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Conformational dependence of a protein kinase phosphate transfer reaction. | LitMetric

Conformational dependence of a protein kinase phosphate transfer reaction.

Proc Natl Acad Sci U S A

Department of Chemistry and Biochemistry, University of Texas, 1 University Station A5300, Austin, TX 78712-0165, USA.

Published: October 2005

AI Article Synopsis

  • The study uses density functional theory to analyze atomic motions and energy changes in a phosphate transfer reaction mediated by cAMP-dependent protein kinase.
  • It finds that the transition-state conformation (TC) of the protein is nearly isoenergetic with reactants and products, but phosphate transfer is energetically unfavorable in the reactant conformation (RC), with a significant energy barrier.
  • The results suggest that the reaction is rapid and reversible in the TC, and small conformational changes in the protein's active site can influence the reaction's likelihood.

Article Abstract

Atomic motions and energetics for a phosphate transfer reaction catalyzed by the cAMP-dependent protein kinase are calculated by plane-wave density functional theory, starting from structures of proteins crystallized in both the reactant conformation (RC) and the transition-state conformation (TC). In TC, we calculate that the reactants and products are nearly isoenergetic with a 20-kJ/mol barrier, whereas phosphate transfer is unfavorable by 120 kJ/mol in the RC, with an even higher barrier. With the protein in TC, the motions involved in reaction are small, with only P(gamma) and the catalytic proton moving >0.5 A. Examination of the structures reveals that in the RC the active site cleft is not completely closed and there is insufficient space for the phosphorylated serine residue in the product state. Together, these observations imply that the phosphate transfer reaction occurs rapidly and reversibly in a particular conformation of the protein, and that the reaction can be gated by changes of a few tenths of an angstrom in the catalytic site.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC1255735PMC
http://dx.doi.org/10.1073/pnas.0506425102DOI Listing

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