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Mechanism for microbial population collapse in a fluctuating resource environment

机译:资源环境动荡下微生物种群崩溃的机制

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摘要

Managing trade‐offs through gene regulation is believed to confer resilience to a microbial community in a fluctuating resource environment. To investigate this hypothesis, we imposed a fluctuating environment that required the sulfate‐reducer Desulfovibrio vulgaris to undergo repeated ecologically relevant shifts between retaining metabolic independence (active capacity for sulfate respiration) and becoming metabolically specialized to a mutualistic association with the hydrogen‐consuming Methanococcus maripaludis. Strikingly, the microbial community became progressively less proficient at restoring the environmentally relevant physiological state after each perturbation and most cultures collapsed within 3–7 shifts. Counterintuitively, the collapse phenomenon was prevented by a single regulatory mutation. We have characterized the mechanism for collapse by conducting RNA‐seq analysis, proteomics, microcalorimetry, and single‐cell transcriptome analysis. We demonstrate that the collapse was caused by conditional gene regulation, which drove precipitous decline in intracellular abundance of essential transcripts and proteins, imposing greater energetic burden of regulation to restore function in a fluctuating environment.
机译:人们认为,通过基因调控来权衡取舍,可以在不断变化的资源环境中赋予微生物群落以适应力。为了研究这个假设,我们施加了一个波动的环境,该环境要求硫酸盐还原剂Desulfovibrio vulgaris在保持代谢独立性(硫酸盐呼吸的活性能力)和在代谢上专门化为与耗氢的海藻甲烷球菌的相互联系之间经历反复的生态相关转变。 。令人惊讶的是,每次扰动后,微生物群落在恢复与环境相关的生理状态上的能力逐渐降低,大多数培养物在3–7个班次内崩溃。与直觉相反,崩溃现象是通过单个调节突变来防止的。我们通过进行RNA序列分析,蛋白质组学,微量量热法和单细胞转录组分析来表征崩溃的机制。我们证明崩溃是由有条件的基因调节引起的,该条件驱动了必需的转录本和蛋白质的细胞内丰度的急剧下降,施加了更大的能量调节负担,以在波动的环境中恢复功能。

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