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截止尺寸对溶剂化多肽的分子动力学结果的影响可能并不强烈。

Cutoff size need not strongly influence molecular dynamics results for solvated polypeptides.

作者信息

Beck David A C, Armen Roger S, Daggett Valerie

机构信息

Biomolecular Structure and Design Program, University of Washington, Seattle, Washington 98195-7610, USA.

出版信息

Biochemistry. 2005 Jan 18;44(2):609-16. doi: 10.1021/bi0486381.

Abstract

The correct treatment of van der Waals and electrostatic nonbonded interactions in molecular force fields is essential for performing realistic molecular dynamics (MD) simulations of solvated polypeptides. The most computationally tractable treatment of nonbonded interactions in MD utilizes a spherical distance cutoff (typically, 8-12 A) to reduce the number of pairwise interactions. In this work, we assess three spherical atom-based cutoff approaches for use with all-atom explicit solvent MD: abrupt truncation, a CHARMM-style electrostatic shift truncation, and our own force-shifted truncation. The chosen system for this study is an end-capped 17-residue alanine-based alpha-helical peptide, selected because of its use in previous computational and experimental studies. We compare the time-averaged helical content calculated from these MD trajectories with experiment. We also examine the effect of varying the cutoff treatment and distance on energy conservation. We find that the abrupt truncation approach is pathological in its inability to conserve energy. The CHARMM-style shift truncation performs quite well but suffers from energetic instability. On the other hand, the force-shifted spherical cutoff method conserves energy, correctly predicts the experimental helical content, and shows convergence in simulation statistics as the cutoff is increased. This work demonstrates that by using proper and rigorous techniques, it is possible to correctly model polypeptide dynamics in solution with a spherical cutoff. The inherent computational advantage of spherical cutoffs over Ewald summation (and related) techniques is essential in accessing longer MD time scales.

摘要

在分子力场中正确处理范德华力和静电非键相互作用对于对溶剂化多肽进行逼真的分子动力学(MD)模拟至关重要。MD中对非键相互作用计算上最易处理的方法是利用球形距离截断(通常为8 - 12埃)来减少成对相互作用的数量。在这项工作中,我们评估了三种基于球形原子的截断方法,用于全原子显式溶剂MD:突然截断、CHARMM风格的静电位移截断以及我们自己的力移截断。本研究选择的体系是一个封端的基于17个残基的丙氨酸α - 螺旋肽,选择它是因为其在先前的计算和实验研究中的应用。我们将从这些MD轨迹计算出的时间平均螺旋含量与实验进行比较。我们还研究了改变截断处理和距离对能量守恒的影响。我们发现突然截断方法存在问题,无法守恒能量。CHARMM风格的位移截断表现相当好,但存在能量不稳定性。另一方面,力移球形截断方法能守恒能量,正确预测实验螺旋含量,并且随着截断增加,模拟统计显示出收敛性。这项工作表明,通过使用适当且严格的技术,可以用球形截断正确地模拟溶液中多肽的动力学。球形截断相对于埃瓦尔德求和(及相关)技术所具有的内在计算优势对于达到更长的MD时间尺度至关重要。

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