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Integration of Metabolic and Quorum Sensing Signals Governing the Decision to Cooperate in a Bacterial Social Trait

机译:用于在细菌社会特质中合作的决定的代谢和法定传感信号的整合

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Many unicellular organisms live in multicellular communities that rely on cooperation between cells. However, cooperative traits are vulnerable to exploitation by non-cooperators (cheaters). We expand our understanding of the molecular mechanisms that allow multicellular systems to remain robust in the face of cheating by dissecting the dynamic regulation of cooperative rhamnolipids required for swarming in Pseudomonas aeruginosa. We combine mathematical modeling and experiments to quantitatively characterize the integration of metabolic and population density signals (quorum sensing) governing expression of the rhamnolipid synthesis operon rhlAB. The combined computational/experimental analysis reveals that when nutrients are abundant, rhlAB promoter activity increases gradually in a density dependent way. When growth slows down due to nutrient limitation, rhlAB promoter activity can stop abruptly, decrease gradually or even increase depending on whether the growth-limiting nutrient is the carbon source, nitrogen source or iron. Starvation by specific nutrients drives growth on intracellular nutrient pools as well as the qualitative rhlAB promoter response, which itself is modulated by quorum sensing. Our quantitative analysis suggests a supply-driven activation that integrates metabolic prudence with quorum sensing in a non-digital manner and allows P. aeruginosa cells to invest in cooperation only when the population size is large enough (quorum sensing) and individual cells have enough metabolic resources to do so (metabolic prudence). Thus, the quantitative description of rhlAB regulatory dynamics brings a greater understating to the regulation required to make swarming cooperation stable.
机译:许多单细胞生物生活在依赖细胞之间的合作的多细胞群落中。然而,合作特征易受非合作者(骗子)开发的攻击。我们通过解剖蜂合体核苷酸所需的合作Rhamolipids的动态调节,扩大了对允许多细胞系统在欺骗性方面保持稳健的分子机制的理解。我们将数学建模和实验组合以定量表征代谢和群体密度信号(法定感测)治疗rhamnolipid合成操纵子Rhlab的表达的整合。合并的计算/实验分析表明,当营养素丰富时,rhlab启动子活性逐渐增加,密度依赖性方式。当由于养分限制而增长减慢时,rhlab启动子活性可以突然停止,逐渐降低或甚至根据生长限制营养素是否是碳源,氮源或铁而增加。特定营养素的饥饿驱动细胞内营养池的生长以及定性的rhlab启动子反应,其本身通过Quorum感测来调节。我们的定量分析表明提供了一种供应驱动的激活,以非数字方式与Quorum感测相结合代谢散文,并且只有当人口大小足够大(法定感测)和个体细胞具有足够的代谢时,才能才能在合作中投入合作。资源为此(代谢谨慎)。因此,RHLAB调节动力学的定量描述使得对使得蜂拥而稳定的调节更大低估。

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