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关于力场、空间边界条件和 QM/MM MD 模拟中 QM 区域大小的变化对模拟的影响。

On the effect of a variation of the force field, spatial boundary condition and size of the QM region in QM/MM MD simulations.

机构信息

Laboratory of Physical Chemistry, Swiss Federal Institute of Technology Zürich, ETH, Zürich 8093, Switzerland.

出版信息

J Comput Chem. 2012 Feb 5;33(4):363-78. doi: 10.1002/jcc.21962. Epub 2011 Dec 19.

Abstract

During the past years, the use of combined quantum-classical, QM/MM, methods for the study of complex biomolecular processes, such as enzymatic reactions and photocycles, has increased considerably. The quality of the results obtained from QM/MM calculations is largely dependent on five aspects to be considered when setting up a molecular model: the QM Hamiltonian, the MM Hamiltonian or force field, the boundary and coupling between the QM and MM regions, the size of the QM region and the boundary condition for the MM region. In this study, we systematically investigate the influence of a variation of the molecular mechanics force field and the size of the QM region in QM/MM MD simulations on properties of the photoactive part of the blue light photoreceptor protein AppA. For comparison, we additionally performed classical MD simulations and studied the effect of a variation of the type of spatial boundary condition. The classical boundary conditions and the force field used in a QM/MM MD simulation are shown to have non-neglegible effects upon the structural and energetic properties of the protein which makes it advisable to minimize computational artifacts in QM/MM MD simulations by application of periodic boundary conditions and a thermodynamically calibrated force field. A comparison of the structural and energetic properties of MD simulations starting from two alternative, different X-ray structures for the blue light utilizing flavin protein in its dark state indicates a slight preference of the two force fields used for the so-called Anderson structure over the Jung structure.

摘要

在过去的几年中,使用组合量子经典、QM/MM 方法来研究复杂的生物分子过程,如酶反应和光循环,已经有了相当大的增加。QM/MM 计算得到的结果的质量在很大程度上取决于在建立分子模型时需要考虑的五个方面:QM 哈密顿量、MM 哈密顿量或力场、QM 和 MM 区域之间的边界和耦合、QM 区域的大小以及 MM 区域的边界条件。在这项研究中,我们系统地研究了分子力学力场的变化和 QM/MM MD 模拟中 QM 区域大小的变化对蓝光光受体蛋白 AppA 的光活性部分性质的影响。为了进行比较,我们还进行了经典 MD 模拟,并研究了空间边界条件类型变化的影响。结果表明,经典边界条件和 QM/MM MD 模拟中使用的力场对蛋白质的结构和能量性质有不可忽视的影响,这使得通过应用周期性边界条件和热力学校准力场最小化 QM/MM MD 模拟中的计算伪影是明智的。从蓝光利用黄素蛋白处于黑暗状态的两种不同的 X 射线结构开始的 MD 模拟的结构和能量性质的比较表明,两种力场对所谓的 Anderson 结构的偏好略高于 Jung 结构。

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