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通过结合一阶和二阶“复制链”方法确定酶反应量子力学/分子力学建模的反应路径。

Reaction path determination for quantum mechanical/molecular mechanical modeling of enzyme reactions by combining first order and second order "chain-of-replicas" methods.

作者信息

Cisneros G Andrés, Liu Haiyan, Lu Zhenyu, Yang Weitao

机构信息

Department of Chemistry, Duke University, Durham, North Carolina 27708-0346, USA.

出版信息

J Chem Phys. 2005 Mar 15;122(11):114502. doi: 10.1063/1.1860560.

Abstract

A two-step procedure for the determination of reaction paths in enzyme systems is presented. This procedure combines two chain-of-states methods: a quantum mechanical/molecular mechanical (QM/MM) implementation of the nudged elastic band (NEB) method and a second order parallel path optimizer method both recently developed in our laboratory. In the first step, a reaction path determination is performed with the NEB method, along with a restrained minimization procedure for the MM environment to obtain a first approximation to the reaction path. In the second step, the calculated path is refined with the parallel path optimizer method. By combining these two methods the reaction paths are determined accurately, and in addition, the number of path optimization iterations are significantly reduced. This procedure is tested by calculating both steps of the isomerization of 2-oxo-4-hexenedioate by 4-oxalocrotonate tautomerase, which have been previously determined by our group. The calculated paths agree with the previously reported results and we obtain a reduction of 45%-55% in the number of path optimization cycles.

摘要

本文提出了一种用于确定酶系统中反应路径的两步法。该方法结合了两种状态链方法:我们实验室最近开发的推挤弹性带(NEB)方法的量子力学/分子力学(QM/MM)实现以及二阶并行路径优化器方法。第一步,使用NEB方法进行反应路径确定,并对MM环境进行约束最小化程序,以获得反应路径的初步近似值。第二步,使用并行路径优化器方法对计算出的路径进行优化。通过结合这两种方法,可以准确确定反应路径,此外,路径优化迭代次数也显著减少。通过计算4-氧代巴豆酸互变异构酶催化2-氧代-4-己烯二酸异构化的两个步骤来测试该程序,这两个步骤先前已由我们的团队确定。计算出的路径与先前报道的结果一致,并且我们将路径优化循环次数减少了45%-55%。

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