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Dissection of Axial-Pore Loop Function during Unfolding and Translocation by a AAA+ Proteolytic Machine

机译:AAA +蛋白水解机在展开和移位过程中剖析轴孔循环功能

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In the axial channels of ClpX and related hexameric AAA+ protein-remodeling rings, the pore-1 loops are thought to play important roles in engaging, mechanically unfolding, and translocating protein substrates. How these loops perform these functions and whether they also prevent substrate dissociation to ensure processive degradation by AAA+ proteases are open questions. Using ClpX pore-1-loop variants, single-molecule force spectroscopy, and ensemble assays, we find that the six pore-1 loops function synchronously to grip and unfold protein substrates during a power stroke but are not important in preventing substrate slipping between power strokes. The importance of grip strength is task dependent. ClpX variants with multiple mutant pore-1 loops translocate substrates as well as the wild-type enzyme against a resisting force but show unfolding defects and a higher frequency of substrate release. These problems are magnified for more mechanically stable target proteins, supporting a threshold model of substrate gripping.
机译:在ClpX和相关六聚体AAA +蛋白重塑环的轴向通道中,孔隙1环被认为在蛋白质底物的结合,机械解折叠和易位中起重要作用。这些环如何执行这些功能以及它们是否还阻止底物解离以确保被AAA +蛋白酶进行性降解是悬而未决的问题。使用ClpX孔1环变体,单分子力谱和整体测定法,我们发现六个1孔环在动力冲程中具有同步抓握和展开蛋白质底物的功能,但对于防止底物在动力之间滑动不重要招。抓地力的重要性取决于任务。具有多个突变的pore-1环的ClpX变体可抵抗抵抗力使底物以及野生型酶易位,但显示出未折叠的缺陷和更高的底物释放频率。对于更机械稳定的靶蛋白,这些问题被放大,从而支持了底物吸附的阈值模型。

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