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将单分子折叠过程映射到拓扑空间上。

Mapping a single-molecule folding process onto a topological space.

机构信息

Leiden Academic Centre for Drug Research, Faculty of Mathematics and Natural Sciences, Leiden University, Leiden, The Netherlands.

出版信息

Phys Chem Chem Phys. 2019 Sep 18;21(36):20338-20345. doi: 10.1039/c9cp03175h.

Abstract

Physics of protein folding has been dominated by conceptual frameworks including the nucleation-propagation mechanism and the diffusion-collision model, and none address the topological properties of a chain during a folding process. Single-molecule interrogation of folded biomolecules has enabled real-time monitoring of folding processes at an unprecedented resolution. Despite these advances, the topology landscape has not been fully mapped for any chain. Using a novel circuit topology approach, we map the topology landscape of a model polymeric chain. Inspired by single-molecule mechanical interrogation studies, we restrained the ends of a chain and followed fold nucleation dynamics. We find that, before the nucleation, transient local entropic loops dominate. Although the nucleation length of globules is dependent on the cohesive interaction, the ultimate topological states of the collapsed polymer are largely independent of the interaction but depend on the speed of the folding process. After the nucleation, transient topological rearrangements are observed that converge to a steady-state, where the fold grows in a self-similar manner.

摘要

蛋白质折叠的物理性质一直由包括成核-扩展机制和扩散-碰撞模型在内的概念框架所主导,而这些模型都没有涉及到链在折叠过程中的拓扑性质。对折叠生物分子的单分子检测使我们能够以前所未有的分辨率实时监测折叠过程。尽管取得了这些进展,但任何链的拓扑景观都没有被完全描绘出来。我们使用一种新颖的电路拓扑方法来绘制模型聚合物链的拓扑景观。受单分子力学检测研究的启发,我们限制了链的两端,并跟踪折叠成核动力学。我们发现,在成核之前,瞬态局部熵环占主导地位。虽然球的成核长度取决于内聚相互作用,但折叠聚合物的最终拓扑状态在很大程度上与相互作用无关,而是取决于折叠过程的速度。在成核之后,观察到瞬态拓扑重排,收敛到一个稳定状态,其中折叠以自相似的方式生长。

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