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对被动和主动聚合物环化动力学的吸引性拥挤效应。

Attractive crowding effect on passive and active polymer looping kinetics.

作者信息

Yan Ran, Zhao Chaonan, Zhao Nanrong

机构信息

College of Chemistry, Sichuan University, Chengdu 610064, China.

出版信息

J Chem Phys. 2024 Apr 7;160(13). doi: 10.1063/5.0199023.

Abstract

Loop formation in complex environments is crucially important to many biological processes in life. In the present work, we adopt three-dimensional Langevin dynamics simulations to investigate passive and active polymer looping kinetics in crowded media featuring polymer-crowder attraction. We find polymers undergo a remarkable coil-globule-coil transition, highlighted by a marked change in the Flory scaling exponent of the gyration radius. Meanwhile, looping time as a function of the crowder's volume fraction demonstrates an apparent non-monotonic alteration. A small number of crowders induce a compact structure, which largely facilitates the looping process. While a large number of crowders heavily impede end-to-end diffusion, looping kinetics is greatly inhibited. For a self-propelled chain, we find that the attractive crowding triggers an unusual activity effect on looping kinetics. Once a globular state is formed, activity takes an effort to open the chain from the compact structure, leading to an unexpected activity-induced inhibition of looping. If the chain maintains a coil state, the dominant role of activity is to enhance diffusivity and, thus, speed up looping kinetics. The novel conformational change and looping kinetics of both passive and active polymers in the presence of attractive crowding highlight a rather distinct scenario that has no analogy in a repulsive crowding counterpart. The underlying mechanism enriches our understanding of the crucial role of attractive interactions in modulating polymer structure and dynamics.

摘要

在复杂环境中形成环对生命中的许多生物过程至关重要。在本工作中,我们采用三维朗之万动力学模拟来研究在具有聚合物-拥挤剂吸引力的拥挤介质中被动和主动聚合物的环化动力学。我们发现聚合物经历了显著的线团-球状体-线团转变,其特征是回转半径的弗洛里标度指数发生明显变化。同时,作为拥挤剂体积分数函数的环化时间表现出明显的非单调变化。少量的拥挤剂会诱导形成紧凑结构,这在很大程度上促进了环化过程。而大量的拥挤剂会严重阻碍端到端扩散,极大地抑制环化动力学。对于自推进链,我们发现有吸引力的拥挤对环化动力学引发了一种不寻常的活性效应。一旦形成球状状态,活性会促使链从紧凑结构中打开,导致意想不到的活性诱导的环化抑制。如果链保持线团状态,活性的主要作用是增强扩散率,从而加快环化动力学。在有吸引力的拥挤情况下,被动和主动聚合物的新型构象变化和环化动力学突出了一种在排斥性拥挤情况下没有类似情况的截然不同的情景。其潜在机制丰富了我们对吸引相互作用在调节聚合物结构和动力学中的关键作用的理解。

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