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Development of molecular simulation methods to accurately represent protein-surface interactions: Method assessment for the calculation of electrostatic effects

机译:精确模拟蛋白质-表面相互作用的分子模拟方法的发展:静电效应计算的方法评估

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The simulation of the interactions of proteins with charged surfaces in a condensed-phase aqueous solution containing electrolytes using empirical force field based methods is predominantly governed by nonbonded interactions between the atoms of the protein, surface, and the solvent. Electrostatic effects represent the strongest type of these interactions and the type that is most difficult to accurately represent because of their long-range influence. While many different methods have been developed to represent electrostatic interactions, the particle mesh Ewald summation (PME) method is generally considered to be the most accurate one for calculating these effects. However, the PME method was designed for systems with three-dimensional (3D) periodicity, and not for interfacial systems such as the case of protein adsorption to a charged surface. Interfacial systems such as these have only two-dimensional periodicity, which may not be appropriate for treatment with PME due to the possibility that the presence of multiple charged image surfaces parallel to the primary simulation cell’s surface, may introduce nonphysical effects on the behavior of the charged molecules in the system. In an effort to address this issue, the authors have conducted a set of nanosecond-scale molecular dynamics simulations to calculate the equilibrium distribution of Na+ and Cl? ions near a charged surface using PME and a range of radial cutoff methods for treating electrostatic interactions, where the cutoffs prevent interaction with the periodic images of the system. The resulting ion concentration profiles were compared to one another and to a continuum analytical solution of the theoretical ion distribution obtained from the Poisson—Boltzmann equation. Their results show that the PME method does not introduce the suspected nonphysical effects in the ion distributions due to the 3D periodic images of the system, thus indicating that it is appropriate for use for this type of molecular simulation. Although their interest is motivated by protein-surface interactions, the conclusions are applicable for the treatment of electrostatics in other aqueous systems with two-dimensional periodicity.
机译:使用基于经验力场的方法对包含电解质的冷凝相水溶液中蛋白质与带电表面的相互作用的模拟主要受蛋白质,表面和溶剂原子之间非键合相互作用的支配。静电作用代表了这些相互作用中最强的类型,并且由于它们的长期影响而很难准确地代表这种类型。尽管已经开发出许多表示静电相互作用的方法,但粒子网格Ewald求和(PME)方法通常被认为是计算这些效应的最准确方法。但是,PME方法设计用于具有三维(3D)周期性的系统,而不是用于界面系统(例如蛋白质吸附到带电表面的情况)。诸如此类的界面系统仅具有二维周期性,由于可能存在平行于主模拟单元表面的多个带电图像表面,从而可能对PME的行为产生非物理影响,因此不适用于PME处理。系统中的带电分子。为了解决这个问题,作者进行了一系列纳秒级分子动力学模拟,以计算Na +和Cl?的平衡分布。使用PME和一系列径向截止方法来处理带电表面附近的离子,这些方法用于处理静电相互作用,其中的截止阻止与系统的周期性图像相互作用。将所得的离子浓度曲线相互比较,并与从Poisson-Boltzmann方程获得的理论离子分布的连续分析溶液进行比较。他们的结果表明,由于系统的3D周期图像,PME方法不会在离子分布中引入可疑的非物理效应,因此表明该方法适合用于此类分子模拟。尽管他们的兴趣是由蛋白质-表面相互作用激发的,但这些结论适用于具有二维周期性的其他水性体系中静电的处理。

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