首页> 美国卫生研究院文献>PLoS Pathogens >BosR (BB0647) Controls the RpoN-RpoS Regulatory Pathway and Virulence Expression in Borrelia burgdorferi by a Novel DNA-Binding Mechanism
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BosR (BB0647) Controls the RpoN-RpoS Regulatory Pathway and Virulence Expression in Borrelia burgdorferi by a Novel DNA-Binding Mechanism

机译:BosR(BB0647)通过一种新型的DNA结合机制控制Borrelia burgdorferi中的RpoN-RpoS调节途径和毒力表达。

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摘要

In Borrelia burgdorferi (Bb), the Lyme disease spirochete, the alternative σ factor σ54 (RpoN) directly activates transcription of another alternative σ factor, σS (RpoS) which, in turn, controls the expression of virulence-associated membrane lipoproteins. As is customary in σ54-dependent gene control, a putative NtrC-like enhancer-binding protein, Rrp2, is required to activate the RpoN-RpoS pathway. However, recently it was found that rpoS transcription in Bb also requires another regulator, BosR, which was previously designated as a Fur or PerR homolog. Given this unexpected requirement for a second activator to promote σ54-dependent gene transcription, and the fact that regulatory mechanisms among similar species of pathogenic bacteria can be strain-specific, we sought to confirm the regulatory role of BosR in a second virulent strain (strain 297) of Bb. Indeed, BosR displayed the same influence over lipoprotein expression and mammalian infectivity for strain Bb 297 that were previously noted for Bb strain B31. We subsequently found that recombinant BosR (rBosR) bound to the rpoS gene at three distinct sites, and that binding occurred despite the absence of consensus Fur or Per boxes. This led to the identification of a novel direct repeat sequence (TAAATTAAAT) critical for rBosR binding in vitro. Mutations in the repeat sequence markedly inhibited or abolished rBosR binding. Taken together, our studies provide new mechanistic insights into how BosR likely acts directly on rpoS as a positive transcriptional activator. Additional novelty is engendered by the facts that, although BosR is a Fur or PerR homolog and it contains zinc (like Fur and PerR), it has other unique features that clearly set it apart from these other regulators. Our findings also have broader implications regarding a previously unappreciated layer of control that can be involved in σ54–dependent gene regulation in bacteria.
机译:在莱姆病螺旋体伯氏疏螺旋体(Bb)中,替代σ因子σ 54 (RpoN)直接激活另一个替代σ因子σ S (RpoS)的转录,进而控制与毒力相关的膜脂蛋白的表达。按照σ 54 依赖性基因控制的惯例,激活RpoN-RpoS途径需要一个假定的NtrC样增强子结合蛋白Rrp2。但是,最近发现Bb中的rpoS转录还需要另一个调节子BosR,该调节子先前被指定为Fur或PerR同源物。鉴于这种对第二种激活剂促进σ 54 依赖的基因转录的出乎意料的要求,以及类似病原菌物种之间的调控机制可能是菌株特异性的事实,我们试图确认其的调控作用Bb的第二种强毒株(297株)中的BosR。实际上,BosR对Bb 297菌株对脂蛋白表达和哺乳动物感染性表现出了相同的影响,这在以前对Bb菌株B31有所记录。随后,我们发现重组BosR(rBosR)在三个不同位点与rpoS基因结合,尽管没有共有的Fur或Per box,但仍发生了结合。这导致鉴定出对体外rBosR结合至关重要的新的直接重复序列(TAAATTAAAT)。重复序列中的突变显着抑制或消除了rBosR结合。综上所述,我们的研究为BosR可能如何作为正转录激活因子直接作用于rpoS提供了新的机制性见解。尽管BosR是Fur或PerR的同系物,并且含有锌(如Fur和PerR),但它具有其他独特的功能,这使其与其他调节剂区分开来,这带来了更多的新颖性。我们的发现还涉及以前未知的控制层,它可能参与细菌中依赖于σ 54 的基因调控,因此具有更广泛的意义。

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