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延伸因子Tu催化鸟苷三磷酸(GTP)水解的化学步骤机制。

Mechanism of the chemical step for the guanosine triphosphate (GTP) hydrolysis catalyzed by elongation factor Tu.

作者信息

Grigorenko B L, Shadrina M S, Topol I A, Collins J R, Nemukhin A V

机构信息

Department of Chemistry, M.V. Lomonosov Moscow State University, Leninskie Gory, 1/3, Moscow 119991, Russian Federation.

出版信息

Biochim Biophys Acta. 2008 Dec;1784(12):1908-17. doi: 10.1016/j.bbapap.2008.08.003. Epub 2008 Aug 16.

Abstract

Elongation factor Tu (EF-Tu), the protein responsible for delivering aminoacyl-tRNAs (aa-tRNAs) to ribosomal A site during translation, belongs to the group of guanosine-nucleotide (GTP/GDP) binding proteins. Its active 'on'-state corresponds to the GTP-bound form, while the inactive 'off'-state corresponds to the GDP-bound form. In this work we focus on the chemical step, GTP+H(2)O-->GDP+Pi, of the hydrolysis mechanism. We apply molecular modeling tools including molecular dynamics simulations and the combined quantum mechanical-molecular mechanical calculations for estimates of reaction energy profiles for two possible arrangements of switch II regions of EF-Tu. In the first case we presumably mimic binding of the ternary complex EF-Tu.GTP.aa-tRNA to the ribosome and allow the histidine (His85) side chain of the protein to approach the reaction active site. In the second case, corresponding to the GTP hydrolysis by EF-Tu alone, the side chain of His85 stays away from the active site, and the chemical reaction GTP+H(2)O-->GDP+Pi proceeds without participation of the histidine but through water molecules. In agreement with the experimental observations which distinguish rate constants for the fast chemical reaction in EF-Tu.GTP.aa-tRNA.ribosome and the slow spontaneous GTP hydrolysis in EF-Tu, we show that the activation energy barrier for the first scenario is considerably lower compared to that of the second case.

摘要

延伸因子Tu(EF-Tu)是一种在翻译过程中负责将氨酰-tRNA(aa-tRNA)递送至核糖体A位点的蛋白质,属于鸟苷核苷酸(GTP/GDP)结合蛋白家族。其活性的“开启”状态对应于结合GTP的形式,而无活性的“关闭”状态对应于结合GDP的形式。在这项工作中,我们聚焦于水解机制的化学步骤,即GTP + H₂O → GDP + Pi。我们应用分子建模工具,包括分子动力学模拟和量子力学-分子力学联合计算,来估计EF-Tu的开关II区域两种可能排列方式的反应能量分布。在第一种情况下,我们大概模拟三元复合物EF-Tu·GTP·aa-tRNA与核糖体的结合,并使蛋白质的组氨酸(His85)侧链靠近反应活性位点。在第二种情况下,对应于EF-Tu单独进行的GTP水解,His85的侧链远离活性位点,化学反应GTP + H₂O → GDP + Pi在没有组氨酸参与的情况下通过水分子进行。与区分EF-Tu·GTP·aa-tRNA·核糖体中快速化学反应的速率常数和EF-Tu中缓慢自发GTP水解速率常数的实验观察结果一致,我们表明第一种情况的活化能垒比第二种情况低得多。

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