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用于溶剂化生物分子系统的混合量子力学/分子力学模拟的通用边界势。

A General Boundary Potential for Hybrid QM/MM Simulations of Solvated Biomolecular Systems.

作者信息

Benighaus Tobias, Thiel Walter

机构信息

Max-Planck-Institut für Kohlenforschung, Kaiser-Wilhelm-Platz 1 45470, Mülheim an der Ruhr, Germany.

出版信息

J Chem Theory Comput. 2009 Nov 10;5(11):3114-28. doi: 10.1021/ct900437b.

Abstract

We present a general boundary potential for the efficient and accurate evaluation of electrostatic interactions in hybrid quantum mechanical/molecular mechanical (QM/MM) approaches called solvated macromolecule boundary potential (SMBP), which is designed for QM/MM calculations with any kind of QM method. The SMBP targets QM/MM single-point energy calculations and geometry optimizations. In the SMBP scheme, the outer solvent and macromolecule region is described by a boundary potential obtained with the use of Poisson-Boltzmann calculations (treating the bulk solvent as a dielectric continuum). In the QM calculations, the SMBP is represented by virtual point charges on a surface enclosing the explicitly treated inner region. These charges and their interactions with the QM density are determined through a self-consistent reaction field procedure. The accuracy of the SMBP is evaluated on three diverse test systems: the intramolecular proton transfer of glycine in water, the hydroxylation reaction in p-hydroxybenzoate hydroxylase, and the spin state energy splittings in the pentacoordinated ferric complex of cytochrome P450cam. In the case of solvated glycine, application of the SMBP turns out to be problematic since analogous QM/MM/SMBP and full QM/MM geometry optimizations lead to different close-lying local minima. In both enzymes, the SMBP performs very well and closely reproduces the results from full QM/MM optimizations of these more rigid test systems. Starting from optimized QM/MM/SMBP structures along a reaction path, one can apply the previously implemented generalized solvent boundary potential (GSBP) to sample over MM phase space in QM/MM free energy calculations within the framework of free energy perturbation theory. This reduces the overall computational costs of sampling by 1 order of magnitude while maintaining good accuracy. The combined use of SMBP and GSBP thus allows for efficient QM/MM free energy studies of enzymes.

摘要

我们提出了一种通用边界势,即溶剂化大分子边界势(SMBP),用于在混合量子力学/分子力学(QM/MM)方法中高效准确地评估静电相互作用,该方法适用于任何类型QM方法的QM/MM计算。SMBP旨在用于QM/MM单点能量计算和几何结构优化。在SMBP方案中,外部溶剂和大分子区域由通过泊松-玻尔兹曼计算获得的边界势描述(将本体溶剂视为介电连续体)。在QM计算中,SMBP由包围明确处理的内部区域的表面上的虚拟点电荷表示。这些电荷及其与QM密度的相互作用通过自洽反应场程序确定。在三个不同的测试系统上评估了SMBP的准确性:水中甘氨酸的分子内质子转移、对羟基苯甲酸羟化酶中的羟基化反应以及细胞色素P450cam的五配位铁络合物中的自旋态能量分裂。在溶剂化甘氨酸的情况下,应用SMBP存在问题,因为类似的QM/MM/SMBP和完整的QM/MM几何结构优化会导致不同的近邻局部极小值。在这两种酶中,SMBP表现非常出色,并且紧密再现了这些更刚性测试系统的完整QM/MM优化结果。从沿着反应路径优化的QM/MM/SMBP结构开始,在自由能微扰理论框架内的QM/MM自由能计算中,可以应用先前实现的广义溶剂边界势(GSBP)在MM相空间中进行采样。这在保持良好准确性的同时将采样的总体计算成本降低了1个数量级。因此,SMBP和GSBP的联合使用允许对酶进行高效的QM/MM自由能研究。

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