
1992-07-01
Budget End
1993-06-30
Support Year
9
Fiscal Year
1992
Total Cost
Indirect Cost
Name
University of Oklahoma Norman
Department
Type
Schools of Arts and Sciences
DUNS #
848348348
City
Norman
State
OK
Country
United States
Zip Code
73019
Whitaker, Amy M; Reinhart, Gregory D (2016) The effect of introducing small cavities on the allosteric inhibition of phosphofructokinase from Bacillus stearothermophilus. Arch Biochem Biophys 607:1-6
McGresham, Maria S; Reinhart, Gregory D (2015) Enhancing allosteric inhibition in Thermus thermophilus Phosphofructokinase. Biochemistry 54:952-8
McGresham, Maria S; Lovingshimer, Michelle; Reinhart, Gregory D (2014) Allosteric regulation in phosphofructokinase from the extreme thermophile Thermus thermophilus. Biochemistry 53:270-8
Ranjit, Suman; Dvornikov, Alexander; Holland, David A et al. (2014) Application of three-photon excitation FCS to the study of protein oligomerization. J Phys Chem B 118:14627-31
Mosser, Rockann; Reddy, Manchi C M; Bruning, John B et al. (2013) Redefining the role of the quaternary shift in Bacillus stearothermophilus phosphofructokinase. Biochemistry 52:5421-9
Mosser, Rockann; Reddy, Manchi C M; Bruning, John B et al. (2012) Structure of the apo form of Bacillus stearothermophilus phosphofructokinase. Biochemistry 51:769-75
Tie, Cuijuan; Reinhart, Gregory D (2012) An in vivo approach to isolating allosteric pathways using hybrid multimeric proteins. Methods Mol Biol 796:307-15
Wang, Shanzhi; Lasagna, Mauricio; Daubner, S Colette et al. (2011) Fluorescence spectroscopy as a probe of the effect of phosphorylation at serine 40 of tyrosine hydroxylase on the conformation of its regulatory domain. Biochemistry 50:2364-70
Bigley, Andrew N; Reinhart, Gregory D (2010) The N-terminus of glycogen phosphorylase b is not required for activation by adenosine 5'-monophosphate. Biochemistry 49:4760-5
Fenton, Aron W; Reinhart, Gregory D (2009) Disentangling the web of allosteric communication in a homotetramer: heterotropic inhibition in phosphofructokinase from Escherichia coli. Biochemistry 48:12323-8

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