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Electron acceptor redox potential globally regulates transcriptomic profiling in Shewanella decolorationis S12

机译:电子受体氧化还原电势总体上调节脱色希瓦氏菌S12中的转录组谱

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摘要

Electron acceptor redox potential (EARP) was presumed to be a determining factor for microbial metabolism in many natural and engineered processes. However, little is known about the potentially global effects of EARP on bacteria. In this study, we compared the physiological and transcriptomic properties of Shewanella decolorationis S12 respiring with different EARPs in microbial electrochemical systems to avoid the effects caused by the other physicochemical properties of real electron acceptor. Results showed that the metabolic activities of strain S12 were nonlinear responses to EARP. The tricarboxylic acid cycle for central carbon metabolism was down-regulated while glyoxylate shunt was up-regulated at 0.8 V compared to 0.2 and −0.2 V, which suggested that EARP is an important but not the only determinant for metabolic pathways of strain S12. Moreover, few cytochrome c genes were differentially expressed at different EARPs. The energy intensive flagella assembly and assimilatory sulfur metabolism pathways were significantly enriched at 0.8 V, which suggested strain S12 had stronger electrokinesis behavior and oxidative stress-response at high EARP. This study provides the first global information of EARP regulations on microbial metabolism, which will be helpful for understanding microorganism respiration.
机译:电子受体氧化还原电位(EARP)被认为是许多自然过程和工程过程中微生物代谢的决定因素。但是,关于EARP对细菌的潜在全球影响知之甚少。在这项研究中,我们比较了在微生物电化学系统中使用不同的EARPs进行脱色希瓦氏菌S12呼吸的生理学和转录组学特性,以避免由真实电子受体的其他理化特性引起的影响。结果表明,菌株S12的代谢活性是对EARP的非线性响应。中央碳代谢的三羧酸循环被下调,而乙醛酸酯分流在0.8 V上调,而0.2和-0.2 V则被上调,这表明EARP是菌株S12代谢途径的重要但不是唯一的决定因素。此外,很少有细胞色素c基因在不同的EARPs上差异表达。在0.8 flagV时,能量密集的鞭毛装配和同化硫代谢途径显着富集,这表明菌株S12在高EARP时具有更强的电动行为和氧化应激反应。这项研究提供了有关微生物代谢的EARP法规的第一个全球信息,这将有助于理解微生物的呼吸。

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