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Following the signal sequence from ribosomal tunnel exit to signal recognition particle

机译:遵循从核糖体隧道出口到信号识别颗粒的信号序列

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摘要

Membrane and secretory proteins can be co-translationally inserted into or translocated across the membrane. This process is dependent on signal sequence recognition on the ribosome by the signal recognition particle (SRP), which results in targeting of the ribosome-nascent-chain complex to the protein-conducting channel at the membrane. Here we present an ensemble of structures at subnanometre resolution, revealing the signal sequence both at the ribosomal tunnel exit and in the bacterial and eukaryotic ribosome-SRP complexes. Molecular details of signal sequence interaction in both prokaryotic and eukaryotic complexes were obtained by fitting high-resolution molecular models. The signal sequence is presented at the ribosomal tunnel exit in an exposed position ready for accommodation in the hydrophobic groove of the rearranged SRP54 M domain. Upon ribosome binding, the SRP54 NG domain also undergoes a conformational rearrangement, priming it for the subsequent docking reaction with the NG domain of the SRP receptor. These findings provide the structural basis for improving our understanding of the early steps of co-translational protein sorting. ©2006 Nature Publishing Group.
机译:膜和分泌蛋白可以共翻译插入膜或跨膜转运。该过程取决于信号识别颗粒(SRP)对核糖体的信号序列识别,这导致核糖体新生链复合物靶向膜上的蛋白质传导通道。在这里,我们提出一个亚纳米级分辨率的结构整体,揭示了在核糖体隧道出口以及细菌和真核生物核糖体-SRP复合物中的信号序列。通过拟合高分辨率分子模型获得了原核和真核复合物中信号序列相互作用的分子细节。信号序列在核糖体通道出口处处于暴露位置,准备好容纳在重排的SRP54 M结构域的疏水槽中。在核糖体结合后,SRP54 NG结构域也经历构象重排,引发其与随后的SRP受体NG结构域的对接反应。这些发现为提高我们对共翻译蛋白分选早期步骤的理解提供了结构基础。 ©2006 Nature Publishing Group。

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