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分子模拟中蛋白质-蛋白质界面保守残基的受限流动性

Restricted mobility of conserved residues in protein-protein interfaces in molecular simulations.

作者信息

Yogurtcu Osman N, Erdemli S Bora, Nussinov Ruth, Turkay Metin, Keskin Ozlem

机构信息

Koc University Center for Computational Biology and Bioinformatics and College of Engineering Rumelifeneri Yolu, Istanbul, Turkey.

出版信息

Biophys J. 2008 May 1;94(9):3475-85. doi: 10.1529/biophysj.107.114835. Epub 2008 Jan 28.

Abstract

Conserved residues in protein-protein interfaces correlate with residue hot-spots. To obtain insight into their roles, we have studied their mobility. We have performed 39 explicit solvent simulations of 15 complexes and their monomers, with the interfaces varying in size, shape, and function. The dynamic behavior of conserved residues in unbound monomers illustrates significantly lower flexibility as compared to their environment, suggesting that already before binding they are constrained in a boundlike configuration. To understand this behavior, we have analyzed the inter- and intrachain hydrogen-bond residence-time in the interfaces. We find that conserved residues are not involved significantly in hydrogen bonds across the interface as compared to nonconserved. However, the monomer simulations reveal that conserved residues contribute dominantly to hydrogen-bond formation before binding. Packing of conserved residues across the trajectories is significantly higher before and after the binding, rationalizing their lower mobility. Backbone torsional angle distributions show that conserved residues assume restricted regions of space and the most visited conformations in the bound and unbound trajectories are similar, suggesting that conserved residues are preorganized. Combined with previous studies, we conclude that conserved residues, hot spots, anchor, and interface-buried residues may be similar residues, fulfilling similar roles.

摘要

蛋白质-蛋白质界面中的保守残基与残基热点相关。为深入了解它们的作用,我们研究了它们的流动性。我们对15个复合物及其单体进行了39次显式溶剂模拟,其界面在大小、形状和功能上各不相同。未结合单体中保守残基的动态行为表明,与周围环境相比,其灵活性显著更低,这表明在结合之前它们就已被限制在类似结合的构象中。为理解这种行为,我们分析了界面中链间和链内氢键的驻留时间。我们发现,与非保守残基相比,保守残基在跨界面的氢键中参与程度并不显著。然而,单体模拟显示,保守残基在结合前对氢键形成起主要作用。在整个轨迹中,保守残基在结合前后的堆积明显更高,这解释了它们较低的流动性。主链扭转角分布表明,保守残基占据有限的空间区域,结合和未结合轨迹中最常出现的构象相似,这表明保守残基是预先组织好的。结合之前的研究,我们得出结论,保守残基、热点、锚定残基和界面埋藏残基可能是相似的残基,发挥着相似的作用。

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