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用于计算溶液和酶中化学反应动力学同位素效应的混合量子与经典方法。

Hybrid quantum and classical methods for computing kinetic isotope effects of chemical reactions in solutions and in enzymes.

作者信息

Gao Jiali, Major Dan T, Fan Yao, Lin Yen-Lin, Ma Shuhua, Wong Kin-Yiu

机构信息

Department of Chemistry and Supercomputer Institute, University of Minnesota, Minneapolis, MN, USA.

出版信息

Methods Mol Biol. 2008;443:37-62. doi: 10.1007/978-1-59745-177-2_3.

Abstract

A method for incorporating quantum mechanics into enzyme kinetics modeling is presented. Three aspects are emphasized: 1) combined quantum mechanical and molecular mechanical methods are used to represent the potential energy surface for modeling bond forming and breaking processes, 2) instantaneous normal mode analyses are used to incorporate quantum vibrational free energies to the classical potential of mean force, and 3) multidimensional tunneling methods are used to estimate quantum effects on the reaction coordinate motion. Centroid path integral simulations are described to make quantum corrections to the classical potential of mean force. In this method, the nuclear quantum vibrational and tunneling contributions are not separable. An integrated centroid path integral-free energy perturbation and umbrella sampling (PI-FEP/UM) method along with a bisection sampling procedure was summarized, which provides an accurate, easily convergent method for computing kinetic isotope effects for chemical reactions in solution and in enzymes. In the ensemble-averaged variational transition state theory with multidimensional tunneling (EA-VTST/MT), these three aspects of quantum mechanical effects can be individually treated, providing useful insights into the mechanism of enzymatic reactions. These methods are illustrated by applications to a model process in the gas phase, the decarboxylation reaction of N-methyl picolinate in water, and the proton abstraction and reprotonation process catalyzed by alanine racemase. These examples show that the incorporation of quantum mechanical effects is essential for enzyme kinetics simulations.

摘要

本文提出了一种将量子力学纳入酶动力学建模的方法。重点强调了三个方面:1)采用量子力学与分子力学相结合的方法来表示用于模拟键形成和断裂过程的势能面;2)利用瞬时简正模式分析将量子振动自由能纳入经典平均力势;3)采用多维隧穿方法来估计量子效应在反应坐标运动上的影响。描述了质心路径积分模拟,以便对经典平均力势进行量子修正。在该方法中,核量子振动和隧穿贡献是不可分离的。总结了一种集成的质心路径积分-自由能微扰与伞形采样(PI-FEP/UM)方法以及一种二分采样程序,该方法为计算溶液中和酶中化学反应的动力学同位素效应提供了一种准确且易于收敛的方法。在具有多维隧穿的系综平均变分过渡态理论(EA-VTST/MT)中,可以分别处理量子力学效应的这三个方面,从而为酶促反应机制提供有用的见解。通过将这些方法应用于气相中的一个模型过程、水中N-甲基吡啶甲酸的脱羧反应以及丙氨酸消旋酶催化的质子抽取和再质子化过程来说明这些方法。这些例子表明,纳入量子力学效应对于酶动力学模拟至关重要。

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