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蛋白质动力学及其与功能的关系:几个案例研究及其潜在机制。

Protein dynamics and motions in relation to their functions: several case studies and the underlying mechanisms.

机构信息

a Laboratory for Conservation and Utilization of Bio-Resources & Key Laboratory for Microbial Resources of the Ministry of Education , Yunnan University , Kunming , 650091 , P.R. China .

出版信息

J Biomol Struct Dyn. 2014;32(3):372-93. doi: 10.1080/07391102.2013.770372. Epub 2013 Mar 25.

Abstract

Proteins are dynamic entities in cellular solution with functions governed essentially by their dynamic personalities. We review several dynamics studies on serine protease proteinase K and HIV-1 gp120 envelope glycoprotein to demonstrate the importance of investigating the dynamic behaviors and molecular motions for a complete understanding of their structure-function relationships. Using computer simulations and essential dynamic (ED) analysis approaches, the dynamics data obtained revealed that: (i) proteinase K has highly flexible substrate-binding site, thus supporting the induced-fit or conformational selection mechanism of substrate binding; (ii) Ca(2+) removal from proteinase K increases the global conformational flexibility, decreases the local flexibility of substrate-binding region, and does not influence the thermal motion of catalytic triad, thus explaining the experimentally determined decreased thermal stability, reduced substrate affinity, and almost unchanged catalytic activity upon Ca(2+) removal; (iii) substrate binding affects the large concerted motions of proteinase K, and the resulting dynamic pocket can be connected to substrate binding, orientation, and product release; (iv) amino acid mutations 375 S/W and 423 I/P of HIV-1 gp120 have distinct effects on molecular motions of gp120, facilitating 375 S/W mutant to assume the CD4-bound conformation, while 423 I/P mutant to prefer for CD4-unliganded state. The mechanisms underlying protein dynamics and protein-ligand binding, including the concept of the free energy landscape (FEL) of the protein-solvent system, how the ruggedness and variability of FEL determine protein's dynamics, and how the three ligand-binding models, the lock-and-key, induced-fit, and conformational selection are rationalized based on the FEL theory are discussed in depth.

摘要

蛋白质是细胞溶液中的动态实体,其功能主要受其动态特性支配。我们回顾了几项关于丝氨酸蛋白酶蛋白酶 K 和 HIV-1 gp120 包膜糖蛋白的动力学研究,以证明研究其动态行为和分子运动对于全面了解它们的结构-功能关系的重要性。使用计算机模拟和基本动力学(ED)分析方法,获得的动力学数据表明:(i)蛋白酶 K 具有高度灵活的底物结合位点,因此支持底物结合的诱导契合或构象选择机制;(ii)从蛋白酶 K 中去除 Ca2+会增加整体构象灵活性,降低底物结合区域的局部灵活性,并且不会影响催化三联体的热运动,从而解释了实验确定的 Ca2+去除后热稳定性降低、底物亲和力降低和几乎不变的催化活性;(iii)底物结合会影响蛋白酶 K 的大协同运动,并且由此产生的动态口袋可以与底物结合、取向和产物释放相关联;(iv)HIV-1 gp120 的 375 S/W 和 423 I/P 氨基酸突变对 gp120 的分子运动有明显影响,促进 375 S/W 突变体采用 CD4 结合构象,而 423 I/P 突变体倾向于 CD4 未结合状态。蛋白质动力学和蛋白质-配体结合的机制,包括蛋白质-溶剂系统的自由能景观(FEL)的概念,FEL 的崎岖和可变性如何决定蛋白质的动力学,以及三种配体结合模型,锁和键、诱导契合和构象选择如何基于 FEL 理论合理化进行了深入讨论。

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