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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Development of a Robust Indirect Approach for MM -> QM Free Energy Calculations That Combines Force-Matched Reference Potential and Bennett's Acceptance Ratio Methods
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Development of a Robust Indirect Approach for MM -> QM Free Energy Calculations That Combines Force-Matched Reference Potential and Bennett's Acceptance Ratio Methods

机译:开发毫无稳健的间接方法,用于MM - > QM自由能量计算,其结合了力匹配的参考电位和Bennett的验收比例

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We use the PBEO/6-31G* density functional method to perform ab initio quantum mechanical/molecular mechanical (QM/MM) molecular dynamics (MD) simulations under periodic boundary conditions with rigorous electrostatics using the ambient potential composite Ewald method in order to test the convergence of MM -> QM/MM free energy corrections for the prediction of 17 small-molecule solvation free energies and eight ligand binding free energies to T4 lysozyme. The "indirect" thermodynamic cycle for calculating free energies is used to explore whether a series of reference potentials improve the statistical quality of the predictions. Specifically, we construct a series of reference potentials that optimize a molecular mechanical (MM) force field's parameters to reproduce the ab initio QM/MM forces from a QM/MM simulation. The optimizations form a systematic progression of successively expanded parameters that include bond, angle, dihedral, and charge parameters. For each reference potential, we calculate benchmark quality reference values for the MM -> QM/MM correction by performing the mixed MM and QM/MM Hamiltonians at 11 intermediate states, each for 200 ps. We then compare forward and reverse application of Zwanzig's relation, thermodynamic integration (TI), and Bennett's acceptance ratio (BAR) methods as a function of reference potential, simulation time, and the number of simulated intermediate states. We find that Zwanzig's equation is inadequate unless a large number of intermediate states are explicitly simulated. The TI and BAR mean signed errors are very small even when only the end-state simulations are considered, and the standard deviations of the TI and BAR errors are decreased by choosing a reference potential that optimizes the bond and angle parameters. We find a robust approach for the data sets of fairly rigid molecules considered here is to use bond + angle reference potential together with the end-state-only BAR analysis. This requires QM/MM simulations to be performed in order to generate reference data to parametrize the bond + angle reference potential, and then this same simulation serves a dual purpose as the full QM/MM end state. The convergence of the results with respect to time suggests that computational resources may be used more efficiently by running multiple simulations for no more than 50 ps, rather than running one long simulation.
机译:我们使用PBEO / 6-31G *密度功能方法在通过使用环境潜在的复合EWALD方法进行严格的静电方法在周期边界条件下进行AB Initio量子机械/分子机械(QM / mm)分子动力学(MD)模拟,以便测试MM - > QM / MM自由能量校正的收敛性,用于预测17个小分子溶剂化自由能和八个配体与T4溶菌酶的无限性能量。用于计算自由能量的“间接”热力学循环用于探索一系列参考电位是否提高了预测的统计质量。具体地,我们构建了一系列参考电位,其优化了分子机械(MM)力场的参数,以从QM / MM仿真再现AB Initio QM / MM力。优化形成连续扩展参数的系统进展,包括粘合,角度,二对体和电荷参数。对于每个参考电位,我们通过在11个中间状态下执行混合mm和qm / mm hamiltonians来计算MM - > QM / MM校正的基准质量参考值,每个态都为200 ps。然后,我们将Zwanzig的关系,热力学集成(TI)和Bennett的验收比(BAR)方法的正向和反向应用进行比较,作为参考电位,模拟时间和模拟中间状态的数量。除非明确模拟大量中间状态,否则我们发现Zwanzig的等式不充分。即使仅考虑最终状态模拟时,Ti和条形符号误差也很小,并且通过选择优化键合和角度参数的参考电位,通过TI和条形错误的标准偏差减小。我们发现这里考虑的相当刚性分子的数据集的稳健方法是使用键+角参考电位以及唯一的末端条分析。这需要执行QM / MM模拟,以便将参考数据生成参数化键+角参考电位,然后该相同的模拟与全部QM / MM结束状态一起使用。结果相对于时间的融合表明,通过运行多于50ps的多个模拟来更有效地使用计算资源,而不是运行一个长的仿真。

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