Rethinking fundamentals of enzyme action.

D B Northrop
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引用次数: 41

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.

重新思考酶作用的基本原理。
尽管有一定的局限性,研究人员继续有效地利用植根于稳态动力学的概念,努力得出有关酶催化的机械相关推论。通过重新考虑酶的稳态动力学行为,本文提出了一些新的定义:(a) V/K,最大初始速度除以Michaelis-Menten常数的比值,是底物被捕获成酶复合物的表观速率常数,这些酶复合物注定会在稍后的某个时间点产生产物;(b)最大速度V是底物从捕获的配合物中以自由产物形式释放的表观速率常数;(c) Michaelis-Menten常数K为释放和捕获的表观速率常数之比。本文还探讨了V/K的生理意义,以阐明抗生素耐药性、酶催化中的“完美”概念和催化能力等方面。在试图实现一种明确的方法来比较酶催化的反应与其非催化的参考反应时,也考虑了一致热力学循环的概念基础。这样的努力有望更深入地了解催化力的起源,因为它与反应物基态的稳定、过渡态的稳定以及基态和过渡态的相互稳定有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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