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PNAS Plus: The Pseudomonas aeruginosa efflux pump MexGHI-OpmD transports a natural phenazine that controls gene expression and biofilm development

机译:PNAS Plus:铜绿假单胞菌外排泵MexGHI-OpmD运送控制基因表达和生物膜发育的天然吩嗪

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摘要

Redox-cycling compounds, including endogenously produced phenazine antibiotics, induce expression of the efflux pump MexGHI-OpmD in the opportunistic pathogen Pseudomonas aeruginosa. Previous studies of P. aeruginosa virulence, physiology, and biofilm development have focused on the blue phenazine pyocyanin and the yellow phenazine-1-carboxylic acid (PCA). In P. aeruginosa phenazine biosynthesis, conversion of PCA to pyocyanin is presumed to proceed through the intermediate 5-methylphenazine-1-carboxylate (5-Me-PCA), a reactive compound that has eluded detection in most laboratory samples. Here, we apply electrochemical methods to directly detect 5-Me-PCA and find that it is transported by MexGHI-OpmD in P. aeruginosa strain PA14 planktonic and biofilm cells. We also show that 5-Me-PCA is sufficient to fully induce MexGHI-OpmD expression and that it is required for wild-type colony biofilm morphogenesis. These physiological effects are consistent with the high redox potential of 5-Me-PCA, which distinguishes it from other well-studied P. aeruginosa phenazines. Our observations highlight the importance of this compound, which was previously overlooked due to the challenges associated with its detection, in the context of P. aeruginosa gene expression and multicellular behavior. This study constitutes a unique demonstration of efflux-based self-resistance, controlled by a simple circuit, in a Gram-negative pathogen.
机译:氧化还原循环化合物,包括内源性产生的吩嗪抗生素,可诱导机会性病原体铜绿假单胞菌中外排泵MexGHI-OpmD的表达。铜绿假单胞菌的毒力,生理学和生物膜发育的先前研究集中在蓝色吩嗪黄精和黄色吩嗪-1-羧酸(PCA)。在铜绿假单胞菌吩嗪的生物合成中,推测PCA转化为洋青霉素的过程是通过中间体5-甲基吩嗪-1-羧酸酯(5-Me-PCA)进行的,该化合物是一种反应性化合物,在大多数实验室样品中均未发现。在这里,我们应用电化学方法直接检测5-Me-PCA,发现它是由MexGHI-OpmD在铜绿假单胞菌菌株PA14浮游和生物膜细胞中转运的。我们还显示5-Me-PCA足以完全诱导MexGHI-OpmD表达,并且它是野生型菌落生物膜形态发生所必需的。这些生理效应与5-Me-PCA的高氧化还原电位相一致,这使其与其他经过充分研究的铜绿假单胞菌吩嗪类药物区别开来。我们的观察结果突出了该化合物的重要性,在铜绿假单胞菌基因表达和多细胞行为的背景下,由于与检测有关的挑战,该化合物先前被忽略了。这项研究构成了革兰氏阴性病原体中基于外排的自我抵抗力的独特展示,该抵抗力由简单电路控制。

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