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CSN通过对IkappaBalpha进行去泛素化作用来控制核因子-κB。

CSN controls NF-kappaB by deubiquitinylation of IkappaBalpha.

作者信息

Schweitzer Katrin, Bozko Przemyslaw M, Dubiel Wolfgang, Naumann Michael

机构信息

Medical Faculty, Institute of Experimental Internal Medicine, Otto-von-Guericke-University, Magdeburg, Germany.

出版信息

EMBO J. 2007 Mar 21;26(6):1532-41. doi: 10.1038/sj.emboj.7601600. Epub 2007 Feb 22.

Abstract

The COP9 signalosome (CSN) is a conserved protein complex that regulates assembly and activity of cullin-RING ubiquitin ligases (CRLs). Ubiquitin-dependent degradation of the NF-kappaB inhibitor IkappaBalpha preceeds nuclear translocation of NF-kappaB. For the first time, we show here an inducible interaction of the CSN with IkappaBalpha and that the CSN controls IkappaBalpha and NF-kappaB activity. Strikingly, disruption of the CSN by a small interfering RNA-mediated knockdown of single CSN subunits results in a reduced re-accumulation of IkappaBalpha and prolonged nuclear translocation of NF-kappaB in TNFalpha-stimulated cells. The control of IkappaBalpha by the CSN is regulated by deubiquitinylation of IkappaBalpha conferred by the CSN-associated deubiquitinylase USP15. Protein expression levels of cullin1 and the CRL substrate adapter beta-TrCP are reduced in nonstimulated cells with a disrupted function of the CSN, which might account for an impaired basal turnover of IkappaBalpha. We propose that the CSN controls both CRL activity and stability of the CRL substrate IkappaBalpha. In consequence, basal and signal-induced CRL-dependent turnover of IkappaBalpha is precisely adapted to specific cellular needs.

摘要

COP9信号体(CSN)是一种保守的蛋白质复合物,可调节cullin-RING泛素连接酶(CRL)的组装和活性。NF-κB抑制剂IkappaBalpha的泛素依赖性降解先于NF-κB的核转位。在此,我们首次展示了CSN与IkappaBalpha之间的诱导性相互作用,并且CSN可控制IkappaBalpha和NF-κB的活性。引人注目的是,通过小干扰RNA介导的单个CSN亚基敲低来破坏CSN,会导致TNFα刺激的细胞中IkappaBalpha的重新积累减少以及NF-κB的核转位延长。CSN对IkappaBalpha的控制是由CSN相关的去泛素化酶USP15赋予的IkappaBalpha去泛素化调节的。在CSN功能受损的未刺激细胞中,cullin1和CRL底物衔接子β-TrCP的蛋白质表达水平降低,这可能解释了IkappaBalpha的基础周转受损。我们提出,CSN既控制CRL活性,也控制CRL底物IkappaBalpha的稳定性。因此,IkappaBalpha的基础和信号诱导的CRL依赖性周转精确地适应了特定的细胞需求。

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