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人醛糖还原酶活性位点处电场及振动斯塔克位移的量子力学计算

Quantum mechanical calculation of electric fields and vibrational Stark shifts at active site of human aldose reductase.

作者信息

Wang Xianwei, Zhang John Z H, He Xiao

机构信息

Center for Optics and Optoelectronics Research, College of Science, Zhejiang University of Technology, Hangzhou, Zhejiang 310023, China.

State Key Laboratory of Precision Spectroscopy, Institute of Theoretical and Computational Science, East China Normal University, Shanghai 200062, China.

出版信息

J Chem Phys. 2015 Nov 14;143(18):184111. doi: 10.1063/1.4935176.

Abstract

Recent advance in biophysics has made it possible to directly measure site-specific electric field at internal sites of proteins using molecular probes with C = O or C≡N groups in the context of vibrational Stark effect. These measurements directly probe changes of electric field at specific protein sites due to, e.g., mutation and are very useful in protein design. Computational simulation of the Stark effect based on force fields such as AMBER and OPLS, while providing good insight, shows large errors in comparison to experimental measurement due to inherent difficulties associated with point charge based representation of force fields. In this study, quantum mechanical calculation of protein's internal electrostatic properties and vibrational Stark shifts was carried out by using electrostatically embedded generalized molecular fractionation with conjugate caps method. Quantum calculated change of mutation-induced electric field and vibrational Stark shift is reported at the internal probing site of enzyme human aldose reductase. The quantum result is in much better agreement with experimental data than those predicted by force fields, underscoring the deficiency of traditional point charge models describing intra-protein electrostatic properties.

摘要

生物物理学的最新进展使得在振动斯塔克效应的背景下,使用具有C = O或C≡N基团的分子探针直接测量蛋白质内部位点的特定电场成为可能。这些测量直接探测特定蛋白质位点处由于例如突变引起的电场变化,在蛋白质设计中非常有用。基于诸如AMBER和OPLS等力场的斯塔克效应的计算模拟,虽然能提供很好的见解,但由于与基于点电荷的力场表示相关的固有困难,与实验测量相比显示出较大误差。在本研究中,通过使用静电嵌入共轭帽广义分子分馏方法对蛋白质的内部静电性质和振动斯塔克位移进行了量子力学计算。报道了在酶人醛糖还原酶的内部探测位点处突变诱导的电场和振动斯塔克位移的量子计算变化。量子结果与实验数据的吻合度比力场预测的结果好得多,突出了描述蛋白质内静电性质的传统点电荷模型的不足。

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