Ubiquitin-driven protein condensation stabilizes clathrin-mediated endocytosis

Feng Yuan, Sadhana Gollapudi, Kasey J Day, Grant Ashby, Arjun Sangani, Brandon T Malady, Liping Wang, Eileen M Lafer, Jon M Huibregtse, Jeanne C Stachowiak
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Abstract

Clathrin-mediated endocytosis is an essential cellular pathway that enables signaling and recycling of transmembrane proteins and lipids. During endocytosis, dozens of cytosolic proteins come together at the plasma membrane, assembling into a highly interconnected network that drives endocytic vesicle biogenesis. Recently, multiple groups have reported that early endocytic proteins form flexible condensates, which provide a platform for efficient assembly of endocytic vesicles. Given the importance of this network in the dynamics of endocytosis, how might cells regulate its stability? Many receptors and endocytic proteins are ubiquitylated, while early endocytic proteins such as Eps15 contain ubiquitin-interacting motifs. Therefore, we examined the influence of ubiquitin on the stability of the early endocytic protein network. In vitro, we found that recruitment of small amounts of polyubiquitin dramatically increased the stability of Eps15 condensates, suggesting that ubiquitylation could nucleate endocytic assemblies. In live cell imaging experiments, a version of Eps15 that lacked the ubiquitin-interacting motif failed to rescue defects in endocytic initiation created by Eps15 knockout. Furthermore, fusion of Eps15 to a deubiquitylase enzyme destabilized nascent endocytic sites within minutes. In both in vitro and live cell settings, dynamic exchange of Eps15 proteins, a measure of protein network stability, was decreased by Eps15-ubiquitin interactions and increased by loss of ubiquitin. These results collectively suggest that ubiquitylation drives assembly of the flexible protein network responsible for catalyzing endocytic events. More broadly, this work illustrates a biophysical mechanism by which ubiquitylated transmembrane proteins at the plasma membrane could regulate the efficiency of endocytic internalization.
泛素驱动的蛋白质缩聚可稳定凝集素介导的内吞作用
凝集素介导的内吞作用是一种重要的细胞途径,可实现跨膜蛋白和脂质的信号传递和再循环。在内吞过程中,数十种细胞膜蛋白聚集在质膜上,组装成一个高度相互连接的网络,推动内吞囊泡的生物生成。最近,多个研究小组报告称,早期内吞蛋白形成柔性凝聚体,为内吞囊泡的高效组装提供了平台。鉴于该网络在内吞作用动态过程中的重要性,细胞如何调节其稳定性?许多受体和内吞蛋白被泛素化,而 Eps15 等早期内吞蛋白含有泛素相互作用基序。因此,我们研究了泛素对早期内吞蛋白网络稳定性的影响。在体外,我们发现少量多泛素的加入大大增加了 Eps15 凝聚物的稳定性,这表明泛素化可以使内细胞组装成核。在活细胞成像实验中,缺乏泛素连接基序的 Eps15 版本无法挽救 Eps15 基因敲除造成的内细胞启动缺陷。此外,将 Eps15 与去泛素化酶融合后,可在几分钟内破坏新生内细胞位点的稳定性。在体外和活细胞环境中,Eps15 蛋白的动态交换(一种衡量蛋白质网络稳定性的指标)因 Eps15 与泛素的相互作用而减少,因泛素的缺失而增加。这些结果共同表明,泛素化推动了负责催化内吞事件的灵活蛋白质网络的组装。更广泛地说,这项工作说明了一种生物物理机制,即在质膜上泛素化的跨膜蛋白可以调节内吞内化的效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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