Min Donghong, Zheng Lianqing, Harris William, Chen Mengen, Lv Chao, Yang Wei
Institute of Molecular Biophysics, Florida State University, Tallahassee, Florida 32306, Department of Chemistry and Biochemistry, Florida State University, Tallahassee, Florida 32306.
J Chem Theory Comput. 2010 Aug 10;6(8):2253-66. doi: 10.1021/ct100033s.
The difference between free energy changes occurring at two chemical states can be rigorously estimated via alchemical free energy (AFE) simulations. Traditionally, most AFE simulations are carried out under the classical energy potential treatment; then, accuracy and applicability of AFE simulations are limited. In the present work, we integrate a recent second-order generalized ensemble strategy, the orthogonal space random walk (OSRW) method, into the combined quantum mechanical/molecular mechanical (QM/MM) potential based AFE simulation scheme. Thereby, within a commonly affordable simulation length, accurate QM/MM alchemical free energy simulations can be achieved. As revealed by the model study on the equilibrium of a tautomerization process of hydrated 3-hydroxypyrazole and by the model calculations of the redox potentials of two flavin derivatives, lumichrome (LC) and riboflavin (RF) in aqueous solution, the present OSRW-based scheme could be a viable path toward the realization of practically efficient QM/MM AFE simulations.
通过炼金术自由能(AFE)模拟,可以精确估计两种化学状态下自由能变化的差异。传统上,大多数AFE模拟是在经典能量势处理下进行的;因此,AFE模拟的准确性和适用性受到限制。在本工作中,我们将最近的二阶广义系综策略——正交空间随机游走(OSRW)方法,集成到基于量子力学/分子力学(QM/MM)势的AFE模拟方案中。由此,在通常可承受的模拟时长内,可以实现精确的QM/MM炼金术自由能模拟。通过对水合3-羟基吡唑互变异构过程平衡的模型研究以及对两种黄素衍生物(发光色素(LC)和核黄素(RF))在水溶液中的氧化还原电位的模型计算表明,目前基于OSRW的方案可能是实现实际高效的QM/MM AFE模拟的可行途径。