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Molecular dynamics simulation of highly charged proteins: Comparison of the particle-particle particle-mesh and reaction field methods for the calculation of electrostatic interactions

机译:高电荷蛋白质的分子动力学模拟:比较粒子-粒子-粒子-网格和反应场方法以计算静电相互作用

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摘要

Molecular dynamics (MD) simulations of the activation domain of porcine procarboxypeptidase B (ADBp) were performed to examine the effect of using the particle-particle particle-mesh (P3M) or the reaction field (RF) method for calculating electrostatic interactions in simulations of highly charged proteins. Several structural, thermodynamic, and dynamic observables were derived from the MD trajectories, including estimated entropies and solvation free energies and essential dynamics (ED). The P3M method leads to slightly higher atomic positional fluctuations and deviations from the crystallographic structure, along with somewhat lower values of the total energy and solvation free energy. However, the ED analysis of the system leads to nearly identical results for both simulations. Because of the strong similarity between the results, both methods appear well suited for the simulation of highly charged globular proteins in explicit solvent. However, the lower computational demand of the RF method in the present implementation represents a clear advantage over the P3M method.
机译:进行了猪羧肽酶原B(ADBp)激活域的分子动力学(MD)模拟,以检验在模拟PSP中使用颗粒-颗粒-颗粒(P3M)或反应场(RF)方法计算静电相互作用的效果。高电荷的蛋白质。从MD轨迹中得出了一些结构,热力学和动态可观测值,包括估计的熵,溶剂化自由能和基本动力学(ED)。 P3M方法导致原子位置波动和与晶体结构的偏差稍高,以及总能量和溶剂化自由能的值较低。但是,系统的ED分析对于两种模拟得出的结果几乎相同。由于结果之间的强烈相似性,这两种方法似乎非常适合在显式溶剂中模拟高电荷球状蛋白。然而,在本实施方式中,RF方法的较低计算需求代表了相对于P3M方法的明显优势。

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