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A novel chemical inducer of Streptococcus quorum sensing acts by inhibiting the pheromone-degrading endopeptidase PepO

机译:一种新型的链球菌感应化学诱导剂通过抑制降解信息素的内肽酶PepO起作用

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摘要

Bacteria produce chemical signals (pheromones) to coordinate behaviors across a population in a process termed quorum sensing (QS). QS systems comprising peptide pheromones and their corresponding Rgg receptors are widespread among Firmicutes and may be useful targets for manipulating microbial behaviors, like suppressing virulence. The Rgg2/3 QS circuit of the human pathogen Streptococcus pyogenes controls genes affecting resistance to host lysozyme in response to short hydrophobic pheromones (SHPs). Considering that artificial activation of a QS pathway may be as useful in the objective of manipulating bacteria as inhibiting it, we sought to identify small-molecule inducers of the Rgg2/3 QS system. We report the identification of a small molecule, P516-0475, that specifically induced expression of Rgg2/3-regulated genes in the presence of SHP pheromones at concentrations lower than typically required for QS induction. In searching for the mode of action of P516-0475, we discovered that an S. pyogenes mutant deficient in pepO, a neprilysin-like metalloendopeptidase that degrades SHP pheromones, was unresponsive to the compound. P516-0475 directly inhibited recombinant PepO in vitro as an uncompetitive inhibitor. We conclude that this compound induces QS by stabilizing SHP pheromones in culture. Our study indicates the usefulness of cell-based screens that modulate pathway activities to identify unanticipated therapeutic targets contributing to QS signaling.
机译:细菌产生化学信号(信息素)以协调称为群体感应(QS)的过程中整个种群的行为。包含肽信息素及其相应Rgg受体的QS系统在Firmicutes中广泛存在,并且可能是操纵微生物行为(如抑制毒力)的有用靶标。人类病原体化脓性链球菌的Rgg2 / 3 QS回路控制基因,响应短疏水信息素(SHP),影响对宿主溶菌酶的抗性。考虑到QS途径的人工激活与抑制细菌一样,可能在操纵细菌的目的方面是有用的,因此我们试图确定Rgg2 / 3 QS系统的小分子诱导剂。我们报告了鉴定的一个小分子,P516-0475,在SHP信息素存在下以低于QS诱导通常所需的浓度特异性诱导Rgg2 / 3调控基因的表达。在寻找P516-0475的作用方式时,我们发现缺乏pepO的化脓性链球菌突变体(一种降解SHP信息素的中性溶酶样金属内肽酶)对该化合物无反应。 P516-0475作为一种非竞争性抑制剂在体外直接抑制了重组PepO。我们得出结论,该化合物可通过稳定培养中的SHP信息素来诱导QS。我们的研究表明,基于细胞的筛查可调节信号通路的活性,以识别有助于QS信号传导的意外治疗靶标。

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