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High Hydrostatic Pressure Inducible Trimethylamine N-Oxide Reductase Improves the Pressure Tolerance of Piezosensitive Bacteria Vibrio fluvialis

机译:高静水压力诱导的三甲胺N-氧化物还原酶提高了压敏细菌弧菌的耐压性

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摘要

High hydrostatic pressure (HHP) exerts severe effects on cellular processes including impaired cell division, abolished motility and affected enzymatic activities. Transcriptomic and proteomic analyses showed that bacteria switch the expression of genes involved in multiple energy metabolism pathways to cope with HHP. We sought evidence of a changing bacterial metabolism by supplying appropriate substrates that might have beneficial effects on the bacterial lifestyle at elevated pressure. We isolated a piezosensitive marine bacterium Vibrio fluvialis strain QY27 from the South China Sea. When trimethylamine N-oxide (TMAO) was used as an electron acceptor for energy metabolism, QY27 exhibited a piezophilic-like phenotype with an optimal growth at 30 MPa. Raman spectrometry and biochemistry analyses revealed that both the efficiency of the TMAO metabolism and the activity of the TMAO reductase increased under high pressure conditions. Among the two genes coding for TMAO reductase catalytic subunits, the expression level and enzymatic activity of TorA was up-regulated by elevated pressure. Furthermore, a genetic interference assay with the CRISPR-dCas9 system demonstrated that TorA is essential for underpinning the improved pressure tolerance of QY27. We extended the study to Vibrio fluvialis type strain ATCC33809 and observed the same phenotype of TMAO-metabolism improved the pressure tolerance. These results provide compelling evidence for the determinant role of metabolism in the adaption of bacteria to the deep-sea ecosystems with HHP.
机译:高静水压(HHP)对细胞过程产生严重影响,包括受损的细胞分裂,废除运动能力和受影响的酶活性。转录组学和蛋白质组学分析表明,细菌会改变参与多种能量代谢途径的基因的表达,以应对HHP。我们通过提供合适的底物来寻找细菌代谢变化的证据,这些底物在高压下可能会对细菌的生活方式产生有益的影响。我们从南中国海分离出了对压敏性海洋细菌弧菌弧菌QY27。当三甲胺N-氧化物(TMAO)用作能量代谢的电子受体时,QY27表现出亲脂状的表型,在30 MPa时具有最佳生长。拉曼光谱法和生物化学分析表明,在高压条件下,TMAO代谢的效率和TMAO还原酶的活性均增加。在编码TMAO还原酶催化亚基的两个基因中,TorA的表达水平和酶活性被高压上调。此外,使用CRISPR-dCas9系统进行的遗传干扰分析表明,TorA对支撑QY27改善的耐压性至关重要。我们将研究扩展到了弧菌弧菌ATCC33809,并观察到相同的表型TMAO代谢改善了耐压性。这些结果提供了令人信服的证据,证明了新陈代谢在决定细菌与HHP适应深海生态系统中的作用。

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