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DNA损伤后ClpXP底物的蛋白质组分析揭示了SOS调节子内广泛的不稳定性。

Proteomic profiling of ClpXP substrates after DNA damage reveals extensive instability within SOS regulon.

作者信息

Neher Saskia B, Villén Judit, Oakes Elizabeth C, Bakalarski Corey E, Sauer Robert T, Gygi Steven P, Baker Tania A

机构信息

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

出版信息

Mol Cell. 2006 Apr 21;22(2):193-204. doi: 10.1016/j.molcel.2006.03.007.

Abstract

ClpXP, a bacterial AAA+ protease, controls intracellular levels of many stress-response proteins. To investigate substrate profile changes caused by a specific environmental stress, quantitative mass spectrometry (SILAC) was used to analyze proteins trapped by ClpXP(trap) before and after DNA damage. The abundance of half of the trapped proteins changed more than 3-fold after damage. Overrepresented substrates included the DNA-repair proteins RecN and UvrA. Among SOS-response proteins, 25% were ClpXP substrates and, importantly, nearly all of the highly induced regulon members were rapidly degraded. Other proteins, including the stress regulator sigma(S), were underrepresented in ClpXP(trap) after DNA damage; overproduction experiments suggest that simple substrate competition does not account for this reduced recognition. We conclude that damage-response proteins are an unusually rapidly degraded family and that ClpXP has substantial capacity to process the influx of newly synthesized substrates while maintaining the ability to degrade its other substrates in an environmentally responsive manner.

摘要

ClpXP是一种细菌AAA+蛋白酶,可控制许多应激反应蛋白的细胞内水平。为了研究特定环境应激引起的底物谱变化,采用定量质谱法(SILAC)分析DNA损伤前后被ClpXP(陷阱)捕获的蛋白质。损伤后,一半被捕获蛋白质的丰度变化超过3倍。过度富集的底物包括DNA修复蛋白RecN和UvrA。在SOS反应蛋白中,25%是ClpXP的底物,重要的是,几乎所有高度诱导的调节子成员都被快速降解。DNA损伤后,包括应激调节因子sigma(S)在内的其他蛋白质在ClpXP(陷阱)中的含量不足;过量表达实验表明,简单的底物竞争并不能解释这种识别减少的现象。我们得出结论,损伤反应蛋白是一个降解异常迅速的家族,并且ClpXP在维持以环境响应方式降解其他底物能力的同时,具有处理新合成底物流入的强大能力。

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