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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Constant pH Molecular Dynamics in Explicit Solvent with Enveloping Distribution Sampling and Hamiltonian Exchange
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Constant pH Molecular Dynamics in Explicit Solvent with Enveloping Distribution Sampling and Hamiltonian Exchange

机译:包络分布采样和哈密顿交换的显式溶剂中的恒定pH分子动力学

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We present a new computational approach for constant pH simulations in explicit solvent based on the combination of the enveloping distribution sampling (EDS) and Hamiltonian replica exchange (HREX) methods. Unlike constant pH methods based on variable and continuous charge models, our method is based on discrete protonation states. EDS generates a hybrid Hamiltonian of different protonation states. A smoothness parameter s is used to control the heights of energy barriers of the hybrid-state energy landscape. A small s value facilitates state transitions by lowering energy barriers. Replica exchange between EDS potentials with different s values allows us to readily obtain a thermodynamically accurate ensemble of multiple protonation states with frequent state transitions. The analysis is performed with an ensemble obtained from an EDS Hamiltonian without smoothing, s = co, which strictly follows the minimum energy surface of the end states. The accuracy and efficiency of this method is tested on aspartic acid, lysine, and glutamic acid, which have two protonation states, a histidine with three states, a four-residue peptide with four states, and snake cardiotoxin with eight states. The pK_a values estimated with the EDS-HREX method agree well with the experimental pK_a values. The mean absolute errors of small benchmark systems range from 0.03 to 0.17 pK_a units, and those of three titratable groups of snake cardiotoxin range from 0.2 to 1.6 pK_a units. This study demonstrates that EDS-HREX is a potent theoretical framework, which gives the correct description of multiple protonation states and good calculated pK_a values.
机译:我们基于包络分布采样(EDS)和哈密尔顿副本交换(HREX)方法的组合,提出了一种在显式溶剂中恒定pH模拟的新计算方法。与基于可变和连续电荷模型的恒定pH方法不同,我们的方法基于离散质子化状态。 EDS生成不同质子化态的混合哈密顿量。平滑度参数s用于控制混合态能量景观的能垒高度。较小的s值通过降低能垒来促进状态转换。具有不同s值的EDS电位之间的复制交换使我们能够容易地获得具有频繁状态转换的多个质子化状态的热力学精确的合奏。使用从EDS哈密顿量获得的整体进行分析,而无需进行平滑处理s = co,严格遵循最终状态的最小能量面。在具有两个质子化状态,具有三个状态的组氨酸,具有四个状态的四残基肽和具有八个状态的蛇形心毒素中,对天冬氨酸,赖氨酸和谷氨酸测试了该方法的准确性和效率。用EDS-HREX方法估算的pK_a值与实验的pK_a值非常吻合。小型基准系统的平均绝对误差范围为0.03至0.17 pK_a单位,三组可滴定的蛇心毒素的平均绝对误差范围为0.2至1.6 pK_a单位。这项研究表明,EDS-HREX是一个有效的理论框架,它给出了多个质子化状态的正确描述和良好的计算pK_a值。

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