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Characterization of the Autocleavage Process of the Escherichia coli HtrA Protein: Implications for its Physiological Role

机译:大肠杆菌HtrA蛋白的自动裂解过程的表征:对其生理作用的影响。

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摘要

The Escherichia coli HtrA protein is a periplasmic protease/chaperone that is upregulated under stress conditions. The protease and chaperone activities of HtrA eliminate or refold damaged and unfolded proteins in the bacterial periplasm that are generated upon stress conditions. In the absence of substrates, HtrA oligomerizes into a hexameric cage, but binding of misfolded proteins transforms the hexamers into bigger 12-mer and 24-mer cages that encapsulate the substrates for degradation or refolding. HtrA also undergoes partial degradation as a consequence of self-cleavage of the mature protein, producing short-HtrA protein (s-HtrA). The aim of this study was to examine the physiological role of this self-cleavage process. We found that the only requirement for self-cleavage of HtrA into s-HtrA in vitro was the hydrolysis of protein substrates. In fact, peptides resulting from the hydrolysis of the protein substrates were sufficient to induce autocleavage. However, the continuous presence of full-length substrate delayed the process. In addition, we observed that the hexameric cage structure is required for autocleavage and that s-HtrA accumulates only late in the degradation reaction. These results suggest that self-cleavage occurs when HtrA reassembles back into the resting hexameric structure and peptides resulting from substrate hydrolysis are allosterically stimulating the HtrA proteolytic activity. Our data support a model in which the physiological role of the self-cleavage process is to eliminate the excess of HtrA once the stress conditions cease.
机译:大肠杆菌HtrA蛋白是一种在应激条件下上调的周质蛋白酶/分子伴侣。 HtrA的蛋白酶和伴侣活性消除或重新折叠了在压力条件下产生的细菌周质中受损和未折叠的蛋白质。在没有底物的情况下,HtrA寡聚成六聚体笼,但是错误折叠的蛋白质的结合将六聚体转化为更大的12-mer和24-mer笼,将笼罩在底物中以进行降解或重新折叠。由于成熟蛋白的自我切割,HtrA也会发生部分降解,从而产生短HtrA蛋白(s-HtrA)。这项研究的目的是检查这种自我切割过程的生理作用。我们发现,体外将HtrA自身裂解为s-HtrA的唯一要求是蛋白质底物的水解。实际上,由蛋白质底物水解产生的肽足以诱导自切割。然而,全长基板的连续存在延迟了该过程。此外,我们观察到六聚体笼状结构是自动裂解所必需的,并且s-HtrA仅在降解反应的后期积累。这些结果表明,当HtrA重新组装成静止的六聚体结构并且底物水解产生的肽变构刺激HtrA的蛋白水解活性时,就会发生自我切割。我们的数据支持了一种模型,其中自裂解过程的生理作用是在压力条件停止后消除过量的HtrA。

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