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通过非线性流形学习提取核小体动力学的集体运动。

Extracting collective motions underlying nucleosome dynamics via nonlinear manifold learning.

机构信息

Institute for Molecular Engineering, University of Chicago, Chicago, Illinois 60637, USA.

出版信息

J Chem Phys. 2019 Feb 7;150(5):054902. doi: 10.1063/1.5063851.

Abstract

The identification of effective collective variables remains a challenge in molecular simulations of complex systems. Here, we use a nonlinear manifold learning technique known as the diffusion map to extract key dynamical motions from a complex biomolecular system known as the nucleosome: a DNA-protein complex consisting of a DNA segment wrapped around a disc-shaped group of eight histone proteins. We show that without any a priori information, diffusion maps can identify and extract meaningful collective variables that characterize the motion of the nucleosome complex. We find excellent agreement between the collective variables identified by the diffusion map and those obtained manually using a free energy-based analysis. Notably, diffusion maps are shown to also identify subtle features of nucleosome dynamics that did not appear in those manually specified collective variables. For example, diffusion maps identify the importance of looped conformations in which DNA bulges away from the histone complex that are important for the motion of DNA around the nucleosome. This work demonstrates that diffusion maps can be a promising tool for analyzing very large molecular systems and for identifying their characteristic slow modes.

摘要

有效集体变量的识别在复杂系统的分子模拟中仍然是一个挑战。在这里,我们使用一种称为扩散映射的非线性流形学习技术,从一种称为核小体的复杂生物分子系统中提取关键动力学运动。核小体是一种由 DNA 片段缠绕在一个由八个组蛋白组成的盘状基团上的 DNA-蛋白质复合物。我们表明,在没有任何先验信息的情况下,扩散映射可以识别并提取描述核小体复合物运动的有意义的集体变量。我们发现,扩散映射识别的集体变量与使用基于自由能的分析手动获得的那些变量之间具有极好的一致性。值得注意的是,扩散映射还显示出识别核小体动力学中细微特征的能力,这些特征在手动指定的集体变量中没有出现。例如,扩散映射确定了 DNA 从组蛋白复合物上凸出的环化构象的重要性,这些构象对于 DNA 在核小体周围的运动很重要。这项工作表明,扩散映射可以成为分析非常大的分子系统和识别其特征慢模式的有前途的工具。

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