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The QseC sensor kinase: A bacterial adrenergic receptor

机译:QseC传感器激酶:细菌性肾上腺素能受体

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Quorum sensing is a cell-to-cell signaling mechanism in which bacteria respond to hormone-like molecules called autoinducers (AIs). The AI-3 quorum-sensing system is also involved in inter-kingdom signaling with the eukaryotic hormones epinephrineorepinephrine. This signaling activates transcription of virulence genes in enterohemorrhagic Escherichia coli O157:H7. However, this signaling system has never been shown to be involved in virulence in vivo, and the bacterial receptor for these signals had not been identified. Here, we show that the QseC sensor kinase is a bacterial receptor for the host epinephrineorepinephrine and the AI-3 produced by the gastrointestinal microbial flora. We also found that an alpha-adrenergic antagonist can specifically block the QseC response to these signals. Furthermore, we demonstrated that a qseC mutant is attenuated for virulence in a rabbit animal model, underscoring the importance of this signaling system in virulence in vivo. Finally, an in silico search found that the periplasmic sensing domain of QseC is conserved among several bacterial species. Thus, QseC is a bacterial adrenergic receptor that activates virulence genes in response to interkingdom cross-signaling. We anticipate that these studies will be a starting point in understanding bacterial-host hormone signaling at the biochemical level. Given the role that this system plays in bacterial virulence, further characterization of this unique signaling mechanism may be important for developing novel classes of antimicrobials.
机译:群体感应是一种细胞间信号传导机制,其中细菌对称为自诱导物(AI)的激素样分子作出反应。 AI-3群体感应系统还参与了与真核激素肾上腺素/去甲肾上腺素之间的信号传导。该信号激活肠出血性大肠杆菌O157:H7中的毒力基因的转录。但是,该信号系统从未显示出与体内毒力有关,并且尚未鉴定出这些信号的细菌受体。在这里,我们表明QseC传感器激酶是宿主肾上腺素/去甲肾上腺素和胃肠道微生物菌群产生的AI-3的细菌受体。我们还发现,α-肾上腺素能拮抗剂可以特异性阻断QseC对这些信号的反应。此外,我们证明了qseC突变体在兔动物模型中的毒力减弱,强调了该信号系统在体内毒力中的重要性。最后,通过计算机搜索发现,QseC的周质感域在几种细菌中是保守的。因此,QseC是一种细菌性肾上腺素能受体,可响应交链交叉信号激活毒力基因。我们预计这些研究将是在生化水平理解细菌-宿主激素信号传导的起点。考虑到该系统在细菌毒性中的作用,这种独特的信号传导机制的进一步表征对于开发新型抗菌剂可能很重要。

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