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无定形区域/蛋白质聚集体相分离和液滴形成的热力学和顺序特征。

Thermodynamic and sequential characteristics of phase separation and droplet formation for an intrinsically disordered region/protein ensemble.

机构信息

State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin, People's Republic of China.

Department of Chemistry & Physics, State University of New York at Stony Brook, Stony Brook, New York, United States of America.

出版信息

PLoS Comput Biol. 2021 Mar 8;17(3):e1008672. doi: 10.1371/journal.pcbi.1008672. eCollection 2021 Mar.

Abstract

Liquid-liquid phase separation (LLPS) of some IDPs/IDRs can lead to the formation of the membraneless organelles in vitro and in vivo, which are essential for many biological processes in the cell. Here we select three different IDR segments of chaperon Swc5 and develop a polymeric slab model at the residue-level. By performing the molecular dynamics simulations, LLPS can be observed at low temperatures even without charge interactions and disappear at high temperatures. Both the sequence length and the charge pattern of the Swc5 segments can influence the critical temperature of LLPS. The results suggest that the effects of the electrostatic interactions on the LLPS behaviors can change significantly with the ratios and distributions of the charged residues, especially the sequence charge decoration (SCD) values. In addition, three different forms of swc conformation can be distinguished on the phase diagram, which is different from the conventional behavior of the free IDP/IDR. Both the packed form (the condensed-phase) and the dispersed form (the dilute-phase) of swc chains are found to be coexisted when LLPS occurs. They change to the fully-spread form at high temperatures. These findings will be helpful for the investigation of the IDP/IDR ensemble behaviors as well as the fundamental mechanism of the LLPS process in bio-systems.

摘要

液-液相分离(LLPS)可导致无膜细胞器在体外和体内形成,这对于细胞中的许多生物过程是必不可少的。在这里,我们选择了伴侣蛋白 Swc5 的三个不同的 IDR 片段,并在残基水平上开发了一个聚合物平板模型。通过进行分子动力学模拟,即使没有电荷相互作用,也可以在低温下观察到 LLPS,而在高温下则会消失。Swc5 片段的序列长度和电荷模式都可以影响 LLPS 的临界温度。结果表明,静电相互作用对 LLPS 行为的影响随着带电残基的比例和分布的变化而显著变化,特别是序列电荷修饰(SCD)值。此外,在相图上可以区分出三种不同形式的 swc 构象,这与游离 IDP/IDR 的常规行为不同。当发生 LLPS 时,发现 swc 链的堆积形式(凝聚相)和分散形式(稀相)都同时存在。它们在高温下转变为完全伸展的形式。这些发现将有助于研究 IDP/IDR 集合行为以及生物系统中 LLPS 过程的基本机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5ae8/7939360/b408cc666ad4/pcbi.1008672.g001.jpg

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