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阳离子配体与核酸复合物的建模:一种专门的分子力学力场及其应用。

Modeling of nucleic acid complexes with cationic ligands: a specialized molecular mechanics force field and its application.

作者信息

Veal J M, Wilson W D

机构信息

Department of Chemistry, Georgia State University, Atlanta 30303.

出版信息

J Biomol Struct Dyn. 1991 Jun;8(6):1119-45. doi: 10.1080/07391102.1991.10507875.

DOI:10.1080/07391102.1991.10507875
PMID:1716441
Abstract

A potential energy force field designed for modeling nucleic acids and particularly their complexes with cationic ligands is presented. The force field is a modified version of that developed by Weiner, S.J., Kollman, P.A., Nguyen, D.T. and Case, D.A.,J. Comp. Chem. 7,230-252 (1986) and is based upon the use of a distance dependent dielectric constant, epsilon = 4rij, and partially neutralized phosphates to represent solvent and counterion. Changes from the Weiner et al. force field include additional atom types and modifications to van der Waals, electrostatic, hydrogen bonding and torsional parameters. Molecular modeling test cases of the force field are presented for a number of simple small molecules, as well as uracil and benzene dimerization, thymine-adenine and cytosine-guanine base pair formation, and adenosine/deoxyadenosine pseudorotation. Several DNA and RNA oligomers and DNA/RNA intercalation complexes with ethidium are also modeled with the force field. In all cases, the modeling results compare favorably with available experimental results. Additionally, conformational trends observed experimentally for nucleic acids by NMR and X-ray crystallographic techniques are reproduced. The modeling results for ethidium intercalation indicate a complex in which the favorable interactions are primarily van der Waals contacts, and in which electrostatic interactions are a relatively minor component. We feel the force field is particularly useful for molecular mechanics aided drug design, and an analysis of modeling results with respect to design of drugs which bind selectively to RNA is presented.

摘要

本文提出了一种用于核酸建模,特别是核酸与阳离子配体复合物建模的势能力场。该力场是由维纳(Weiner, S.J.)、科尔曼(Kollman, P.A.)、阮(Nguyen, D.T.)和凯斯(Case, D.A.)开发的力场的改进版本,发表于《计算化学杂志》(J. Comp. Chem.)第7卷,第230 - 252页(1986年),它基于使用距离依赖介电常数ε = 4rij以及部分中和的磷酸盐来表示溶剂和抗衡离子。与维纳等人的力场相比,变化包括额外的原子类型以及对范德华力、静电作用、氢键和扭转参数的修改。给出了该力场针对一些简单小分子、尿嘧啶和苯二聚化、胸腺嘧啶 - 腺嘌呤和胞嘧啶 - 鸟嘌呤碱基对形成以及腺苷/脱氧腺苷假旋转的分子建模测试案例。还使用该力场对几种DNA和RNA寡聚物以及与溴化乙锭的DNA/RNA嵌入复合物进行了建模。在所有情况下,建模结果与现有的实验结果相比都很有利。此外,通过核磁共振(NMR)和X射线晶体学技术实验观察到的核酸构象趋势也得以重现。溴化乙锭嵌入的建模结果表明,形成的复合物中有利的相互作用主要是范德华接触,而静电相互作用是相对较小的组成部分。我们认为该力场对于分子力学辅助药物设计特别有用,并针对选择性结合RNA的药物设计给出了建模结果分析。

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