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热耐受性需要通过ClpB的中央孔进行底物转运,使聚集的蛋白质重新折叠。

Thermotolerance requires refolding of aggregated proteins by substrate translocation through the central pore of ClpB.

作者信息

Weibezahn Jimena, Tessarz Peter, Schlieker Christian, Zahn Regina, Maglica Zeljka, Lee Sukyeong, Zentgraf Hanswalter, Weber-Ban Eilika U, Dougan David A, Tsai Francis T F, Mogk Axel, Bukau Bernd

机构信息

Zentrum für Molekulare Biologie der Universität Heidelberg, Universität Heidelberg, Im Neuenheimer Feld 282, Heidelberg D-69120, Germany.

出版信息

Cell. 2004 Nov 24;119(5):653-65. doi: 10.1016/j.cell.2004.11.027.

Abstract

Cell survival under severe thermal stress requires the activity of the ClpB (Hsp104) AAA+ chaperone that solubilizes and reactivates aggregated proteins in concert with the DnaK (Hsp70) chaperone system. How protein disaggregation is achieved and whether survival is solely dependent on ClpB-mediated elimination of aggregates or also on reactivation of aggregated proteins has been unclear. We engineered a ClpB variant, BAP, which associates with the ClpP peptidase and thereby is converted into a degrading disaggregase. BAP translocates substrates through its central pore directly into ClpP for degradation. ClpB-dependent translocation is demonstrated to be an integral part of the disaggregation mechanism. Protein disaggregation by the BAP/ClpP complex remains dependent on DnaK, defining a role for DnaK at early stages of the disaggregation reaction. The activity switch of BAP to a degrading disaggregase does not support thermotolerance development, demonstrating that cell survival during severe thermal stress requires reactivation of aggregated proteins.

摘要

在严重热应激下细胞存活需要ClpB(Hsp104)AAA +伴侣蛋白的活性,该伴侣蛋白与DnaK(Hsp70)伴侣蛋白系统协同作用,使聚集蛋白溶解并重新激活。蛋白质解聚是如何实现的,以及细胞存活是否仅依赖于ClpB介导的聚集体消除,还是也依赖于聚集蛋白的重新激活,目前尚不清楚。我们设计了一种ClpB变体BAP,它与ClpP肽酶结合,从而转化为一种降解解聚酶。BAP通过其中心孔将底物直接转运到ClpP中进行降解。ClpB依赖性转运被证明是解聚机制的一个组成部分。BAP/ClpP复合物介导的蛋白质解聚仍然依赖于DnaK,这确定了DnaK在解聚反应早期阶段的作用。BAP向降解解聚酶的活性转变不支持耐热性的发展,这表明在严重热应激期间细胞存活需要聚集蛋白的重新激活。

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