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The shape of the bacterial ribosome exit tunnel affects cotranslational protein folding

机译:细菌核糖体出口通道的形状影响共翻译蛋白折叠

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The E. coli ribosome exit tunnel can accommodate small folded proteins, while larger ones fold outside. It remains unclear, however, to what extent the geometry of the tunnel influences protein folding. Here, using E. coli ribosomes with deletions in loops in proteins uL23 and uL24 that protrude into the tunnel, we investigate how tunnel geometry determines where proteins of different sizes fold. We find that a 29-residue zinc-finger domain normally folding close to the uL23 loop folds deeper in the tunnel in uL23 Δloop ribosomes, while two ~ 100 residue proteins normally folding close to the uL24 loop near the tunnel exit port fold at deeper locations in uL24 Δloop ribosomes, in good agreement with results obtained by coarse-grained molecular dynamics simulations. This supports the idea that cotranslational folding commences once a protein domain reaches a location in the exit tunnel where there is sufficient space to house the folded structure.
机译:大肠杆菌核糖体出口通道可以容纳小的折叠蛋白,而较大的折叠到外面。但是,尚不清楚隧道的几何形状在多大程度上影响蛋白质折叠。在这里,我们使用大肠杆菌核糖体,其中的uL23和uL24蛋白质的环中有缺失,这些蛋白质突出到隧道中,我们研究了隧道的几何形状如何确定不同大小的蛋白质在何处折叠。我们发现通常折叠至uL23环附近的29个残基锌指结构域在uL23Δ环核糖体中在隧道中折叠得更深,而通常在隧道出口附近的uL24环附近折叠的两个〜100个残基蛋白在更深的位置折叠。在uL24Δloop核糖体中,与通过粗粒分子动力学模拟获得的结果非常吻合。这支持了这样的想法,即一旦蛋白质结构域到达出口通道中有足够空间容纳折叠结构的位置,即开始进行共翻译折叠。

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