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d(G5-(GA4T4C)2-C5) 和 d(G5-(GT4A4C)2-C5) 中轴弯曲的分子动力学研究:序列极性对DNA曲率的影响

Molecular dynamics studies of axis bending in d(G5-(GA4T4C)2-C5) and d(G5-(GT4A4C)2-C5): effects of sequence polarity on DNA curvature.

作者信息

Sprous D, Young M A, Beveridge D L

机构信息

Department of Chemistry and Molecular Biophysics Program, Wesleyan University, Middletown, CT, 06459-0180, USA.

出版信息

J Mol Biol. 1999 Jan 29;285(4):1623-32. doi: 10.1006/jmbi.1998.2241.

Abstract

Gel retardation studies and other experiments indicate that DNA sequences containing the d(GA4T4C)n motif are curved, whereas those of identical composition but with a reverse sequence polarity, the d(GT4A4C)n motif, are straight. Hydroxyl radical cleavage experiments show that d(GA4T4C)n shows a unique signature, whereas d(GT4A4C)n behaves normally. To explain these results at a molecular level, molecular dynamics (MD) simulations were performed on the DNA duplexes d(G5-(GA4T4C)2-C5) and d(G5-(GT4A4C)2-C5) to 3.0 and 2.5 ns, respectively. The MD simulations are based on the Cornell force field implemented in the AMBER 4.1 modeling package and performed in a neutral solution of anionic DNA with K+, Cl- and Mg2+ at concentrations roughly comparable to a ligase buffer. Long range interactions were treated by the particle mesh Ewald method. Analysis of the results shows that the calculated dynamical structure of d(G5-(GA4T4C)2-C5) exhibits strong gross curvature, consistent with the observed behavior. The most significant locus of curvature in the MD structure is found at the central C15-G16 step, with an average roll angle of 12.8(+/-6.40)deg. The d(G5-(GT4A4C)2-C5) MD structure exhibited significantly less gross curvature. Analysis of results indicates that the reduction in gross curvature in the d(G5-(GT4A4C)2-C5) trajectory originates from the effect of the T10-A11 and T20-A21 steps, which showed average roll angles of 12.5(+/-5)deg. These three steps, T10-A11, C15-G16 and T20-A21, are half-helix turns away from one another, and their contributions to concerted bending cancel out. The A-tracts in the MD structure are essentially straight. The dynamical structure of d(G5-(GA4T4C)2-C5) exhibited minor groove deformation comprised of expansion at the 5' end of A-tracts and progressive narrowing towards the 3' end, consistent with and elaborating the interpretation of hydroxyl radical chemical probing results.

摘要

凝胶阻滞研究及其他实验表明,含有d(GA4T4C)n基序的DNA序列呈弯曲状,而那些组成相同但序列极性相反的d(GT4A4C)n基序的序列则是直的。羟基自由基切割实验表明,d(GA4T4C)n呈现出独特的特征,而d(GT4A4C)n表现正常。为了在分子水平上解释这些结果,分别对DNA双链体d(G5-(GA4T4C)2-C5)和d(G5-(GT4A4C)2-C5)进行了3.0纳秒和2.5纳秒的分子动力学(MD)模拟。MD模拟基于AMBER 4.1建模软件包中实现的康奈尔力场,在含有K+、Cl-和Mg2+的阴离子DNA中性溶液中进行,其浓度大致与连接酶缓冲液相当。长程相互作用采用粒子网格埃瓦尔德方法处理。结果分析表明,计算得到的d(G5-(GA4T4C)2-C5)的动力学结构呈现出强烈的总体曲率,与观察到的行为一致。MD结构中最显著的曲率位点位于中央C15-G16步,平均滚动角为12.8(±6.40)度。d(G5-(GT4A4C)2-C5)的MD结构总体曲率明显较小。结果分析表明,d(G5-(GT4A4C)2-C5)轨迹中总体曲率的降低源于T10-A11和T20-A21步的影响,其平均滚动角为12.5(±5)度。这三个步,T10-A11、C15-G16和T20-A21,彼此相隔半个螺旋圈,它们对协同弯曲的贡献相互抵消。MD结构中的A序列基本是直的。d(G5-(GA4T4C)2-C5)的动力学结构在小沟处呈现出变形,包括A序列5'端的扩张以及向3'端的逐渐变窄,这与羟基自由基化学探测结果的解释一致并进一步阐述了该解释。

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