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首页> 外文期刊>Journal of molecular modeling >Molecular modeling and computational study of the chiral-dependent structures and properties of self-assembling diphenylalanine peptide nanotubes
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Molecular modeling and computational study of the chiral-dependent structures and properties of self-assembling diphenylalanine peptide nanotubes

机译:自组装二苯氨基肽纳米管的手性依赖性结构和性能的分子建模与计算研究

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摘要

The structure and properties of diphenylalanine (FF) peptide nanotubes (PNT) based on phenylalanine were investigated by various molecular modeling methods. The main approach employed semi-empirical quantum-chemical methods (PM3 and AM1). Ab initio, density functional theory methods and molecular mechanical approaches were also used. Both model structures and structures extracted from experimental crystallographic databases obtained by X-ray methods were examined. A comparison of optimized model structures and structures obtained by natural self-assembly revealed important differences depending on chirality: d and l. In both the cases, the effect of chirality on the results of self-assembly of FF PNT was established: PNT based on the d-FF has large condensation energy E-0 in the transverse direction, and form thicker and shorter PNT bundles than those based on l-FF. A topological difference was established: model PNT were optimized into structures consisting of rings, while naturally self-assembled PNT consisted of helical turns. The latter nanotubes differed from the original l-FF and d-FF and formed helix structures of different chirality signs in accordance with the alternation rule of chirality due to macromolecule hierarchy. A topological transition between ring and helix turn PNT structures is discussed: self-assembled natural helix structures are favorable and their energy is lower by a value of the order of one to several eV.
机译:采用各种分子造型方法研究了基于苯丙氨酸的二苯基丙氨酸(FF)肽纳米管(PNT)的结构和性质。主要方法采用半经验量子 - 化学方法(PM3和AM1)。 AB Initio,密度函数理论方法和分子机械方法也被使用。检查了由X射线方法获得的实验结晶数据库中提取的模型结构和结构。通过自然自动组装获得的优化模型结构和结构的比较揭示了根据手性的重要差异:D和L.在这两种情况下,建立了性能对FF PNT的自组装结果的影响:基于D-FF的PNT在横向方向上具有大的冷凝能E-0,并且比那些更厚的PNT捆绑包基于L-FF。建立了一种拓扑差异:模型PNT被优化成由环组成的结构,而自然自组装的PNT由螺旋转弯组成。后者纳米管与原始L-FF和D-FF不同,并根据宏观分子等级引起的交替规则形成不同的手性符号的螺旋结构。讨论了环和螺旋转动PNT结构之间的拓扑过渡:自组装的天然螺旋结构有利,并且它们的能量较低的一对一EV的值。

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