Corey Robin A, Allen William J, Komar Joanna, Masiulis Simonas, Menzies Sam, Robson Alice, Collinson Ian
School of Biochemistry, University of Bristol, University Walk, Bristol BS8 1TD, UK.
School of Biological and Chemical Sciences, Queen Mary University of London, Mile End Road, London E1 4NS, UK.
Structure. 2016 Apr 5;24(4):518-527. doi: 10.1016/j.str.2016.02.001. Epub 2016 Mar 10.
The Sec translocon performs protein secretion and membrane protein insertion at the plasma membrane of bacteria and archaea (SecYEG/β), and the endoplasmic reticular membrane of eukaryotes (Sec61). Despite numerous structures of the complex, the mechanism underlying translocation of pre-proteins, driven by the ATPase SecA in bacteria, remains unresolved. Here we present a series of biochemical and computational analyses exploring the consequences of signal sequence binding to SecYEG. The data demonstrate that a signal sequence-induced movement of transmembrane helix 7 unlocks the translocon and that this conformational change is communicated to the cytoplasmic faces of SecY and SecE, involved in SecA binding. Our findings progress the current understanding of the dynamic action of the translocon during the translocation initiation process. The results suggest that the converging effects of the signal sequence and SecA at the cytoplasmic face of SecYEG are decisive for the intercalation and translocation of pre-protein through the SecY channel.
Sec转运体在细菌和古菌的质膜(SecYEG/β)以及真核生物的内质网膜(Sec61)上执行蛋白质分泌和膜蛋白插入功能。尽管该复合物有众多结构,但由细菌中的ATP酶SecA驱动的前体蛋白转运机制仍未得到解决。在此,我们展示了一系列生化和计算分析,以探究信号序列与SecYEG结合的后果。数据表明,信号序列诱导的跨膜螺旋7的移动会解锁转运体,并且这种构象变化会传递到参与SecA结合的SecY和SecE的细胞质面。我们的发现推动了目前对转运体在转运起始过程中动态作用的理解。结果表明,信号序列和SecA在SecYEG细胞质面的汇聚效应对于前体蛋白通过SecY通道的插入和转运起决定性作用。