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Adaptation of Bacillus subtilis carbon core metabolism to simultaneous nutrient limitation and osmotic challenge: a multi-omics perspective

机译:枯草芽孢杆菌碳核代谢适应同时的营养限制和渗透挑战:多组学研究

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The Gram-positive bacterium Bacillus subtilis encounters nutrient limitations and osmotic stress in its natural soil ecosystem. To ensure survival and sustain growth, highly integrated adaptive responses are required. Here, we investigated the system-wide response of B. subtilis to different, simultaneously imposed stresses. To address the anticipated complexity of the cellular response networks, we combined chemostat experiments under conditions of carbon limitation, salt stress and osmoprotection with multi-omics analyses of the transcriptome, proteome, metabolome and fluxome. Surprisingly, the flux through central carbon and energy metabolism is very robust under all conditions studied. The key to achieve this robustness is the adjustment of the biocatalytic machinery to compensate for solventinduced impairment of enzymatic activities during osmotic stress. Specifically, increased production of several enzymes of central carbon metabolism compensates for their reduced activity in the presence of high salt. A major response of the cell during osmotic stress is the production of the compatible solute proline. This is achieved through the concerted adjustment of multiple reactions around the 2-oxoglutarate node, which drives metabolism towards the proline precursor glutamate. The finetuning of the transcriptional and metabolic networks involves functional modules that overarch the individual pathways.
机译:革兰氏阳性枯草芽孢杆菌在其自然土壤生态系统中遇到营养限制和渗透胁迫。为了确保生存和维持增长,需要高度集成的自适应响应。在这里,我们调查了枯草芽孢杆菌对不同同时施加压力的全系统响应。为了解决预期的细胞反应网络的复杂性,我们将碳限制,盐胁迫和渗透保护条件下的化学恒温实验与转录组,蛋白质组,代谢组和通量组的多组学分析相结合。出人意料的是,在所有研究的条件下,通过中心碳和能量代谢的通量都非常强劲。实现这种鲁棒性的关键是调整生物催化机制,以补偿在渗透胁迫下溶剂诱导的酶活性受损。具体来说,增加几种中央碳代谢酶的产量,可以弥补高盐存在下酶活性降低的问题。渗透压期间细胞的主要反应是相容溶质脯氨酸的产生。这是通过协调调整2-氧代戊二酸节点周围的多个反应来实现的,该反应可将代谢驱动至脯氨酸前体谷氨酸。转录和代谢网络的微调涉及覆盖各个途径的功能模块。

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