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计算配体结合时酮固醇异构酶活性部位中腈探针的振动位移。

Calculation of vibrational shifts of nitrile probes in the active site of ketosteroid isomerase upon ligand binding.

机构信息

Department of Chemistry, University of Illinois at Urbana-Champaign, 600 South Mathews Avenue, Urbana, Illinois 61801, USA.

出版信息

J Am Chem Soc. 2013 Jan 16;135(2):717-25. doi: 10.1021/ja3084384. Epub 2012 Dec 31.

Abstract

The vibrational Stark effect provides insight into the roles of hydrogen bonding, electrostatics, and conformational motions in enzyme catalysis. In a recent application of this approach to the enzyme ketosteroid isomerase (KSI), thiocyanate probes were introduced in site-specific positions throughout the active site. This paper implements a quantum mechanical/molecular mechanical (QM/MM) approach for calculating the vibrational shifts of nitrile (CN) probes in proteins. This methodology is shown to reproduce the experimentally measured vibrational shifts upon binding of the intermediate analogue equilinen to KSI for two different nitrile probe positions. Analysis of the molecular dynamics simulations provides atomistic insight into the roles that key residues play in determining the electrostatic environment and hydrogen-bonding interactions experienced by the nitrile probe. For the M116C-CN probe, equilinen binding reorients an active-site water molecule that is directly hydrogen-bonded to the nitrile probe, resulting in a more linear C≡N--H angle and increasing the CN frequency upon binding. For the F86C-CN probe, equilinen binding orients the Asp103 residue, decreasing the hydrogen-bonding distance between the Asp103 backbone and the nitrile probe and slightly increasing the CN frequency. This QM/MM methodology is applicable to a wide range of biological systems and has the potential to assist in the elucidation of the fundamental principles underlying enzyme catalysis.

摘要

振动斯塔克效应为研究氢键、静电作用和构象运动在酶催化中的作用提供了深入的了解。在最近将这种方法应用于酶酮甾体异构酶(KSI)的研究中,在整个活性位点的特定位置引入了硫氰酸酯探针。本文采用量子力学/分子力学(QM/MM)方法计算了蛋白质中腈(CN)探针的振动位移。该方法成功地再现了实验测量的中间类似物 equilinen 与 KSI 结合时两个不同 CN 探针位置的振动位移。分子动力学模拟的分析为关键残基在确定腈探针所经历的静电环境和氢键相互作用中所起的作用提供了原子水平的见解。对于 M116C-CN 探针,equilinen 结合使直接与腈探针氢键结合的活性位点水分子重新定向,导致 C≡N--H 角更线性,结合时 CN 频率增加。对于 F86C-CN 探针,equilinen 结合使 Asp103 残基定向,减小了 Asp103 骨架与腈探针之间的氢键距离,并略微增加了 CN 频率。这种 QM/MM 方法适用于广泛的生物系统,并有潜力帮助阐明酶催化的基本原理。

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