Department of Biochemistry and Molecular Biology, The University of Chicago, Chicago, United States.
Department of Molecular Genetics and Cell Biology, The University of Chicago, Chicago, United States.
Elife. 2020 Aug 21;9:e56889. doi: 10.7554/eLife.56889.
Membrane proteins with multiple transmembrane domains play critical roles in cell physiology, but little is known about the machinery coordinating their biogenesis at the endoplasmic reticulum. Here we describe a ~ 360 kDa ribosome-associated complex comprising the core Sec61 channel and five accessory factors: TMCO1, CCDC47 and the Nicalin-TMEM147-NOMO complex. Cryo-electron microscopy reveals a large assembly at the ribosome exit tunnel organized around a central membrane cavity. Similar to protein-conducting channels that facilitate movement of transmembrane segments, cytosolic and luminal funnels in TMCO1 and TMEM147, respectively, suggest routes into the central membrane cavity. High-throughput mRNA sequencing shows selective translocon engagement with hundreds of different multi-pass membrane proteins. Consistent with a role in multi-pass membrane protein biogenesis, cells lacking different accessory components show reduced levels of one such client, the glutamate transporter EAAT1. These results identify a new human translocon and provide a molecular framework for understanding its role in multi-pass membrane protein biogenesis.
具有多个跨膜结构域的膜蛋白在细胞生理学中发挥着关键作用,但人们对协调它们在内质网上生物发生的机制知之甚少。在这里,我们描述了一个由核糖体相关的核心 Sec61 通道和五个辅助因子组成的~360 kDa 复合物:TMCO1、CCDC47 和 Nicalin-TMEM147-NOMO 复合物。低温电子显微镜揭示了在核糖体出口隧道处围绕中央膜腔组织的大型组装体。类似于促进跨膜片段运动的蛋白传导通道,TMCO1 和 TMEM147 的细胞质和腔内腔分别表明了进入中央膜腔的途径。高通量 mRNA 测序显示,选择性易位体与数百种不同的多跨膜蛋白结合。与多跨膜蛋白生物发生的作用一致,缺乏不同辅助成分的细胞显示出一种此类客户(谷氨酸转运蛋白 EAAT1)的水平降低。这些结果鉴定了一种新的人类易位体,并为理解其在多跨膜蛋白生物发生中的作用提供了分子框架。