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Development of a methodology to compute solvation free energies on the basis of the theory of energy representation for solutions represented with a polarizable force field

机译:基于能量表示理论的可极化自由场表示的溶液的溶剂化自由能计算方法的开发

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We have developed a method of molecular simulations utilizing a polarizable force field in combination with the theory of energy representation (ER) for the purpose of establishing an efficient and accurate methodology to compute solvation free energies. The standard version of the ER method is, however, based on the assumption that the solute-solvent interaction is pairwise additive for its construction. A crucial step in the present method is to introduce an intermediate state in the solvation process to treat separately the many-body interaction associated with the polarizable model. The intermediate state is chosen so that the solute-solvent interaction can be formally written in the pairwise form, though the solvent molecules are interacting with each other with polarizable charges dependent on the solvent configuration. It is, then, possible to extract the free energy contribution δμ due to the many-body interaction between solute and solvent from the total solvation free energy Δμ. It is shown that the free energy δμ can be computed by an extension of the recent development implemented in quantum mechanicalmolecular mechanical simulations. To assess the numerical robustness of the approach, we computed the solvation free energies of a water and a methanol molecule in water solvent, where two paths for the solvation processes were examined by introducing different intermediate states. The solvation free energies of a water molecule associated with the two paths were obtained as -5.3 and -5.8 kcalmol. Those of a methanol molecule were determined as -3.5 and -3.7 kcalmol. These results of the ER simulations were also compared with those computed by a numerically exact approach. It was demonstrated that the present approach produces the solvation free energies in comparable accuracies to simulations of thermodynamic integration (TI) method within a tenth of computational time used for the TI simulations.
机译:我们已经建立了一种利用极化力场与能量表示理论(ER)相结合的分子模拟方法,目的是建立一种有效,准确的方法来计算溶剂化自由能。但是,ER方法的标准版本基于以下假设:溶质与溶剂之间的相互作用是成对加成的。本方法的关键步骤是在溶剂化过程中引入中间状态,以分别处理与可极化模型相关的多体相互作用。选择中间状态,以使溶质与溶剂的相互作用可以成对形式正式写成,尽管溶剂分子之间的相互作用取决于极化极性,这取决于溶剂的构型。然后,可以从总溶剂化自由能Δμ中提取出由于溶质和溶剂之间的多体相互作用而产生的自由能贡献δμ。结果表明,自由能δμ可以通过量子力学-分子力学模拟中最新进展的扩展来计算。为了评估该方法的数值鲁棒性,我们计算了水和甲醇分子在水溶剂中的溶剂化自由能,其中通过引入不同的中间态检查了溶剂化过程的两条路径。获得与两条路径相关的水分子的溶剂化自由能为-5.3和-5.8kcalmol。甲醇分子的那些被确定为-3.5和-3.7kcalmol。 ER模拟的这些结果也与通过数值精确方法计算的结果进行了比较。证明了本方法在可用于TI模拟的十分之一的计算时间内,以与热力学积分(TI)方法的模拟相当的精度产生了溶剂化自由能。

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