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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Free Energy Perturbation Hamiltonian Replica-Exchange Molecular Dynamics (FEP/H-REMD) for Absolute Ligand Binding Free Energy Calculations
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Free Energy Perturbation Hamiltonian Replica-Exchange Molecular Dynamics (FEP/H-REMD) for Absolute Ligand Binding Free Energy Calculations

机译:自由能摄动哈密顿复制交换分子动力学(FEP / H-REMD),用于绝对配体结合自由能计算

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Free Energy Perturbation with Replica Exchange Molecular Dynamics (FEP/REMD) offers a powerful strategy to improve the convergence of free energy computations. In particular, it has been shown previously that a FEP/REMD scheme allowing random moves within an extended replica ensemble of thermodynamic coupling parameters "A" can improve the statistical convergence in calculations of absolute binding free energy of ligands to proteins [J. Chem. Theory Comput. 2009, 5, 2583]. In the present study, FEP/REMD is extended and combined with an accelerated MD simulations method based on Hamiltonian replica-exchange MD (H-REMD) to overcome the additional problems arising from the existence of kinetically trapped conformations within the protein receptor. In the combined strategy, each system with a given thermodynamic coupling factor λ in the extended ensemble is further coupled with a set of replicas evolving on a biased energy surface with boosting potentials used to accelerate the interconversion among different rotameric states of the side chains in the neighborhood of the binding site. Exchanges are allowed to occur alternatively along the axes corresponding to the thermodynamic coupling parameter λ and the boosting potential, in an extended dual array of coupled λ-and H-REMD simulations. The method is implemented on the basis of new extensions to the REPDSTR module of the biomolecular simulation program CHARMM. As an illustrative example, the absolute binding free energy of p-xylene to the nonpolar cavity of the L99A mutant of the T4 lysozyme was calculated. The tests demonstrate that the dual λ-REMD and H-REMD simulation scheme greatly accelerates the configu-rational sampling of the rotameric states of the side chains around the binding pocket, thereby improving the convergence of the FEP computations.
机译:具有副本交换的自由能扰动分子动力学(FEP / REMD)提供了一种强大的策略,可以改善自由能计算的收敛性。特别地,先前已经表明,FEP / REMD方案允许在热力学偶合参数“ A”的扩展的复制体集合内随机移动,可以改善配体与蛋白质的绝对结合自由能的计算中的统计收敛性[J.J.Pharm.Sci。,2005,2,2]。化学理论计算。 2009,5,2583]。在本研究中,扩展了FEP / REMD并与基于汉密尔顿复制品交换MD(H-REMD)的加速MD模拟方法相结合,以克服由于蛋白质受体内部存在动力学陷阱构象而引起的其他问题。在组合策略中,扩展系统中具有给定热力学耦合因子λ的每个系统进一步与一组在偏置能面上演化的复制品耦合,这些复制品具有增强电位,可用于加速侧链不同旋转异构体状态之间的相互转化。结合位点附近。在耦合的λ-和H-REMD模拟的扩展双阵列中,允许沿着与热力学耦合参数λ和升压电位相对应的轴交替进行交换。该方法是基于对生物分子模拟程序CHARMM的REPDSTR模块的新扩展而实现的。作为说明性实例,计算了对二甲苯与T4溶菌酶的L99A突变体的非极性腔的绝对结合自由能。测试表明,双重λ-REMD和H-REMD模拟方案极大地加快了结合口袋周围侧链的旋转异构状态的构象采样,从而提高了FEP计算的收敛性。

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