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局部蛋白质稳定性及底物降解标签的几何位置对ClpXP变性和降解效率的影响。

Effects of local protein stability and the geometric position of the substrate degradation tag on the efficiency of ClpXP denaturation and degradation.

作者信息

Kenniston Jon A, Burton Randall E, Siddiqui Samia M, Baker Tania A, Sauer Robert T

机构信息

Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

J Struct Biol. 2004 Apr-May;146(1-2):130-40. doi: 10.1016/j.jsb.2003.10.023.

DOI:10.1016/j.jsb.2003.10.023
PMID:15037244
Abstract

ClpX and related AAA+ ATPases of the Clp/Hsp100 family are able to denature native proteins. Here, we explore the role of protein stability in ClpX denaturation and subsequent ClpP degradation of model substrates bearing ssrA degradation tags at different positions. ClpXP degraded T. thermophilus RNase-H* with a C-terminal ssrA tag very efficiently, despite the very high global stability of this thermophilic protein. In fact, global thermodynamic stability appears to play little role in susceptibility to degradation, as a far less stable RNase-H*-ssrA mutant was degraded more slowly than wild type by ClpXP and a completely unfolded mutant variant was degraded less than twice as fast as the wild-type parent. When ssrA peptide tags were covalently linked to surface cysteines at positions 114 or 140 of RNase-H*, the conjugates were proteolyzed very slowly. This resistance to degradation was not caused by inaccessibility of the ssrA tag or an inability of ClpXP to degrade proteins with side-chain linked ssrA tags. Our results support a model in which ClpX denatures proteins by initially unfolding structural elements attached to the degradation tag, suggest an important role for the position of the degradation tag and direction of force application, and correlate well with the mapping of local protein stability within RNase-H* by native-state hydrogen exchange.

摘要

ClpX以及Clp/Hsp100家族中相关的AAA+ATP酶能够使天然蛋白质变性。在此,我们探讨了蛋白质稳定性在ClpX介导的变性以及随后对在不同位置带有ssrA降解标签的模型底物进行ClpP降解过程中的作用。尽管嗜热栖热菌核糖核酸酶H具有非常高的整体稳定性,但ClpXP能非常高效地降解带有C端ssrA标签的该嗜热蛋白。实际上,整体热力学稳定性在易降解性方面似乎作用不大,因为一种稳定性远低于野生型的核糖核酸酶H-ssrA突变体被ClpXP降解的速度比野生型慢,而一个完全展开的突变体变体被降解的速度不到野生型亲本的两倍。当ssrA肽标签共价连接到核糖核酸酶H第114位或140位的表面半胱氨酸上时,这些缀合物被蛋白水解的速度非常慢。这种对降解的抗性并非由ssrA标签难以接近或ClpXP无法降解带有侧链连接ssrA标签的蛋白质所致。我们的结果支持这样一种模型,即ClpX通过首先展开与降解标签相连的结构元件来使蛋白质变性,表明降解标签的位置和力的施加方向具有重要作用,并且与通过天然态氢交换对核糖核酸酶H内局部蛋白质稳定性的映射结果高度相关。

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