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SpoT-Mediated Regulation and Amino Acid Prototrophy Are Essential for Pyocyanin Production During Parasitic Growth of Pseudomonas aeruginosa in a Co-culture Model System With Aeromonas hydrophila

机译:在与嗜水气单胞菌共培养的模型系统中铜绿假单胞菌寄生生长期间SpoT介导的调节和氨基酸原营养对于绿脓素生产至关重要。

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摘要

The opportunistic pathogen Pseudomonas aeruginosa employs its complex quorum sensing (QS) network to regulate the expression of virulence factors such as pyocyanin. Besides cell density, QS in this bacterium is co-regulated by environmental cues. In this study, we employed a previously established co-culture model system to identify metabolic influences that are involved in the regulation of pyocyanin production in P. aeruginosa. In this co-culture consisting of P. aeruginosa and the chitinolytic bacterium Aeromonas hydrophila, parasitic growth of P. aeruginosa is strictly dependent on the production of pyocyanin. We could show that in this co-culture, pyocyanin production is likely induced by the stringent response mediated by SpoT in response to nutrient limitation. Pyocyanin production by stringent response mutants in the co-culture could not be complemented by overexpression of PqsE. Via transposon mutagenesis, several amino acid auxotrophic mutants were identified that were also unable to produce pyocyanin when PqsE was overexpressed or when complementing amino acids were present. The inability to produce pyocyanin even though PqsE was overexpressed was likely a general effect of amino acid auxotrophy. These results show the value of the co-culture approach to identify both extra- and intracellular metabolic influences on QS that might be important in infection processes as well.
机译:机会性病原体铜绿假单胞菌利用其复杂的群体感应(QS)网络来调节毒性因子(如绿脓素)的表达。除了细胞密度外,该细菌中的QS还受环境提示的共同调节。在这项研究中,我们采用了先前建立的共培养模型系统,以鉴定与铜绿假单胞菌的产黄素调节有关的代谢影响。在由铜绿假单胞菌和几丁质分解细菌嗜水气单胞菌组成的这种共培养物中,铜绿假单胞菌的寄生生长严格依赖于绿脓素的产生。我们可以证明,在这种共培养物中,花青素的产生很可能是由SpoT介导的对营养限制的严格反应诱导的。共培养中严格反应突变体产生的花青素不能通过PqsE的过表达来补充。通过转座子诱变,鉴定了多个氨基酸营养缺陷型突变体,当PqsE过表达或存在互补氨基酸时,它们也无法产生绿脓素。即使过表达PqsE,也无法产生绿脓素,这很可能是氨基酸营养缺陷的一般影响。这些结果表明,共培养方法的价值对确定QS的细胞外和细胞内代谢影响都可能在感染过程中也很重要。

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