Protein conformation and biomolecular condensates

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Current Research in Structural Biology Pub Date : 2022-01-01 DOI:10.1016/j.crstbi.2022.09.004
Diego S. Vazquez, Pamela L. Toledo, Alejo R. Gianotti, Mario R. Ermácora
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引用次数: 10

Abstract

Protein conformation and cell compartmentalization are fundamental concepts and subjects of vast scientific endeavors. In the last two decades, we have witnessed exciting advances that unveiled the conjunction of these concepts. An avalanche of studies highlighted the central role of biomolecular condensates in membraneless subcellular compartmentalization that permits the spatiotemporal organization and regulation of myriads of simultaneous biochemical reactions and macromolecular interactions. These studies have also shown that biomolecular condensation, driven by multivalent intermolecular interactions, is mediated by order-disorder transitions of protein conformation and by protein domain architecture. Conceptually, protein condensation is a distinct level in protein conformational landscape in which collective folding of large collections of molecules takes place. Biomolecular condensates arise by the physical process of phase separation and comprise a variety of bodies ranging from membraneless organelles to liquid condensates to solid-like conglomerates, spanning lengths from mesoscopic clusters (nanometers) to micrometer-sized objects. In this review, we summarize and discuss recent work on the assembly, composition, conformation, material properties, thermodynamics, regulation, and functions of these bodies. We also review the conceptual framework for future studies on the conformational dynamics of condensed proteins in the regulation of cellular processes.

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蛋白质构象和生物分子凝聚物
蛋白质构象和细胞区隔是基本概念,也是大量科学研究的主题。在过去的二十年里,我们见证了令人兴奋的进步,揭示了这些概念的结合。大量的研究强调了生物分子凝聚物在无膜亚细胞区隔化中的核心作用,它允许无数同时发生的生化反应和大分子相互作用的时空组织和调节。这些研究还表明,由多价分子间相互作用驱动的生物分子凝聚是由蛋白质构象的有序-无序转变和蛋白质结构域结构介导的。从概念上讲,蛋白质凝聚是蛋白质构象景观中的一个独特水平,其中大量分子的集体折叠发生。生物分子凝聚体是由相分离的物理过程产生的,包括各种各样的物体,从无膜细胞器到液体凝聚体再到固体状凝聚体,跨度从介观簇(纳米)到微米大小的物体。在本文中,我们总结和讨论了近年来在这些体的组装、组成、构象、材料性质、热力学、调节和功能方面的研究进展。我们还回顾了在细胞过程调节中凝聚蛋白构象动力学的未来研究的概念框架。
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来源期刊
CiteScore
4.60
自引率
0.00%
发文量
33
审稿时长
104 days
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