反射蛋白 A1 蛋白的平衡组装和液-液相分离胶体模型。

IF 3.2 3区 生物学 Q2 BIOPHYSICS Biophysical journal Pub Date : 2024-09-17 Epub Date: 2024-07-04 DOI:10.1016/j.bpj.2024.07.004
Tse-Chiang Huang, Robert Levenson, Youli Li, Phillip Kohl, Daniel E Morse, M Scott Shell, Matthew E Helgeson
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引用次数: 0

摘要

反射蛋白是一种固有无序蛋白(IDP),它能够根据其组装引起的渗透特性来调节头足类动物的生物光子伪装。众所周知,反射蛋白可逆地自组装成离散的、大小可控的团块和凝聚的液滴,并敏感地依赖于蛋白质的净电荷,这使得反射蛋白对 pH 值、磷酸化和电场具有刺激响应性。尽管为描述这种行为做出了大量努力,但人们尚未完全了解反射蛋白组装的详细物理机制。在这里,我们通过实验和模拟相结合的方法,寻求对反射蛋白组装的粗粒度分子理解。我们假设,反射蛋白的组装和相行为可以用一个非常简单的胶体模型来解释,即单个蛋白质单体通过短程吸引和长程排斥(SA-LR)对势有效地相互作用。我们根据小角 X 射线散射测量结果为反射蛋白 A1 的粗粒度 SA-LR 相互作用位势设定了参数,然后利用 Gouy-Chapman 理论将其扩展到一定的 pH 值范围,以模拟单体间的静电相互作用。与 pH 值相关的 SA-LR 相互作用随后被用于反射蛋白组装的分子动力学模拟,成功地捕捉到了反射蛋白的一些定性特征,包括与 pH 值相关的离散大小纳米团簇的形成和高 pH 值下的液-液相分离,从而得出了反射蛋白的推定相图。重要的是,我们发现在低 pH 值条件下,大小受控的反射蛋白团簇是平衡组装体,它们动态交换蛋白质单体以保持平衡的大小分布。这些发现提供了对反射蛋白平衡组装的机理理解,并表明胶体尺度模型捕捉到了关键的驱动力和相互作用,可以解释原生反射蛋白行为的热力学方面。此外,本研究中介绍的 SA-LR 相互作用的成功表明了胶体解释一系列 IDPs 中的相互作用和现象的潜力。
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A colloidal model for the equilibrium assembly and liquid-liquid phase separation of the reflectin A1 protein.

Reflectin is an intrinsically disordered protein known for its ability to modulate the biophotonic camouflage of cephalopods based on its assembly-induced osmotic properties. Its reversible self-assembly into discrete, size-controlled clusters and condensed droplets are known to depend sensitively on the net protein charge, making reflectin stimuli-responsive to pH, phosphorylation, and electric fields. Despite considerable efforts to characterize this behavior, the detailed physical mechanisms of reflectin's assembly are not yet fully understood. Here, we pursue a coarse-grained molecular understanding of reflectin assembly using a combination of experiments and simulations. We hypothesize that reflectin assembly and phase behavior can be explained from a remarkably simple colloidal model whereby individual protein monomers effectively interact via a short-range attractive and long-range repulsive (SA-LR) pair potential. We parameterize a coarse-grained SA-LR interaction potential for reflectin A1 from small-angle x-ray scattering measurements, and then extend it to a range of pH values using Gouy-Chapman theory to model monomer-monomer electrostatic interactions. The pH-dependent SA-LR interaction is then used in molecular dynamics simulations of reflectin assembly, which successfully capture a number of qualitative features of reflectin, including pH-dependent formation of discrete-sized nanoclusters and liquid-liquid phase separation at high pH, resulting in a putative phase diagram for reflectin. Importantly, we find that at low pH size-controlled reflectin clusters are equilibrium assemblies, which dynamically exchange protein monomers to maintain an equilibrium size distribution. These findings provide a mechanistic understanding of the equilibrium assembly of reflectin, and suggest that colloidal-scale models capture key driving forces and interactions to explain thermodynamic aspects of native reflectin behavior. Furthermore, the success of SA-LR interactions presented in this study demonstrates the potential of a colloidal interpretation of interactions and phenomena in a range of intrinsically disordered proteins.

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来源期刊
Biophysical journal
Biophysical journal 生物-生物物理
CiteScore
6.10
自引率
5.90%
发文量
3090
审稿时长
2 months
期刊介绍: BJ publishes original articles, letters, and perspectives on important problems in modern biophysics. The papers should be written so as to be of interest to a broad community of biophysicists. BJ welcomes experimental studies that employ quantitative physical approaches for the study of biological systems, including or spanning scales from molecule to whole organism. Experimental studies of a purely descriptive or phenomenological nature, with no theoretical or mechanistic underpinning, are not appropriate for publication in BJ. Theoretical studies should offer new insights into the understanding ofexperimental results or suggest new experimentally testable hypotheses. Articles reporting significant methodological or technological advances, which have potential to open new areas of biophysical investigation, are also suitable for publication in BJ. Papers describing improvements in accuracy or speed of existing methods or extra detail within methods described previously are not suitable for BJ.
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