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关联变构与刚性。

Correlating allostery with rigidity.

作者信息

Rader A J, Brown Stephen M

机构信息

Department of Physics, Indiana University-Purdue University Indianapolis, Indianapolis, IN 46202, USA.

出版信息

Mol Biosyst. 2011 Feb;7(2):464-71. doi: 10.1039/c0mb00054j. Epub 2010 Nov 8.

Abstract

Allosteric proteins demonstrate the phenomenon of a ligand binding to a protein at a regulatory or effector site and thereby changing the chemical affinity of the catalytic site. As such, allostery is extremely important biologically as a regulatory mechanism for molecular concentrations in many cellular processes. One particularly interesting feature of allostery is that often the catalytic and effector sites are separated by a large distance. Structural comparisons of allosteric proteins resolved in both inactive and active states indicate that a variety of structural rearrangement and changes in motions may contribute to general allosteric behavior. In general it is expected that the coupling of catalytic and regulatory sites is responsible for allosteric behavior. We utilize a novel examination of allostery using rigidity analysis of the underlying graph of the protein structures. Our results indicate a general global change in rigidity associated with allosteric transitions where the R state is more rigid than the T state. A set of allosteric proteins with heterotropic interactions is used to test the hypothesis that catalytic and effector sites are structurally coupled. Observation of a rigid path connecting the effector and catalytic sites in 68.75% of the structures points to rigidity as a means by which the distal sites communicate with each other and so contribute to allosteric regulation. Thus structural rigidity is shown to be a fundamental underlying property that promotes cooperativity and non-locality seen in allostery.

摘要

变构蛋白表现出一种现象,即配体在调节或效应位点与蛋白质结合,从而改变催化位点的化学亲和力。因此,变构作为许多细胞过程中分子浓度的一种调节机制,在生物学上极其重要。变构的一个特别有趣的特征是,催化位点和效应位点通常相隔很远的距离。对处于非活性和活性状态的变构蛋白进行的结构比较表明,各种结构重排和运动变化可能有助于一般的变构行为。一般来说,预计催化位点和调节位点的偶联是变构行为的原因。我们利用对蛋白质结构基础图的刚性分析对变构进行了新颖的研究。我们的结果表明,与变构转变相关的刚性普遍存在全局变化,其中R态比T态更刚性。一组具有异源相互作用的变构蛋白被用于检验催化位点和效应位点在结构上偶联的假设。在68.75%的结构中观察到连接效应位点和催化位点的刚性路径,这表明刚性是远端位点相互通信并因此有助于变构调节的一种方式。因此,结构刚性被证明是促进变构中协同性和非局部性的一种基本潜在特性。

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