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长程蛋白质动力学在不同胸苷酸合成酶催化反应中的作用。

Role of long-range protein dynamics in different thymidylate synthase catalyzed reactions.

作者信息

Abeysinghe Thelma, Kohen Amnon

机构信息

Department of Chemistry, University of Iowa, Iowa City, IA 52242-1727, USA.

出版信息

Int J Mol Sci. 2015 Apr 1;16(4):7304-19. doi: 10.3390/ijms16047304.

Abstract

Recent studies of Escherichia coli thymidylate synthase (ecTSase) showed that a highly conserved residue, Y209, that is located 8 Å away from the reaction site, plays a key role in the protein's dynamics. Those crystallographic studies indicated that Y209W mutant is a structurally identical but dynamically altered relative to the wild type (WT) enzyme, and that its turnover catalytic rate governed by a slow hydride-transfer has been affected. The most challenging test of an examination of a fast chemical conversion that precedes the rate-limiting step has been achieved here. The physical nature of both fast and slow C-H bond activations have been compared between the WT and mutant by means of observed and intrinsic kinetic isotope effects (KIEs) and their temperature dependence. The findings indicate that the proton abstraction step has not been altered as much as the hydride transfer step. Additionally, the comparison indicated that other kinetic steps in the TSase catalyzed reaction were substantially affected, including the order of the substrate binding. Enigmatically, although Y209 is H-bonded to 3'-OH of 2'-deoxyuridine-5'-mono-phosphate (dUMP), its altered dynamics is more pronounced on the binding of the remote cofactor, (6R)-N5,N10-methylene-5,6,7,8-tetrahydrofolate (CH2H4folate), revealing the importance of long-range dynamics of the enzymatic complex and its catalytic function.

摘要

近期对大肠杆菌胸苷酸合成酶(ecTSase)的研究表明,一个高度保守的残基Y209,位于距反应位点8 Å处,在该蛋白质的动力学中起关键作用。那些晶体学研究表明,Y209W突变体与野生型(WT)酶在结构上相同,但动力学发生了改变,并且其由缓慢的氢化物转移控制的周转催化速率受到了影响。在此实现了对限速步骤之前快速化学转化检查的最具挑战性的测试。通过观察到的和内在的动力学同位素效应(KIEs)及其温度依赖性,比较了WT和突变体之间快速和缓慢C-H键活化的物理性质。研究结果表明,质子提取步骤的改变程度不如氢化物转移步骤。此外,比较表明,TSase催化反应中的其他动力学步骤也受到了显著影响,包括底物结合的顺序。奇怪的是,尽管Y209与2'-脱氧尿苷-5'-单磷酸(dUMP)的3'-OH形成氢键,但其动力学的改变在远程辅因子(6R)-N5,N10-亚甲基-5,6,7,8-四氢叶酸(CH2H4folate)结合时更为明显,揭示了酶复合物远程动力学及其催化功能的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aed5/4425018/e4ff0f85d8c0/ijms-16-07304-g001.jpg

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