Challenges in Enzyme Mechanism and Energetics
- 1 June 2003
- journal article
- review article
- Published by Annual Reviews in Annual Review of Biochemistry
- Vol. 72 (1) , 517-571
- https://doi.org/10.1146/annurev.biochem.72.121801.161617
Abstract
▪ Abstract Since the discovery of enzymes as biological catalysts, study of their enormous catalytic power and exquisite specificity has been central to biochemistry. Nevertheless, there is no universally accepted comprehensive description. Rather, numerous proposals have been presented over the past half century. The difficulty in developing a comprehensive description for the catalytic power of enzymes derives from the highly cooperative nature of their energetics, which renders impossible a simple division of mechanistic features and an absolute partitioning of catalytic contributions into independent and energetically additive components. Site-directed mutagenesis has emerged as an enormously powerful approach to probe enzymatic catalysis, illuminating many basic features of enzyme function and behavior. The emphasis of site-directed mutagenesis on the role of individual residues has also, inadvertently, limited experimental and conceptual attention to the fundamentally cooperative nature of enzyme function and energetics. The first part of this review highlights the structural and functional interconnectivity central to enzymatic catalysis. In the second part we ask: What are the features of enzymes that distinguish them from simple chemical catalysts? The answers are presented in conceptual models that, while simplified, help illustrate the vast amount known about how enzymes achieve catalysis. In the last section, we highlight the molecular and energetic questions that remain for future investigation and describe experimental approaches that will be necessary to answer these questions. The promise of advancing and integrating cutting edge conceptual, experimental, and computational tools brings mechanistic enzymology to a new era, one poised for novel fundamental insights into biological catalysis.Keywords
This publication has 98 references indexed in Scilit:
- Brownian motion in a field of force and the diffusion model of chemical reactionsPublished by Elsevier ,2004
- Excavating an Active Site: The Nucleobase Specificity of Ribonuclease ABiochemistry, 2000
- Contribution of Enzyme−Phosphoribosyl Contacts to Catalysis by Orotidine 5‘-Phosphate DecarboxylaseBiochemistry, 2000
- Decomposition of the Free Energy of a System in Terms of Specific InteractionsJournal of Molecular Biology, 1994
- Atomic Resolution (0·83 Å) Crystal Structure of the Hydrophobic Protein Crambin at 130 KJournal of Molecular Biology, 1993
- Reaction of Lactobacillus histidine decarboxylase with L-histidine methyl esterBiochemistry, 1987
- Binding energy and catalysis: a lesson from protein engineering of the tyrosyl-tRNA synthetaseTrends in Biochemical Sciences, 1986
- Mechanism of action of aspartate aminotransferase proposed on the basis of its spatial structureJournal of Molecular Biology, 1984
- “Orbital steering”, entropy, and rate accelerationsBiochemical and Biophysical Research Communications, 1974
- The comparison of non-enzymic and enzymic reaction velocitiesJournal of Theoretical Biology, 1962