Tan Yu-Hong, Luo Ray
Department of Molecular Biology and Biochemistry, University of California, Irvine, California 92697-3900, USA.
J Chem Phys. 2007 Mar 7;126(9):094103. doi: 10.1063/1.2436871.
A continuum treatment of electronic polarization has been explored for in molecular mechanics simulations in implicit solvents. The dielectric constant for molecule interior is the only parameter in the continuum polarizable model. A value of 4 is found to yield optimal agreement with high-level ab initio quantum mechanical calculations for the tested molecular systems. Interestingly, its performance is not sensitive to the definition of molecular volume, in which the continuum electronic polarization is defined. In this model, quantum mechanical electrostatic field in different dielectric environments from vacuum, low-dielectric organic solvent, and water can be used simultaneously in atomic charge fitting to achieve consistent treatment of electrostatic interactions. The tests show that a single set of atomic charges can be used consistently in different dielectric environments and different molecular conformations, and the atomic charges transfer well from training monomers to tested dimers. The preliminary study gives us the hope of developing a continuum polarizable force field for more consistent simulations of proteins and nucleic acids in implicit solvents.
在隐式溶剂中的分子力学模拟中,已经探索了连续介质电子极化的处理方法。分子内部的介电常数是连续介质可极化模型中的唯一参数。对于测试的分子体系,发现4的值能与高水平的从头算量子力学计算取得最佳一致性。有趣的是,其性能对定义分子体积(即定义连续介质电子极化的体积)并不敏感。在该模型中,来自真空、低介电常数有机溶剂和水等不同介电环境的量子力学静电场可同时用于原子电荷拟合,以实现对静电相互作用的一致处理。测试表明,同一组原子电荷可在不同介电环境和不同分子构象中一致使用,且原子电荷能很好地从训练单体转移到测试二聚体。初步研究让我们有望开发出一种连续介质可极化力场,用于在隐式溶剂中对蛋白质和核酸进行更一致的模拟。