Gene Center Munich, Ludwig-Maximilian-University, Munich, Germany.
John von Neumann Institute for Computing, Jülich Supercomputing Centre, Institute for Complex Systems - Structural Biochemistry (ICS-6), Forschungszentrum Jülich GmbH, Jülich, Germany.
EMBO Rep. 2019 Oct 4;20(10):e48191. doi: 10.15252/embr.201948191. Epub 2019 Aug 5.
The Sec translocon provides the lipid bilayer entry for ribosome-bound nascent chains and thus facilitates membrane protein biogenesis. Despite the appreciated role of the native environment in the translocon:ribosome assembly, structural information on the complex in the lipid membrane is scarce. Here, we present a cryo-electron microscopy-based structure of bacterial translocon SecYEG in lipid nanodiscs and elucidate an early intermediate state upon insertion of the FtsQ anchor domain. Insertion of the short nascent chain causes initial displacements within the lateral gate of the translocon, where α-helices 2b, 7, and 8 tilt within the membrane core to "unzip" the gate at the cytoplasmic side. Molecular dynamics simulations demonstrate that the conformational change is reversed in the absence of the ribosome, and suggest that the accessory α-helices of SecE subunit modulate the lateral gate conformation. Site-specific cross-linking validates that the FtsQ nascent chain passes the lateral gate upon insertion. The structure and the biochemical data suggest that the partially inserted nascent chain remains highly flexible until it acquires the transmembrane topology.
Sec 转运通道为结合核糖体的新生肽链提供了脂双层进入的通道,从而促进了膜蛋白的生物发生。尽管天然环境在转运通道:核糖体组装中的作用得到了认可,但关于脂膜中复合物的结构信息却很少。在这里,我们展示了细菌转运通道 SecYEG 在脂质纳米盘中的冷冻电镜结构,并阐明了在插入 FtsQ 锚定结构域时的早期中间状态。插入短的新生链会导致转运通道的侧门发生初始位移,其中α-螺旋 2b、7 和 8 在膜核心内倾斜,从而在细胞质侧“解开”门。分子动力学模拟表明,在没有核糖体的情况下,构象变化会被逆转,并表明 SecE 亚基的辅助α-螺旋调节侧门构象。定点交联验证了 FtsQ 新生链在插入时穿过侧门。该结构和生化数据表明,部分插入的新生链在获得跨膜拓扑结构之前仍然保持高度的灵活性。