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非特异性相互作用可导致卷曲螺旋蛋白模型中的液-液相分离。

Nonspecific interactions can lead to liquid-liquid phase separation in coiled-coil proteins models.

作者信息

Ramirez Dominique A, Shrimpton Anastasia, Shirts Michael R, Hough Loren E

机构信息

Department of Biochemistry, University of Colorado Boulder, Boulder CO, 80309, USA.

Department of Chemical and Biological Engineering, University of Colorado Boulder, Boulder CO, 80309, USA.

出版信息

bioRxiv. 2025 May 15:2025.05.09.653163. doi: 10.1101/2025.05.09.653163.

Abstract

Liquid-liquid phase separation (LLPS) is one mechanism that cells can use to organize biomolecules spatially and functionally. Some coiled-coil (CC) proteins, such as the centrosomal proteins pericentrin and spd-5, are thought to LLPS, but it is currently unknown what parts of these proteins facilitate the process. It is thought, however, that the numerous CC domains in these proteins might be contributing to their LLPS. We recently showed, using computational studies and designed proteins, that CC domains can facilitate LLPS through specific interactions between the CC domains themselves, meaning that each CC was designed to interact only with a subset of other CCs in the system. This is in contrast to nonspecific interactions, where all CCs would be able to interact with all other CCs in the system, which is akin to some interactions (e.g. -) seen in phase-separating intrinsically disordered proteins. Because the specificity of interactions between natural CC domains is tunable in a sequence-dependent fashion, CC domains present a unique system that allows us to investigate the contributions of specific versus nonspecific interactions on LLPS. We show, in our computational system, that CC proteins with nonspecific interactions can LLPS but with less propensity compared to specific interactions. The LLPS propensity of CC proteins with nonspecific interactions can be improved by altering the structure and dynamics of linker segments, without directly changing the specificity of interactions. We also demonstrate that the number of intra-chain CC contacts plays a direct role in determining LLPS for nonspecifically interacting proteins. These results have broad implications for the role of linker segments-protein features beyond the interaction domains e.g. 'stickers'-in protein LLPS and the formation of biomolecular condensates.

摘要

液-液相分离(LLPS)是细胞可用于在空间和功能上组织生物分子的一种机制。一些卷曲螺旋(CC)蛋白,如中心体蛋白 pericentrin 和 spd-5,被认为会发生液-液相分离,但目前尚不清楚这些蛋白的哪些部分促进了这一过程。然而,据认为这些蛋白中众多的 CC 结构域可能促成了它们的液-液相分离。我们最近通过计算研究和设计蛋白表明,CC 结构域可通过自身之间的特异性相互作用促进液-液相分离,这意味着每个 CC 被设计为仅与系统中的其他 CC 的一个子集相互作用。这与非特异性相互作用形成对比,在非特异性相互作用中,所有 CC 都能够与系统中的所有其他 CC 相互作用,这类似于在相分离的内在无序蛋白中看到的一些相互作用(例如 -)。由于天然 CC 结构域之间相互作用的特异性可以序列依赖的方式进行调节,CC 结构域提供了一个独特的系统,使我们能够研究特异性与非特异性相互作用对液-液相分离的贡献。我们在我们的计算系统中表明,具有非特异性相互作用的 CC 蛋白可以发生液-液相分离,但与特异性相互作用相比,其倾向较小。通过改变连接子片段的结构和动力学,可以提高具有非特异性相互作用的 CC 蛋白的液-液相分离倾向,而无需直接改变相互作用的特异性。我们还证明,链内 CC 接触的数量在确定非特异性相互作用蛋白的液-液相分离中起直接作用。这些结果对连接子片段(超出相互作用结构域的蛋白特征,例如“贴纸”)在蛋白液-液相分离和生物分子凝聚物形成中的作用具有广泛影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4843/12132467/906ef69e837e/nihpp-2025.05.09.653163v1-f0001.jpg

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