Department of Chemistry, Korea Advanced Institute of Science and Technology, Daejeon, 34141, Korea.
Nat Commun. 2020 Nov 3;11(1):5554. doi: 10.1038/s41467-020-19391-8.
Phase separation of specific biomolecules into liquid droplet-like condensates is a key mechanism to form membrane-less organelles, which spatio-temporally organize diverse biochemical processes in cells. To investigate the working principles of these biomolecular condensates as dynamic reaction centers, precise control of diverse condensate properties is essential. Here, we design a strategy for metal ion-induced clustering of minimal protein modules to produce liquid protein condensates, the properties of which can be widely varied by simple manipulation of the protein clustering systems. The droplet forming-minimal module contains only a single receptor protein and a binding ligand peptide with a hexahistidine tag for divalent metal ion-mediated clustering. A wide range of protein condensate properties such as droplet forming tendency, droplet morphology, inside protein diffusivity, protein recruitment, and droplet density can be varied by adjusting the nature of receptor/ligand pairs or used metal ions, metal/protein ratios, incubation time, binding motif variation on recruited proteins, and even spacing between receptor/ligand pairs and the hexahistidine tag. We also demonstrate metal-ion-induced protein phase separation in cells. The present phase separation strategy provides highly versatile protein condensates, which will greatly facilitate investigation of molecular and structural codes of droplet-forming proteins and the monitoring of biomolecular behaviors inside diverse protein condensates.
特定生物分子相分离为液滴样凝聚体是形成无膜细胞器的关键机制,这些细胞器在细胞内时空组织多种生化过程。为了研究这些生物分子凝聚体作为动态反应中心的工作原理,对多种凝聚体性质进行精确控制至关重要。在这里,我们设计了一种策略,用于通过最小蛋白模块的金属离子诱导聚集来产生液体蛋白凝聚体,通过简单地操纵蛋白聚集系统,可广泛改变液滴形成的最小模块的性质。该液滴形成最小模块仅包含单个受体蛋白和带有六组氨酸标签的结合配体肽,用于二价金属离子介导的聚集。通过调节受体/配体对或所用金属离子、金属/蛋白比、孵育时间、募集蛋白上结合基序的变化、甚至受体/配体对和六组氨酸标签之间的间隔等,可改变液滴形成倾向、液滴形态、蛋白内扩散性、蛋白募集和液滴密度等各种蛋白凝聚体性质。我们还证明了细胞中金属离子诱导的蛋白相分离。本相分离策略提供了高度通用的蛋白凝聚体,这将极大地促进对形成液滴的蛋白的分子和结构密码的研究,以及对多种蛋白凝聚体内生物分子行为的监测。