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使用连接量子力学(QM)和分子力学(MM)引擎的新界面程序对生物大分子进行QM/MM混合计算。

QM/MM hybrid calculation of biological macromolecules using a new interface program connecting QM and MM engines.

作者信息

Hagiwara Yohsuke, Ohta Takehiro, Tateno Masaru

机构信息

Graduate School of Pure and Applied Sciences, University of Tsukuba, Tennodai 1-1-1, Tsukuba Science City, Ibaraki 305-8571, Japan. Center for Computational Sciences, University of Tsukuba, Tennodai 1-1-1, Tsukuba Science City, Ibaraki 305-8577, Japan.

出版信息

J Phys Condens Matter. 2009 Feb 11;21(6):064234. doi: 10.1088/0953-8984/21/6/064234. Epub 2009 Jan 20.

Abstract

An interface program connecting a quantum mechanics (QM) calculation engine, GAMESS, and a molecular mechanics (MM) calculation engine, AMBER, has been developed for QM/MM hybrid calculations. A protein-DNA complex is used as a test system to investigate the following two types of QM/MM schemes. In a 'subtractive' scheme, electrostatic interactions between QM/MM regions are truncated in QM calculations; in an 'additive' scheme, long-range electrostatic interactions within a cut-off distance from QM regions are introduced into one-electron integration terms of a QM Hamiltonian. In these calculations, 338 atoms are assigned as QM atoms using Hartree-Fock (HF)/density functional theory (DFT) hybrid all-electron calculations. By comparing the results of the additive and subtractive schemes, it is found that electronic structures are perturbed significantly by the introduction of MM partial charges surrounding QM regions, suggesting that biological processes occurring in functional sites are modulated by the surrounding structures. This also indicates that the effects of long-range electrostatic interactions involved in the QM Hamiltonian are crucial for accurate descriptions of electronic structures of biological macromolecules.

摘要

已开发出一种接口程序,用于连接量子力学(QM)计算引擎GAMESS和分子力学(MM)计算引擎AMBER,以进行QM/MM混合计算。使用蛋白质-DNA复合物作为测试系统来研究以下两种QM/MM方案。在“减法”方案中,QM计算中QM/MM区域之间的静电相互作用被截断;在“加法”方案中,距QM区域截止距离内的长程静电相互作用被引入QM哈密顿量的单电子积分项中。在这些计算中,使用Hartree-Fock(HF)/密度泛函理论(DFT)混合全电子计算将338个原子指定为QM原子。通过比较加法和减法方案的结果,发现QM区域周围MM部分电荷的引入会显著扰动电子结构,这表明功能位点中发生的生物过程受到周围结构的调节。这也表明,QM哈密顿量中涉及的长程静电相互作用对于准确描述生物大分子的电子结构至关重要。

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