The Origins of Enzyme Catalysis and Reactivity: Further Assessments
Asian Journal of Chemical Sciences · pp. 38–47 · Published 24 Mar 2021
10.9734/ajocs/2021/v9i319075Abstract
Alternatives to conventional mechanisms of enzyme catalyzed reactions, although within the ambit of transition state theory, are explored herein. This is driven by reports of a growing number of enzymes forming covalently linked enzyme-substrate intermediates, which clearly deviate from the conventional Michaelis-complex mechanism. It is argued that the formation of the covalent intermediates can be accommodated within the framework of transition state theory and the original Pauling hypothesis. This also obviates the need to invoke intramolecular reactivity to explain enzymic accelerations. Thus, the covalent binding of a substrate distorted towards the transition state, with the binding being fully manifested in the ensuing transition state, would conform to the traditional endergonic pre-equilibrium mechanism. Intriguingly, an alternative exergonic formation of the covalent intermediate would also lead to catalysis: in this case, any of the three steps–covalent binding, turnover or product release–can be rate limiting. Although the exergonic mode has been dismissed previously as leading to a “thermodynamic pit” (Michaelis complex case), this view now needs to be reassessed as it seems inaccurate. Therefore, it remains for the enzyme to stabilize the various transition states via the multifarious mechanisms available to it. The Pauling hypothesis remains vindicated.
References (21)
- 1 Structure and Mechanism in Protein Science [DOI]
- 2 Chemical Kinetics and Dynamics [DOI]
- 3 Organic Chemistry of Enzyme-Catalyzed Reactions [DOI]
- 4 Why Enzymes Are Proficient Catalysts: Beyond the Pauling Paradigm [DOI]
- 5 A Biophysical Perspective on Enzyme Catalysis [DOI]
- 6 From Enzyme Models to Model Enzymes [DOI]
- 7 Deconstructing Covalent Organocatalysis [DOI]
- 8 Lehninger Principles of Biochemistry, 7th ed
- 9 Sub-ångström-resolution crystallography reveals physical distortions that enhance reactivity of a covalent enzymatic intermediate [DOI]
- 10 An Epoxide Intermediate in Glycosidase Catalysis [DOI]
- 11 Analysis of a dual domain phosphoglycosyl transferase reveals a ping-pong mechanism with a covalent enzyme intermediate [DOI]
- 12 On the donor substrate dependence of group‐transfer reactions by hydrolytic enzymes: Insight from kinetic analysis of sucrose phosphorylase‐catalyzed transglycosylation [DOI]
- 13 Structural analysis and reaction mechanism of the disproportionating enzyme (D‐enzyme) from potato [DOI]
- 14 Covalent Intermediates and Enzyme Proficiency [DOI]
- 15 Ser-796 of β-galactosidase (Escherichia coli) plays a key role in maintaining a balance between the opened and closed conformations of the catalytically important active site loop [DOI]
- 16 Covalent bond changes as a driving force in enzyme catalysis [DOI]
- 17 Intramolecularity and enzyme modelling: a critique [DOI]
- 18 Understanding Enzymic Reactivity – New Directions and Approaches [DOI]
- 19 Reformulation of activated complex theory
- 20 On the presumed kinetic consequences of pre-equilibrium. Implications for the Michaelis-Menten equation [DOI]
- 21 From Enzyme Models to Model Enzymes [DOI]
Cited by 3
Sosale Chandrasekhar · Asian Journal of Chemical Sciences · 2021
S. Chandrasekhar · 2021
Showing 2 of 3 known citations — external sources report more than can currently be individually listed.
Related research
- Understanding Enzymic Reactivity – New Directions and Approaches — shares topic coverage
Article metrics
Real usage data collected on this platform.
0
Page views
0
PDF downloads
0
Outbound clicks
3
Citations
Views by country
Approximate, from request IP at view time — not citizenship or institution. Countries with fewer than 5 views are grouped as "Other".
No views recorded yet.
Traffic sources
Referring site, by host.
No traffic recorded yet.
Views and downloads exclude known bots/crawlers. Citations combines this platform's own DOI-resolved index with each external source's own reported total — see Cited by above for individually listed citing works. Last refreshed 0 seconds ago.