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Mechanical Protein Unfolding and Degradation
Annual Review of Physiology ( IF 15.7 ) Pub Date : 2018-02-12 00:00:00 , DOI: 10.1146/annurev-physiol-021317-121303
Adrian O. Olivares 1 , Tania A. Baker 2 , Robert T. Sauer 3
Affiliation  

AAA+ proteolytic machines use energy from ATP hydrolysis to degrade damaged, misfolded, or unneeded proteins. Protein degradation occurs within a barrel-shaped self-compartmentalized peptidase. Before protein substrates can enter this peptidase, they must be unfolded and then translocated through the axial pore of an AAA+ ring hexamer. An unstructured region of the protein substrate is initially engaged in the axial pore, and conformational changes in the ring, powered by ATP hydrolysis, generate a mechanical force that pulls on and denatures the substrate. The same conformational changes in the hexameric ring then mediate mechanical translocation of the unfolded polypeptide into the peptidase chamber. For the bacterial ClpXP and ClpAP AAA+ proteases, the mechanical activities of protein unfolding and translocation have been directly visualized by single-molecule optical trapping. These studies in combination with structural and biochemical experiments illuminate many principles that underlie this universal mechanism of ATP-fueled protein unfolding and subsequent destruction.

中文翻译:


机械蛋白质解折叠

AAA +蛋白水解机器利用ATP水解产生的能量来降解受损,错误折叠或不需要的蛋白质。蛋白质降解发生在桶形的自我分隔肽酶内。在蛋白质底物可以进入此肽酶之前,必须将它们展开,然后通过AAA +环六聚体的轴向孔进行转运。蛋白质底物的非结构化区域最初被接合在轴向孔中,环中的构象变化由ATP水解提供动力,产生拉动底物并使底物变性的机械力。然后,六聚环中相同的构象变化会介导未折叠的多肽进入肽酶腔室的机械转运。对于细菌ClpXP和ClpAP AAA +蛋白酶,蛋白质解折叠和易位的机械活性已通过单分子光学捕获直接观察到。这些研究与结构和生化实验相结合,阐明了许多原理,这些原理是这种由ATP推动的蛋白质展开和随后破坏的普遍机制的基础。

更新日期:2018-02-12
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