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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Relative Free Energies for Hydration of Monovalent Ions from QM and QM/MM Simulations
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Relative Free Energies for Hydration of Monovalent Ions from QM and QM/MM Simulations

机译:从QM和QM / MM模拟中水合一价离子的相对自由能

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Methods directly evaluating the hydration structure and thermodynamics of physiologically relevant cations (Na~+, K~+, Cl~-, etc.) have wide ranging applications in the fields of inorganic, physical, and biological chemistry. All-atom simulations based on accurate potential energy surfaces appear to offer a viable option for assessing the chemistry of ion solvation. Although MD and free energy simulations of ion solvation with classical force fields have proven their usefulness, a number of challenges still remain. One of them is the difficulty of force field benchmarking and validation against structural and thermodynamic data obtained for a condensed phase. Hybrid quantum mechanical/molecular mechanical (QM/MM) models combined with sampling algorithms have the potential to provide an accurate solvation model and to incorporate the effects from the surrounding, which is often missing in gas-phase ab initio computations. Herein, we report the results from QM/MM free energy simulations of Na~+/K~+ and Cr/Br~- hydration where we simultaneously characterized the relative thermodynamics of ion solvation and changes in the solvation structure. The Flexible Inner Region Ensemble Separator (FIRES) method was used to impose a spatial separation between QM region and the outer sphere of solvent molecules treated with the CHARMM27 force field. FEP calculations based on QM/MM simulations utilizing the CHARMM/deMon2k interface were performed with different basis set combinations for K~+/Na~+ and Cl~/Br~- perturbations to establish the dependence of the computed free energies on the basis set level. The dependence of the computed relative free energies on the size of the QM and MM regions is discussed. The current methodology offers an accurate description of structural and thermodynamic aspects of the hydration of alkali and halide ions in neat solvents and can be used to obtain thermodynamic data on ion solvation in condensed phase along with underlying structural properties of the ion—solvent system.
机译:直接评估生理相关阳离子(Na〜+,K〜+,Cl〜-等)的水合结构和热力学的方法在无机,物理和生物化学领域具有广泛的应用。基于精确的势能表面的全原子模拟似乎为评估离子溶剂化的化学性质提供了可行的选择。尽管用经典力场对离子溶剂化的MD和自由能模拟已经证明了其有用性,但仍然存在许多挑战。其中之一是难以针对凝结相获得的结构和热力学数据进行力场基准测试和验证。结合了采样算法的混合量子力学/分子力学(QM / MM)模型具有提供精确的溶剂化模型并整合周围环境影响的潜力,而气相从头算中常常缺少这种影响。本文中,我们报告了Na〜+ / K〜+和Cr / Br〜-水合的QM / MM自由能模拟结果,同时我们表征了离子化溶剂的相对热力学和溶剂化结构的变化。使用柔性内部区域集合分隔符(FIRES)方法在QM区域和使用CHARMM27力场处理的溶剂分子的外球之间施加空间分隔。使用CHARMM / deMon2k界面基于QM / MM模拟进行的FEP计算,采用了不同的基组组合,用于K〜+ / Na〜+和Cl〜/ Br〜-扰动,从而建立了基于该基集的计算自由能的依赖性水平。讨论了计算的相对自由能对QM和MM区域大小的依赖性。当前的方法学提供了在纯溶剂中碱金属和卤化物离子水合的结构和热力学方面的准确描述,可用于获得有关冷凝相中离子溶剂化的热力学数据以及离子-溶剂系统的基本结构特性。

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