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对称二聚体中协同性的连锁功能起源

Linked-function origins of cooperativity in a symmetrical dimer.

作者信息

Reinhart G D

机构信息

Department of Chemistry, University of Oklahoma, Norman 73019.

出版信息

Biophys Chem. 1988 Jun;30(2):159-72. doi: 10.1016/0301-4622(88)85013-0.

Abstract

The thermodynamic origins of substrate binding cooperativity in a dimeric enzyme that can bind one substrate (A) and one allosteric ligand (X) to each of two identical subunits are discussed. It is assumed that maximal activity is not subject to allosteric modification and that the substrates and allosteric ligands achieve binding equilibrium in the steady state. Each uniquely ligated form is assumed to be capable of exhibiting unique binding properties, and only the principles of thermodynamic linkage are used to constrain the system further. The explicit relationship between the Hill coefficient, the concentration of X, and the magnitudes of the relevant coupling free energies and dissociation constants is derived. In the absence of X only the homotropic coupling between substrate sites contributes to a nonhyperbolic substrate saturation profile. An allosteric ligand, X, can alter the cooperativity in two distinct ways, one mechanism being manifested when X is saturating and the only only when X is present at saturating concentrations. By evaluating the concentration of substrate required to produce half-maximal velocity as a function of [X], as well as the Hill coefficients when X is absent and fully saturating, the dissociation and coupling constants most important for understanding the mechanisms of allosteric action in an enzyme of this type can be determined.

摘要

本文讨论了一种二聚体酶中底物结合协同性的热力学起源,该酶的两个相同亚基各自可结合一个底物(A)和一个变构配体(X)。假设最大活性不受变构修饰影响,且底物和变构配体在稳态下达到结合平衡。假定每种独特的连接形式都能够展现出独特的结合特性,并且仅使用热力学耦合原理对系统进行进一步约束。推导了希尔系数、X的浓度以及相关耦合自由能和解离常数大小之间的明确关系。在没有X的情况下,只有底物位点之间的同促耦合会导致非双曲线型的底物饱和曲线。变构配体X可以通过两种不同方式改变协同性,一种机制在X饱和时表现出来,另一种机制仅在X以饱和浓度存在时出现。通过评估产生半数最大速度所需的底物浓度作为[X]的函数,以及在没有X和X完全饱和时的希尔系数,可以确定对于理解此类酶中变构作用机制最为重要的解离常数和耦合常数。

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