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转录调节因子Lrp和ArgP对编码精氨酸输出蛋白的大肠杆菌argO基因的竞争性激活。

Competitive activation of the Escherichia coli argO gene coding for an arginine exporter by the transcriptional regulators Lrp and ArgP.

作者信息

Peeters Eveline, Nguyen Le Minh Phu, Foulquié-Moreno Maria, Charlier Daniel

机构信息

Erfelijkheidsleer en Microbiologie, Vrije Universiteit Brussel (VUB), Pleinlaan 2, B-1050 Brussels, Belgium.

出版信息

Mol Microbiol. 2009 Dec;74(6):1513-26. doi: 10.1111/j.1365-2958.2009.06950.x. Epub 2009 Nov 10.

Abstract

In vivo and in vitro analyses indicate that transcription of the argO gene coding for an arginine exporter is regulated by the global transcriptional regulator Lrp, an effect that went by unnoticed in previous genome-scale screenings of the Lrp regulatory network in Escherichia coli. Lrp activates the argO promoter fourfold; exogenous leucine antagonizes, but does not completely eliminate this effect. Activation by Lrp interferes with the previously demonstrated activation of the argO promoter by ArgP. This interference results from the mutual inhibitory binding of the two activators to overlapping targets. As a consequence, each regulator acts more potently in the absence of the other. Dimeric Lrp binds cooperatively to at least three regularly spaced semi-palindromic binding sites. Leucine reduces complex formation approximately twofold but concomitantly enhances the cooperativity of the binding. Footprinting data suggest a severe Lrp-induced deformation of the argO control region. Combined, the effector modulated activation of argO transcription by ArgP and Lrp must ensure an adapted and fine-tuned synthesis of the transporter in response to environmental conditions. The repertoire of bacterial transcription regulation mechanisms is vast, but the competitive activation of a single promoter by two activator proteins as described here appears to be rare.

摘要

体内和体外分析表明,编码精氨酸输出蛋白的argO基因的转录受全局转录调节因子Lrp调控,这一效应在之前对大肠杆菌Lrp调控网络的全基因组筛选中未被注意到。Lrp可使argO启动子的活性提高四倍;外源性亮氨酸可拮抗此效应,但不能完全消除。Lrp的激活作用会干扰之前所证实的ArgP对argO启动子的激活。这种干扰源于两种激活因子与重叠靶标的相互抑制性结合。因此,每种调节因子在另一种调节因子不存在时作用更强。二聚体Lrp协同结合至至少三个规则间隔的半回文结合位点。亮氨酸可使复合物形成减少约两倍,但同时增强了结合的协同性。足迹数据表明,Lrp会导致argO调控区域发生严重变形。综合来看,效应物调节的ArgP和Lrp对argO转录的激活作用必定能确保转运蛋白根据环境条件进行适应性和微调性合成。细菌转录调控机制的种类繁多,但如此处所述的由两种激活蛋白对单个启动子进行竞争性激活的情况似乎很少见。

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