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Conformational changes in the GTPase modules of the signal reception particle and its receptor drive initiation of protein translocation

机译:信号接收颗粒的GTPase模块的构象变化及其受体驱动蛋白质转运的启动

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摘要

During cotranslational protein targeting, two guanosine triphosphatase (GTPase) in the signal recognition particle (SRP) and its receptor (SR) form a unique complex in which hydrolyses of both guanosine triphosphates (GTP) are activated in a shared active site. It was thought that GTP hydrolysis drives the recycling of SRP and SR, but is not crucial for protein targeting. Here, we examined the translocation efficiency of mutant GTPases that block the interaction between SRP and SR at specific stages. Surprisingly, mutants that allow SRP–SR complex assembly but block GTPase activation severely compromise protein translocation. These mutations map to the highly conserved insertion box domain loops that rearrange upon complex formation to form multiple catalytic interactions with the two GTPs. Thus, although GTP hydrolysis is not required, the molecular rearrangements that lead to GTPase activation are essential for protein targeting. Most importantly, our results show that an elaborate rearrangement within the SRP–SR GTPase complex is required to drive the unloading and initiate translocation of cargo proteins.
机译:在共翻译蛋白靶向过程中,信号识别颗粒(SRP)和其受体(SR)中的两个鸟苷三磷酸酶(GTPase)形成了一个独特的复合物,其中两个鸟苷三磷酸(GTP)的水解都在一个共享的活性位点被激活。有人认为,GTP水解可促进SRP和SR的回收利用,但对于蛋白质靶向而言并非至关重要。在这里,我们研究了在特定阶段阻断SRP和SR之间相互作用的突变GTPases的转运效率。出人意料的是,允许SRP–SR复合体装配但阻止GTPase活化的突变体严重损害了蛋白质的转运。这些突变映射到高度保守的插入盒结构域环,该环在复合物形成后重新排列以形成与两个GTP的多重催化相互作用。因此,尽管不需要GTP水解,但导致GTPase活化的分子重排对于蛋白质靶向至关重要。最重要的是,我们的结果表明,需要SRP-SR GTPase复合物内的精细重排来驱动卸载和启动货物蛋白的转运。

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