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Kinetics and mechanism for enzyme-catalyzed reactions of substrate pieces

  • SUNY Buffalo

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

5 Scopus citations

Abstract

The most important difference between enzyme and small molecule catalysts is that only enzymes utilize the large intrinsic binding energies of nonreacting portions of the substrate in stabilization of the transition state for the catalyzed reaction. A general protocol is described to determine the intrinsic phosphodianion binding energy for enzymatic catalysis of reactions of phosphate monoester substrates, and the intrinsic phosphite dianion binding energy in activation of enzymes for catalysis of phosphodianion truncated substrates, from the kinetic parameters for enzyme-catalyzed reactions of whole and truncated substrates. The enzyme-catalyzed reactions so-far documented that utilize dianion binding interactions for enzyme activation; and, their phosphodianion truncated substrates are summarized. A model for the utilization of dianion binding interactions for enzyme activation is described. The methods for the determination of the kinetic parameters for enzyme-catalyzed reactions of whole and truncated substrates, from initial velocity data, are described and illustrated by graphical plots of kinetic data. The results of studies on the effect of site-directed amino acid substitutions at orotidine 5′-monophosphate decarboxylase, triosephosphate isomerase, and glycerol-3-phosphate dehydrogenase provide strong support for the proposal that these enzymes utilize binding interactions with the substrate phosphodianion to hold the protein catalysts in reactive closed conformations.

Original languageEnglish
Title of host publicationNew Experimental Probes for Enzyme Specificity and Mechanism
EditorsJohn P. Richard, Graham R. Moran
PublisherAcademic Press Inc.
Pages95-126
Number of pages32
ISBN (Print)9780443152764
DOIs
StatePublished - Jan 2023

Publication series

NameMethods in Enzymology
Volume685
ISSN (Print)0076-6879
ISSN (Electronic)1557-7988

Keywords

  • Conformational change
  • Decarboxylation
  • Enzyme activation
  • Enzyme catalysis
  • Hydride transfer
  • Phosphoryl transfer
  • Proton transfer

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