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预测生物分子远程构象之间的途径。

Predicting Pathways between Distant Configurations for Biomolecules.

机构信息

Department of Chemistry , University of Cambridge , Lensfield Road , Cambridge CB2 1EW , U.K.

出版信息

J Chem Theory Comput. 2018 Aug 14;14(8):4271-4278. doi: 10.1021/acs.jctc.8b00370. Epub 2018 Jul 17.

Abstract

Many of the most interesting rearrangements associated with function and dysfunction of biomolecules involve complex, highly nonlinear pathways. Predicting these convoluted changes in structure is an important research challenge, since knowledge of key intermediate conformations at an atomic level of detail has the potential to inform the design of novel therapeutic strategies with enhanced specificity. The identification of kinetically relevant pathways can be strongly dependent on the construction of a physically relevant initial pathway between specified end points, avoiding artifacts such as chain crossings. In this contribution we describe an enhanced interpolation procedure to characterize initial pathways for complex rearrangements of a histone tail, α-helix to β-sheet conversion for amyloid-β, and EGFR kinase activation. Complete connected initial pathways with relatively low overall barriers are obtained in each case using an enhanced quasi-continuous interpolation scheme. This approach will help to extend the complexity and time scales accessible to computer simulation.

摘要

许多与生物分子功能和失能相关的最有趣的重排都涉及复杂的、高度非线性的途径。预测这些结构的复杂变化是一个重要的研究挑战,因为在原子水平的详细信息中了解关键的中间构象有可能为设计具有增强特异性的新型治疗策略提供信息。动力学相关途径的识别可能强烈依赖于在指定终点之间构建物理上相关的初始途径,避免出现链交叉等伪影。在本贡献中,我们描述了一种增强的插值程序,用于描述组蛋白尾部的复杂重排、淀粉样β的α-螺旋到β-折叠转换以及 EGFR 激酶激活的初始途径。在每种情况下,使用增强的准连续插值方案获得具有相对较低总势垒的完全连接初始途径。这种方法将有助于扩展计算机模拟的复杂性和时间尺度。

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