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从含有下游基础启动子元件GGGA的启动子进行转录所需的RNA聚合酶的结构模块。

Structural modules of RNA polymerase required for transcription from promoters containing downstream basal promoter element GGGA.

作者信息

Barinova Nataliya, Kuznedelov Konstantin, Severinov Konstantin, Kulbachinskiy Andrey

机构信息

Institute of Molecular Genetics, Russian Academy of Sciences, Moscow 123182, Russia.

出版信息

J Biol Chem. 2008 Aug 15;283(33):22482-9. doi: 10.1074/jbc.M802445200. Epub 2008 Jun 23.

Abstract

We recently described a novel basal bacterial promoter element that is located downstream of the -10 consensus promoter element and is recognized by region 1.2 of the sigma subunit of RNA polymerase (RNAP). In the case of Thermus aquaticus RNAP, this element has a consensus sequence GGGA and allows transcription initiation in the absence of the -35 element. In contrast, the Escherichia coli RNAP is unable to initiate transcription from GGGA-containing promoters that lack the -35 element. In the present study, we demonstrate that sigma subunits from both E. coli and T. aquaticus specifically recognize the GGGA element and that the observed species specificity of recognition of GGGA-containing promoters is determined by the RNAP core enzyme. We further demonstrate that transcription initiation by T. aquaticus RNAP on GGGA-containing promoters in the absence of the -35 element requires sigma region 4 and C-terminal domains of the alpha subunits, which interact with upstream promoter DNA. When in the context of promoters containing the -35 element, the GGGA element is recognized by holoenzyme RNAPs from both E. coli and T. aquaticus and increases stability of promoter complexes formed on these promoters. Thus, GGGA is a bona fide basal promoter element that can function in various bacteria and, depending on the properties of the RNAP core enzyme and the presence of additional promoter elements, determine species-specific differences in promoter recognition.

摘要

我们最近描述了一种新型的细菌基础启动子元件,它位于-10共有启动子元件的下游,可被RNA聚合酶(RNAP)σ亚基的1.2区域识别。就嗜热水生栖热菌RNAP而言,该元件具有共有序列GGGA,并且在没有-35元件的情况下也能启动转录。相比之下,大肠杆菌RNAP无法从缺乏-35元件的含GGGA启动子起始转录。在本研究中,我们证明大肠杆菌和嗜热水生栖热菌的σ亚基都能特异性识别GGGA元件,并且观察到的对含GGGA启动子识别的物种特异性是由RNAP核心酶决定的。我们进一步证明,嗜热水生栖热菌RNAP在缺乏-35元件的含GGGA启动子上起始转录需要σ区域4和α亚基的C末端结构域,它们与上游启动子DNA相互作用。当处于含有-35元件的启动子背景下时,GGGA元件可被大肠杆菌和嗜热水生栖热菌的全酶RNAP识别,并增加在这些启动子上形成的启动子复合物的稳定性。因此,GGGA是一种真正的基础启动子元件,可在多种细菌中发挥作用,并根据RNAP核心酶的特性和其他启动子元件的存在,决定启动子识别中的物种特异性差异。

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