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早期生长反应蛋白1对RelA(p65)核因子-κB亚基的抑制作用

Inhibition of the RelA(p65) NF-kappaB subunit by Egr-1.

作者信息

Chapman N R, Perkins N D

机构信息

Department of Biochemistry, Division of Gene Expression and Regulation, MSI/WTB Complex, Dow Street, University of Dundee, Dundee, DD1 5EH Scotland, United Kingdom.

出版信息

J Biol Chem. 2000 Feb 18;275(7):4719-25. doi: 10.1074/jbc.275.7.4719.

Abstract

Induction of transcription from the human immunodeficiency virus 1 long terminal repeat by the RelA (p65) NF-kappaB subunit has been shown to be dependent upon an interaction with the zinc finger DNA-binding domain of Sp1. It was unknown, however, whether NF-kappaB could also interact with other zinc finger-containing transcription factors. In this study we demonstrate that the early growth response transcription factor Egr-1, whose DNA-binding domain shares a high degree of homology with that of Sp1, can also interact with RelA in vitro and regulate NF-kappaB transcriptional activity in vivo. Similar to the interaction with Sp1, the Rel homology domain of RelA interacts with the zinc finger domain of Egr-1. Surprisingly, and in contrast to Sp1, Egr-1 specifically represses RelA transcriptional activity through its zinc finger domain. Moreover, the interaction between RelA and the Egr-1 zinc fingers is mutually exclusive with DNA binding suggesting a model in which Egr-1 directly sequesters NF-kappaB from its target promoters. Because Egr-1 is induced by many of the same stimuli that activate NF-kappaB, this novel transcriptional regulatory mechanism has many implications for the involvement of both factors in cellular processes such as apoptosis and the response to stress and infection.

摘要

已证明,人免疫缺陷病毒1长末端重复序列的转录由RelA(p65)NF-κB亚基诱导,且依赖于与Sp1锌指DNA结合结构域的相互作用。然而,NF-κB是否也能与其他含锌指的转录因子相互作用尚不清楚。在本研究中,我们证明了早期生长反应转录因子Egr-1,其DNA结合结构域与Sp1的DNA结合结构域具有高度同源性,在体外也能与RelA相互作用,并在体内调节NF-κB的转录活性。与与Sp1的相互作用类似,RelA的Rel同源结构域与Egr-1的锌指结构域相互作用。令人惊讶的是,与Sp1不同,Egr-1通过其锌指结构域特异性抑制RelA的转录活性。此外,RelA与Egr-1锌指之间的相互作用与DNA结合相互排斥,这提示了一种模型,即Egr-1直接将NF-κB与其靶启动子隔离。由于Egr-1由许多激活NF-κB的相同刺激诱导产生,这种新的转录调控机制对于这两种因子参与细胞凋亡、应激反应和感染等细胞过程具有许多意义。

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