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Molecular Dynamics Simulations of Double-Stranded DNA in an Explicit Solvent Model with the Zero-Dipole Summation Method

机译:零偶极求和法在显式溶剂模型中双链DNA的分子动力学模拟

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摘要

Molecular dynamics (MD) simulations of a double-stranded DNA with explicit water and small ions were performed with the zero-dipole summation (ZD) method, which was recently developed as one of the non-Ewald methods. Double-stranded DNA is highly charged and polar, with phosphate groups in its backbone and their counterions, and thus precise treatment for the long-range electrostatic interactions is always required to maintain the stable and native double-stranded form. A simple truncation method deforms it profoundly. On the contrary, the ZD method, which considers the neutralities of charges and dipoles in a truncated subset, well reproduced the electrostatic energies of the DNA system calculated by the Ewald method. The MD simulations using the ZD method provided a stable DNA system, with similar structures and dynamic properties to those produced by the conventional Particle mesh Ewald method.
机译:使用零偶极加和(ZD)方法对具有显性水和小离子的双链DNA进行了分子动力学(MD)模拟,该方法最近被开发为非Ewald方法之一。双链DNA具有高电荷和极性,在其骨架和它们的抗衡离子中带有磷酸基团,因此始终需要对长距离静电相互作用进行精确处理,以保持稳定和天然的双链形式。一种简单的截断方法会严重地使其变形。相反,考虑到截短的子集中电荷和偶极子的中性的ZD方法很好地再现了通过Ewald方法计算的DNA系统的静电能。使用ZD方法的MD模拟提供了一个稳定的DNA系统,其结构和动态特性与常规“粒子网格Ewald”方法产生的相似。

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