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首页> 外文期刊>Frontiers in Microbiology >A Flavor Lactone Mimicking AHL Quorum-Sensing Signals Exploits the Broad Affinity of the QsdR Regulator to Stimulate Transcription of the Rhodococcal qsd Operon Involved in Quorum-Quenching and Biocontrol Activities
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A Flavor Lactone Mimicking AHL Quorum-Sensing Signals Exploits the Broad Affinity of the QsdR Regulator to Stimulate Transcription of the Rhodococcal qsd Operon Involved in Quorum-Quenching and Biocontrol Activities

机译:模仿AHL群体感应信号的风味内酯可利用QsdR调节剂的广泛亲和力来刺激参与群体淬灭和生物防治活动的红球菌 qsd 操纵子的转录。

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In many Gram-negative bacteria, virulence, and social behavior are controlled by quorum-sensing (QS) systems based on the synthesis and perception of N -acyl homoserine lactones (AHLs). Quorum-quenching (QQ) is currently used to disrupt bacterial communication, as a biocontrol strategy for plant crop protection. In this context, the Gram-positive bacterium Rhodococcus erythropolis uses a catabolic pathway to control the virulence of soft-rot pathogens by degrading their AHL signals. This QS signal degradation pathway requires the expression of the qsd operon, encoding the key enzyme QsdA, an intracellular lactonase that can hydrolyze a wide range of substrates. QsdR, a TetR-like family regulator, represses the expression of the qsd operon. During AHL degradation, this repression is released by the binding of the γ-butyrolactone ring of the pathogen signaling molecules to QsdR. We show here that a lactone designed to mimic quorum signals, γ-caprolactone, can act as an effector ligand of QsdR, triggering the synthesis of qsd operon-encoded enzymes. Interaction between γ-caprolactone and QsdR was demonstrated indirectly, by quantitative RT-PCR, molecular docking and transcriptional fusion approaches, and directly, in an electrophoretic mobility shift assay. This broad-affinity regulatory system demonstrates that preventive or curative quenching therapies could be triggered artificially and/or managed in a sustainable way by the addition of γ-caprolactone, a compound better known as cheap food additive. The biostimulation of QQ activity could therefore be used to counteract the lack of consistency observed in some large-scale biocontrol assays.
机译:在许多革兰氏阴性细菌中,基于N-酰基高丝氨酸内酯(AHL)的合成和感知,群体感应(QS)系统控制着毒力和社交行为。 Quorum-quenching(QQ)目前被用来破坏细菌的传播,作为一种保护植物作物的生物控制策略。在这种情况下,革兰氏阳性红球菌Rhodococcus erythropolis使用分解代谢途径,通过降解软腐病原体的AHL信号来控制其毒性。此QS信号降解途径需要表达qsd操纵子,编码关键酶QsdA,它是一种可以水解多种底物的细胞内内酯酶。 QsdR是一种类似TetR的家族调节物,可抑制qsd操纵子的表达。在AHL降解期间,这种抑制通过病原体信号分子的γ-丁内酯环与QsdR的结合而释放。我们在这里显示设计用来模拟定额信号γ-己内酯的内酯可以作为QsdR的效应子配体,触发qsd操纵子编码酶的合成。 γ-己内酯与QsdR之间的相互作用通过定量RT-PCR,分子对接和转录融合方法间接证明,并直接在电泳迁移率变动分析中证明。这种广泛的亲和力调节系统表明,可以通过添加γ-己内酯(一种众所周知的廉价食品添加剂)来人为地触发和/或以可持续方式进行预防或治疗性淬灭疗法。因此,对QQ活性的生物刺激可用于抵消某些大规模生物控制分析中观察到的一致性不足。

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