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具有构象依赖性分布电荷的分子动力学

Molecular Dynamics with Conformationally Dependent, Distributed Charges.

作者信息

Boittier Eric D, Devereux Mike, Meuwly Markus

机构信息

Department of Chemistry, University of Basel, Klingelbergstrasse 80, CH-4056 Basel, Switzerland.

出版信息

J Chem Theory Comput. 2022 Dec 13;18(12):7544-7554. doi: 10.1021/acs.jctc.2c00693. Epub 2022 Nov 8.

Abstract

Accounting for geometry-induced changes in the electronic distribution in molecular simulation is important for capturing effects such as charge flow, charge anisotropy, and polarization. Multipolar force fields have demonstrated their ability to correctly represent chemically significant features such as anisotropy and sigma holes. It has also been shown that off-center point charges offer a compact alternative with similar accuracy. Here, it is demonstrated that allowing relocation of charges within a minimally distributed charge model (MDCM) with respect to their reference atoms is a viable route to capture changes in the molecular charge distribution depending on geometry, i.e., intramolecular polarization. The approach, referred to as "flexible MDCM" (fMDCM), is validated on a number of small molecules and provides accuracies in the electrostatic potential (ESP) of 0.5 kcal/mol on average compared with reference data from electronic structure calculations, whereas MDCM and point charges have root mean squared errors of a factor of 2 to 5 higher. In addition, MD simulations in the ensemble using fMDCM for a box of flexible water molecules with periodic boundary conditions show a width of 0.1 kcal/mol for the fluctuation around the mean at 300 K on the 10 ns time scale. For water, the equilibrium valence angle in the gas phase is found to increase by 2° for simulations in the condensed phase which is consistent with experiment. The accuracy in capturing the geometry dependence of the ESP together with the long-time stability in energy conserving simulations makes fMDCM a promising tool to introduce advanced electrostatics into atomistic simulations.

摘要

在分子模拟中考虑几何结构引起的电子分布变化对于捕捉电荷流动、电荷各向异性和极化等效应非常重要。多极子力场已证明它们能够正确表示化学上重要的特征,如各向异性和σ空穴。还表明偏心点电荷提供了一种具有相似精度的紧凑替代方案。在此,证明了在最小分布电荷模型(MDCM)中允许电荷相对于其参考原子重新定位是一种可行的途径,以捕捉取决于几何结构的分子电荷分布变化,即分子内极化。这种方法被称为“灵活MDCM”(fMDCM),在许多小分子上得到了验证,与电子结构计算的参考数据相比,其静电势(ESP)的平均精度为0.5 kcal/mol,而MDCM和点电荷的均方根误差要高2至5倍。此外,在具有周期性边界条件的一盒灵活水分子的系综中使用fMDCM进行的分子动力学模拟显示,在10 ns时间尺度上,300 K时围绕平均值的波动宽度为0.1 kcal/mol。对于水,发现在凝聚相模拟中气相的平衡价角增加了2°,这与实验结果一致。fMDCM在捕捉ESP的几何依赖性方面的准确性以及在能量守恒模拟中的长期稳定性使其成为将先进静电学引入原子模拟的有前途的工具。

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