Baker Christopher M, Lopes Pedro E M, Zhu Xiao, Roux Benoît, Mackerell Alexander D
Department of Pharmaceutical Sciences, School of Pharmacy, University of Maryland, Baltimore, 20 Penn Street, Baltimore, MD 21201, and the Department of Biochemistry and Molecular Biology, The University of Chicago, 929 East 57 Street, Chicago, IL 60637.
J Chem Theory Comput. 2010 Mar 1;6(4):1181-1198. doi: 10.1021/ct9005773.
Lennard-Jones (LJ) parameters for a variety of model compounds have previously been optimized within the CHARMM Drude polarizable force field to reproduce accurately pure liquid phase thermodynamic properties as well as additional target data. While the polarizable force field resulting from this optimization procedure has been shown to satisfactorily reproduce a wide range of experimental reference data across numerous series of small molecules, a slight but systematic overestimate of the hydration free energies has also been noted. Here, the reproduction of experimental hydration free energies is greatly improved by the introduction of pair-specific LJ parameters between solute heavy atoms and water oxygen atoms that override the standard LJ parameters obtained from combining rules. The changes are small and a systematic protocol is developed for the optimization of pair-specific LJ parameters and applied to the development of pair-specific LJ parameters for alkanes, alcohols and ethers. The resulting parameters not only yield hydration free energies in good agreement with experimental values, but also provide a framework upon which other pair-specific LJ parameters can be added as new compounds are parametrized within the CHARMM Drude polarizable force field. Detailed analysis of the contributions to the hydration free energies reveals that the dispersion interaction is the main source of the systematic errors in the hydration free energies. This information suggests that the systematic error may result from problems with the LJ combining rules and is combined with analysis of the pair-specific LJ parameters obtained in this work to identify a preliminary improved combining rule.
之前已经在CHARMM德鲁德极化力场中对多种模型化合物的 Lennard-Jones(LJ)参数进行了优化,以准确再现纯液相热力学性质以及其他目标数据。虽然由该优化过程产生的极化力场已被证明能够令人满意地再现众多小分子系列的广泛实验参考数据,但也注意到对水合自由能存在轻微但系统性的高估。在此,通过引入溶质重原子与水分子氧原子之间的特定对LJ参数,极大地改善了实验水合自由能的再现情况,这些特定对LJ参数取代了通过组合规则获得的标准LJ参数。变化很小,并开发了一种用于优化特定对LJ参数的系统方案,并将其应用于烷烃、醇类和醚类的特定对LJ参数的开发。所得参数不仅产生与实验值高度一致的水合自由能,而且还提供了一个框架,随着新化合物在CHARMM德鲁德极化力场中进行参数化,可以在此框架上添加其他特定对LJ参数。对水合自由能贡献的详细分析表明,色散相互作用是水合自由能中系统误差的主要来源。该信息表明系统误差可能源于LJ组合规则的问题,并与对本工作中获得的特定对LJ参数的分析相结合,以确定初步改进的组合规则。