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首页> 外文期刊>Journal of chemical theory and computation: JCTC >The Use of Anisotropic Potentials in Modeling Water and Free Energies of Hydration
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The Use of Anisotropic Potentials in Modeling Water and Free Energies of Hydration

机译:各向异性势在水和水合自由能建模中的应用

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We propose a novel, anisotropic rigid-body intermolecular potential model to predict the properties of water and the hydration free energies of neutral organic solutes. The electrostatic interactions of water and the solutes are modeled using atomic multipole moments up to hexadecapole; these are obtained from distributed multipole analysis of the quantum mechanically computed charge densities and include average polarization effects in solution. The repulsion-dispersion water-water interactions are modeled with a three-site, exp-6 model fitted to the experimental liquid water density and oxygen-oxygen radial distribution function at ambient conditions. The proposed water model reproduces well several water properties not used in its parametrization, including vapor-liquid coexistence densities, the maximum in liquid water density at atmospheric pressure, the structure of ordered ice polymorphs, and the liquid water heat capacity. The model is used to compute the hydration free energy of 10 neutral organic solutes using explicit-solvent free energy perturbation. The solute-solute repulsion-dispersion intermolecular potential is obtained from previous parametrizations on organic crystal structures. In order to calculate the free energies of hydration, water-solute repulsion-dispersion interactions are modeled using Lorenz-Berthelot combining rules. The root-mean-square error of the predicted hydration free energies is 1.5 kcal mol~(-1), which is comparable to the error found using a continuum mean-field quantum mechanical approach parametrized using experimental free energy of hydration data. The results are also contrasted with explicit-solvent hydration free energies obtained with an atomic charge representation of the solute's charge density computed at the same level of theory used to compute the distributed multipoles. Replacing the multipole description of the solute's charge density with an atomic charge model changes the free energy of hydration by as much as 3 kcal mol~(-1) and provides an estimate for the effect of the modeling quality of the intermolecular electrostatic forces in free energy of solvation calculations.
机译:我们提出了一种新颖的各向异性刚体分子间电势模型来预测水的性质和中性有机溶质的水合自由能。水和溶质的静电相互作用是使用高达十六极的原子多极矩来模拟的。这些是从对量子力学计算的电荷密度的分布式多极分析中获得的,并且包括溶液中的平均极化效应。排斥-分散水-水相互作用是通过三点exp-6模型建模的,该模型适合于环境条件下的实验液体水密度和氧-氧径向分布函数。拟议的水模型很好地再现了其参数化中未使用的几种水性质,包括气液共存密度,大气压下液态水密度的最大值,有序冰晶型的结构以及液态水的热容。该模型用于使用显式溶剂自由能扰动来计算10种中性有机溶质的水合自由能。溶质-溶质排斥-分散的分子间电势是从先前在有机晶体结构上的参数化获得的。为了计算水合的自由能,使用Lorenz-Berthelot组合规则对水-溶质排斥-分散相互作用进行了建模。预测的水合自由能的均方根误差为1.5 kcal mol〜(-1),与使用水合实验自由能参数化的连续平均场量子力学方法发现的误差相当。该结果还与显式溶剂水合自由能形成对比,显性溶剂水合自由能以与用于计算分布多极的理论相同的水平计算出的溶质电荷密度的原子电荷表示形式获得。用原子电荷模型代替溶质电荷密度的多极描述,可将水合自由能最多改变3 kcal mol〜(-1),并提供对游离态下分子间静电力建模质量的影响的估计值溶剂化计算的能量。

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