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B-DNA的5纳秒分子动力学轨迹:结构、运动及溶剂化分析

A 5-nanosecond molecular dynamics trajectory for B-DNA: analysis of structure, motions, and solvation.

作者信息

Young M A, Ravishanker G, Beveridge D L

机构信息

Chemistry Department, Wesleyan University, Middletown, Connecticut 06459, USA.

出版信息

Biophys J. 1997 Nov;73(5):2313-36. doi: 10.1016/S0006-3495(97)78263-8.

Abstract

We report the results of four new molecular dynamics (MD) simulations on the DNA duplex of sequence d(CGCGAATTCGCG)2, including explicit consideration of solvent water, and a sufficient number of Na+ counterions to provide electroneutrality to the system. Our simulations are configured particularly to characterize the latest MD models of DNA, and to provide a basis for examining the sensitivity of MD results to the treatment of boundary conditions, electrostatics, initial placement of solvent, and run lengths. The trajectories employ the AMBER 4.1 force field. The simulations use particle mesh Ewald summation for boundary conditions, and range in length from 500 ps to 5.0 ns. Analysis of the results is carried out by means of time series for conformationalm, helicoidal parameters, newly developed indices of DNA axis bending, and groove widths. The results support a dynamically stable model of B-DNA for d(CGCGAATTCGCG)2 over the entire length of the trajectory. The MD results are compared with corresponding crystallographic and NMR studies on the d(CGCGAATTCGCG)2 duplex, and placed in the context of observed behavior of B-DNA by comparisons with the complete crystallographic data base of B-form structures. The calculated distributions of mobile solvent molecules, both water and counterions, are displayed. The calculated solvent structure of the primary solvation shell is compared with the location of ordered solvent positions in the corresponding crystal structure. The results indicate that ordered solvent positions in crystals are roughly twice as structured as bulk water. Detailed analysis of the solvent dynamics reveals evidence of the incorporation of ions in the primary solvation of the minor groove B-form DNA. The idea of localized complexation of otherwise mobile counterions in electronegative pockets in the grooves of DNA helices introduces an additional source of sequence-dependent effects on local conformational, helicoidal, and morphological structure, and may have important implications for understanding the functional energetics and specificity of the interactions of DNA and RNA with regulatory proteins, pharmaceutical agents, and other ligands.

摘要

我们报告了对序列为d(CGCGAATTCGCG)2的DNA双链体进行的四个新的分子动力学(MD)模拟结果,其中明确考虑了溶剂水以及足够数量的Na+抗衡离子,以使系统达到电中性。我们的模拟经过特别配置,旨在表征最新的DNA分子动力学模型,并为检验分子动力学结果对边界条件处理、静电作用、溶剂初始布局和运行长度的敏感性提供依据。轨迹采用AMBER 4.1力场。模拟使用粒子网格埃瓦尔德求和法处理边界条件,运行长度从500皮秒到5.0纳秒不等。通过对构象、螺旋参数、新开发的DNA轴弯曲指数和沟宽的时间序列分析来进行结果分析。结果支持了在整个轨迹长度上d(CGCGAATTCGCG)2的B-DNA动态稳定模型。将分子动力学结果与关于d(CGCGAATTCGCG)2双链体的相应晶体学和核磁共振研究进行了比较,并通过与B型结构的完整晶体学数据库进行比较,将其置于B-DNA观察到的行为背景中。展示了计算出的流动溶剂分子(水和抗衡离子)的分布。将计算出的一级溶剂化壳层的溶剂结构与相应晶体结构中有序溶剂位置进行了比较。结果表明,晶体中的有序溶剂位置的结构大约是本体水的两倍。对溶剂动力学的详细分析揭示了离子在小沟B型DNA一级溶剂化过程中掺入的证据。在DNA螺旋沟中的负电口袋中,原本可移动的抗衡离子发生局部络合的观点,引入了对局部构象、螺旋和形态结构的另一种序列依赖性效应来源,可能对理解DNA和RNA与调节蛋白、药物及其他配体相互作用的功能能量学和特异性具有重要意义。

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