» Articles » PMID: 10218105

Rethinking Fundamentals of Enzyme Action

Overview
Date 1999 Apr 28
PMID 10218105
Citations 10
Authors
Affiliations
Soon will be listed here.
Abstract

Despite certain limitations, investigators continue to gainfully employ concepts rooted in steady-state kinetics in efforts to draw mechanistically relevant inferences about enzyme catalysis. By reconsidering steady-state enzyme kinetic behavior, this review develops ideas that allow one to arrive at the following new definitions: (a) V/K, the ratio of the maximal initial velocity divided by the Michaelis-Menten constant, is the apparent rate constant for the capture of substrate into enzyme complexes that are destined to yield product(s) at some later point in time; (b) the maximal velocity V is the apparent rate constant for the release of substrate from captured complexes in the form of free product(s); and (c) the Michaelis-Menten constant K is the ratio of the apparent rate constants for release and capture. The physiologic significance of V/K is also explored to illuminate aspects of antibiotic resistance, the concept of "perfection" in enzyme catalysis, and catalytic proficiency. The conceptual basis of congruent thermodynamic cycles is also considered in an attempt to achieve an unambiguous way for comparing an enzyme-catalyzed reaction with its uncatalyzed reference reaction. Such efforts promise a deeper understanding of the origins of catalytic power, as it relates to stabilization of the reactant ground state, stabilization of the transition state, and reciprocal stabilizations of ground and transition states.

Citing Articles

How enzymes harness highly unfavorable proton transfer reactions.

Silverstein T Protein Sci. 2021; 30(4):735-744.

PMID: 33554401 PMC: 7980525. DOI: 10.1002/pro.4037.


5 S,15 S-Dihydroperoxyeicosatetraenoic Acid (5,15-diHpETE) as a Lipoxin Intermediate: Reactivity and Kinetics with Human Leukocyte 5-Lipoxygenase, Platelet 12-Lipoxygenase, and Reticulocyte 15-Lipoxygenase-1.

Green A, Freedman C, Tena J, Tourdot B, Liu B, Holinstat M Biochemistry. 2018; 57(48):6726-6734.

PMID: 30407793 PMC: 7270142. DOI: 10.1021/acs.biochem.8b00889.


Phylogenetic sequence analysis and functional studies reveal compensatory amino acid substitutions in loop 2 of human ribonucleotide reductase.

Knappenberger A, Grandhi S, Sheth R, Ahmad M, Viswanathan R, Harris M J Biol Chem. 2017; 292(40):16463-16476.

PMID: 28808063 PMC: 5633107. DOI: 10.1074/jbc.M117.798769.


Determination of relative rate constants for in vitro RNA processing reactions by internal competition.

Lin H, Yandek L, Gjermeni I, Harris M Anal Biochem. 2014; 467:54-61.

PMID: 25173512 PMC: 4252809. DOI: 10.1016/j.ab.2014.08.022.


Alternative substrate kinetics of Escherichia coli ribonuclease P: determination of relative rate constants by internal competition.

Yandek L, Lin H, Harris M J Biol Chem. 2013; 288(12):8342-8354.

PMID: 23362254 PMC: 3605652. DOI: 10.1074/jbc.M112.435420.