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从终点结构看与生物大分子构象变化相关的能量景观。

Energy landscapes associated with macromolecular conformational changes from endpoint structures.

机构信息

Biocrystallography Unit, Division of Immunology, Transplantation, and Infectious Diseases, Scientific Institute San Raffaele, Via Olgettina 58, 20132 Milan, Italy.

出版信息

J Am Chem Soc. 2010 Dec 15;132(49):17570-7. doi: 10.1021/ja107640u. Epub 2010 Nov 17.

Abstract

Conformational changes modulate macromolecular function by promoting the specific binding of ligands (such as in antigen recognition) or the stabilization of transition states in enzymatic reactions. However, quantitative characterization of the energetics underlying dynamic structural interconversions is still challenging and lacks a unified method. Here, we introduce a novel in silico approach based on the combined use of essential dynamics sampling and nonequilibrium free-energy calculations to obtain quantitative data on conformational energy landscapes. This technique allows the unbiased investigation of highly complex rearrangements, and does not require the crucial definition of user-defined collective variables. We show that free-energy values derived from profiles connecting the unliganded and ligand-bound X-ray structures of a bacterial nucleoside hydrolase match the experimental binding constant. This approach also provides first evidence for a rate-limiting character of the conformational transition in this enzyme, and an unexpected role of the protonation state of a single residue in regulating substrate binding and product release.

摘要

构象变化通过促进配体的特异性结合(如抗原识别)或稳定酶反应中的过渡态来调节大分子功能。然而,定量描述动态结构互变背后的能量仍然具有挑战性,并且缺乏统一的方法。在这里,我们介绍了一种新的基于基本动力学采样和非平衡自由能计算相结合的计算方法,以获得构象能量景观的定量数据。该技术允许对高度复杂的重排进行无偏研究,并且不需要关键的用户定义集体变量的定义。我们表明,从连接细菌核苷水解酶的未配体和配体结合的 X 射线结构的轮廓中得出的自由能值与实验结合常数相匹配。该方法还首次提供了该酶中构象转变的限速特征的证据,以及单个残基的质子化状态在调节底物结合和产物释放中的意外作用。

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