Institute for Molecular Bioscience, The University of Queensland, St. Lucia, QLD, Australia.
Centre for Microscopy and Microanalysis, St. Lucia, QLD, Australia.
Nat Commun. 2021 Feb 10;12(1):931. doi: 10.1038/s41467-021-21035-4.
Caveolae are spherically shaped nanodomains of the plasma membrane, generated by cooperative assembly of caveolin and cavin proteins. Cavins are cytosolic peripheral membrane proteins with negatively charged intrinsically disordered regions that flank positively charged α-helical regions. Here, we show that the three disordered domains of Cavin1 are essential for caveola formation and dynamic trafficking of caveolae. Electrostatic interactions between disordered regions and α-helical regions promote liquid-liquid phase separation behaviour of Cavin1 in vitro, assembly of Cavin1 oligomers in solution, generation of membrane curvature, association with caveolin-1, and Cavin1 recruitment to caveolae in cells. Removal of the first disordered region causes irreversible gel formation in vitro and results in aberrant caveola trafficking through the endosomal system. We propose a model for caveola assembly whereby fuzzy electrostatic interactions between Cavin1 and caveolin-1 proteins, combined with membrane lipid interactions, are required to generate membrane curvature and a metastable caveola coat.
小窝是由窖蛋白和窖质蛋白协同组装而成的质膜球形纳米域。窖质蛋白是带有负电荷的无序区侧翼带有正电荷α-螺旋区的细胞质外周膜蛋白。在这里,我们表明窖质蛋白 1 的三个无序结构域对于小窝的形成和小窝的动态运输是必不可少的。无序区和α-螺旋区之间的静电相互作用促进窖质蛋白 1 在体外的液-液相分离行为、窖质蛋白 1 低聚物在溶液中的组装、膜曲率的产生、与窖蛋白-1 的结合以及窖质蛋白 1 在细胞中的募集到小窝。去除第一个无序区在体外导致不可逆的凝胶形成,并导致小窝通过内体系统异常运输。我们提出了一个小窝组装的模型,即窖质蛋白 1 和窖蛋白-1 蛋白之间模糊的静电相互作用,加上膜脂相互作用,是产生膜曲率和亚稳态小窝涂层所必需的。