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The Pseudomonas aeruginosa Orphan Quorum Sensing Signal Receptor QscR Regulates Global Quorum Sensing Gene Expression by Activating a Single Linked Operon

机译:铜绿假单胞菌孤儿群体感应信号受体QscR通过激活一个单联的操纵子来调节整体群体感应基因表达。

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ABSTRACT Pseudomonas aeruginosa uses two acyl-homoserine lactone signals and two quorum sensing (QS) transcription factors, LasR and RhlR, to activate dozens of genes. LasR responds to N -3-oxo-dodecanoyl-homoserine lactone (3OC12-HSL) and RhlR to N -butanoyl-homoserine lactone (C4-HSL). There is a third P.?aeruginosa acyl-homoserine-lactone-responsive transcription factor, QscR, which acts to dampen or delay activation of genes by LasR and RhlR by an unknown mechanism. To better understand the role of QscR in P.?aeruginosa QS, we performed a chromatin immunoprecipitation analysis, which showed this transcription factor bound the promoter of only a single operon of three genes linked to qscR , PA1895 to PA1897. Other genes that appear to be regulated by QscR in transcriptome studies were not direct targets of QscR. Deletion of PA1897 recapitulates the early QS activation phenotype of a QscR-null mutant, and the phenotype of a QscR-null mutant was complemented by PA1895-1897 but not by PA1897 alone. We conclude that QscR acts to modulate quorum sensing through regulation of a single operon, apparently raising the QS threshold of the population and providing a “brake” on QS autoinduction. IMPORTANCE Quorum sensing, a cell-cell communication system, is broadly distributed among bacteria and is commonly used to regulate the production of shared products. An important consequence of quorum sensing is a delay in production of certain products until the population density is high. The bacterium Pseudomonas aeruginosa has a particularly complicated quorum sensing system involving multiple signals and receptors. One of these receptors, QscR, downregulates gene expression, unlike the other receptors in P.?aeruginosa . QscR does so by inducing the expression of a single operon whose function provides an element of resistance to a population reaching a quorum. This finding has importance for design of quorum sensing inhibitory strategies and can also inform design of synthetic biological circuits that use quorum sensing receptors to regulate gene expression.
机译:摘要铜绿假单胞菌使用两个酰基高丝氨酸内酯信号和两个群体感应(QS)转录因子LasR和RhlR激活数十个基因。 LasR对N -3-氧代-十二烷基-高丝氨酸内酯(3OC12-HSL)响应,RhlR对N-丁酰-高丝氨酸内酯(C4-HSL)响应。存在第三种铜绿假单胞菌酰基-高丝氨酸-内酯响应性转录因子QscR,其通过未知机制来抑制或延迟LasR和RhlR激活基因。为了更好地了解QscR在铜绿假单胞菌QS中的作用,我们进行了染色质免疫沉淀分析,结果表明该转录因子仅将与qscR相关的三个基因的单个操纵子的启动子结合在一起,PA1895至PA1897。在转录组研究中似乎受QscR调控的其他基因不是QscR的直接靶标。 PA1897的缺失概括了QscR-null突变体的早期QS激活表型,并且QscR-null突变体的表型由PA1895-1897而不是仅由PA1897补充。我们得出的结论是,QscR通过调节单个操纵子来调节群体感应,从而明显提高了群体的QS阈值,并为QS自动诱导提供了“刹车”。重要信息群体感应是一种细胞间通讯系统,广泛分布于细菌之间,通常用于调节共享产品的生产。群体感应的一个重要结果是某些产品的生产要等到人口密度很高时才推迟。铜绿假单胞菌细菌具有特别复杂的群体感应系统,涉及多个信号和受体。这些受体之一,QscR,下调基因表达,这不同于绿脓杆菌中的其他受体。 QscR通过诱导单个操纵子的表达来做到这一点,该操纵子的功能为达到群体的群体提供了抵抗力。该发现对设计群体感应抑制策略具有重要意义,并且还可以为使用群体感应受体调节基因表达的合成生物电路的设计提供信息。

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