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Microbial physiology-based model of ethanol metabolism in subsurface sediments

机译:基于微生物生理学的地下沉积物乙醇代谢模型

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A biogeochemical reaction model was developed based on microbial physiology to simulate ethanol metabolism and its influence on the chemistry of anoxic subsurface environments. The model accounts for potential microbial metabolisms that degrade ethanol, including those that oxidize ethanol directly or syntrophically by reducing different electron acceptors. Out of the potential metabolisms, those that are active in the environment can be inferred by fitting the model to experimental observations. This approach was applied to a batch sediment slurry experiment that examined ethanol metabolism in uranium-contaminated aquifer sediments from Area 2 at the U.S. Department of Energy Field Research Center in Oak Ridge, TN. According to the simulation results, complete ethanol oxidation by denitrification, incomplete ethanol oxidation by ferric iron reduction, ethanol fermentation to acetate and H_2, hydrogenotrophic sulfate reduction, and acetoclastic methanogenesis: all contributed significantly to the degradation of ethanol in the aquifer sediments. The assemblage of the active metabolisms provides a frame work to explore how ethanol amendment impacts the chemistry of the environment, including the occurrence and levels of uranium. The results can also be applied to explore how diverse microbial metabolisms impact the progress and efficacy of bioremediation strategies.
机译:建立了基于微生物生理学的生物地球化学反应模型,以模拟乙醇代谢及其对缺氧地下环境化学的影响。该模型说明了降解乙醇的潜在微生物代谢,包括通过还原不同的电子受体直接或合成氧化乙醇的微生物。在潜在的新陈代谢中,可以通过将模型拟合到实验观察值来推断在环境中活跃的那些。该方法已应用于批次沉淀物泥浆实验,该实验检查了田纳西州橡树岭美国能源部研究中心2区铀污染的含水层沉积物中的乙醇代谢。根据模拟结果,反硝化过程中乙醇的完全氧化,三价铁还原过程中的乙醇氧化不完全,乙醇发酵成乙酸盐和H_2,硫酸氢营养的还原以及乙酰碎裂甲烷化作用:所有这些都对含水层沉积物中乙醇的降解做出了重要贡献。活性代谢的集合为探索乙醇修正如何影响环境化学(包括铀的发生和水平)提供了框架。该结果还可以用于探索各种微生物代谢如何影响生物修复策略的进展和功效。

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