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Restricting fermentative potential by proteome remodeling: an adaptive strategy evidenced in Bacillus cereus

机译:通过蛋白质组改造限制发酵潜能:蜡样芽孢杆菌中证明的一种适应性策略

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摘要

Pathogenesis hinges on successful colonization of the gastrointestinal (GI) tract by pathogenic facultative anaerobes. The GI tract is a carbohydrate-limited environment with varying oxygen availability and oxidoreduction potential (ORP). How pathogenic bacteria are able to adapt and grow in these varying conditions remains a key fundamental question. Here, we designed a system biology-inspired approach to pinpoint the key regulators allowing Bacillus cereus to survive and grow efficiently under low-ORP anoxic conditions mimicking those encountered in the intestinal lumen. We assessed the proteome components using hight-hroughput nanoLC-MS/MS techniques, reconstituted the main metabolic circuits, constructed ΔohrA and ΔohrR mutants, and analyzed the impacts of ohrA and ohrR disruptions by a novel round of shotgun proteomics. Our study revealed that OhrR and OhrA are crucial to the successful adaptation of B. cereus to the GI tract environment. Specifically, we showed that B. cereus restricts its fermentative growth under low-ORP anaerobiosis and sustains efficient aerobic respiratory metabolism, motility and stress response via OhrRA-dependent proteome remodeling. Finally, our results introduced a new adaptive strategy where facultative anaerobes prefer to restrict their fermentative potential for a long-term benefit.
机译:发病机理取决于病原性兼性厌氧菌能否成功定居胃肠道。胃肠道是一种碳水化合物受限的环境,具有可变的氧气利用率和氧化还原电位(ORP)。致病细菌如何在这些变化的条件下适应和生长仍然是关键的基本问题。在这里,我们设计了一种受系统生物学启发的方法,以精确定位蜡状芽孢杆菌在低ORP缺氧条件下(类似于在肠腔中遇到的条件)存活和有效生长的关键调控因子。我们使用高通量nanoLC-MS / MS技术评估了蛋白质组成分,重构了主要的代谢回路,构建了ΔohrA和ΔohrR突变体,并通过一轮新的shot弹枪蛋白质组学分析了ohrA和ohrR破坏的影响。我们的研究表明,OhrR和OhrA对于蜡状芽孢杆菌成功地适应胃肠道环境至关重要。具体而言,我们表明蜡状芽孢杆菌在低ORP厌氧菌作用下会限制其发酵生长,并通过OhrRA依赖的蛋白质组重塑来维持有效的需氧呼吸代谢,运动性和应激反应。最后,我们的结果引入了一种新的适应性策略,其中兼性厌氧菌更喜欢限制其发酵潜能以获得长期利益。

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