Department of Environmental Engineering, College of Environmental and Resource Sciences, Zhejiang University, Hangzhou 310058, China.
MOE Key Lab of Environmental Remediation and Ecosystem Health, College of Environmental and Resource Sciences, Zhejiang University, Hangzhou 310058, China.
J Environ Sci (China). 2023 May;127:441-452. doi: 10.1016/j.jes.2022.05.016. Epub 2022 May 21.
Environmental acidification impairs microorganism diversity and their functions on substance transformation. Rhodococcus is a ubiquitously distributed genus for contaminant detoxification in the environment, and it can also adapt a certain range of pH. This work interpreted the acid responses from both phenotype and metabolism in strain Rhodococcus biphenylivorans TG9 (TG9) induced at pH 3. The phenotype alterations were described with the number of culturable and viable cells, intracellular ATP concentrations, cell shape and entocyte, degradation efficiency of polychlorinated biphenyl (PCB) 31 and biphenyl. The number of culturable cells maintained rather stable within the first 10 days, even though the other phenotypes had noticeable alterations, indicating that TG9 possesses certain capacities to survive under acid stress. The metabolism responses were interpreted based on transcription analyses with four treatments including log phase (LP), acid-induced (PER), early recovery after removing acid (RE) and later recovery (REL). With the overview on the expression regulations among the 4 treatments, the RE sample presented more upregulated and less downregulated genes, suggesting that its metabolism was somehow more active after recovering from acid stress. In addition, the response mechanism was interpreted on 10 individual metabolism pathways mainly covering protein modification, antioxidation, antipermeability, H consumption, neutralization and extrusion. Furthermore, the transcription variations were verified with RT-qPCR on 8 genes with 24-hr, 48-hr and 72-hr acid treatment. Taken together, TG9 possesses comprehensive metabolism strategies defending against acid stress. Consequently, a model was built to provide an integrate insight to understand the acid resistance/tolerance metabolisms in microorganisms.
环境酸化会损害微生物的多样性及其物质转化功能。节杆菌属是一种在环境中普遍存在的用于污染物解毒的属,它也能适应一定范围的 pH 值。本工作从表型和代谢两方面解释了 pH 值为 3 时诱导的菌株 Rhodococcus biphenylivorans TG9(TG9)的酸响应。表型变化用可培养和存活细胞的数量、细胞内 ATP 浓度、细胞形态和原生质体、多氯联苯(PCB)31 和联苯的降解效率来描述。尽管其他表型发生了明显的变化,但可培养细胞的数量在最初的 10 天内保持相对稳定,表明 TG9 具有在酸胁迫下生存的一定能力。代谢反应是基于包括对数期(LP)、酸诱导(PER)、去除酸后早期恢复(RE)和后期恢复(REL)在内的 4 种处理的转录分析来解释的。通过对 4 种处理之间的表达调控进行综述,RE 样品呈现出更多的上调基因和更少的下调基因,表明其代谢在从酸胁迫中恢复后某种程度上更加活跃。此外,还对主要涵盖蛋白质修饰、抗氧化、抗渗透性、H 消耗、中和和外排的 10 个代谢途径的响应机制进行了解释。此外,还通过 24 小时、48 小时和 72 小时的酸处理,用 RT-qPCR 对 8 个基因的转录变化进行了验证。综上所述,TG9 拥有全面的代谢策略来抵御酸胁迫。因此,建立了一个模型,以提供一个综合的视角来理解微生物的酸抗性/耐受性代谢。