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Co-cultivation of the strictly anaerobic methanogen Methanosarcina barkeri with aerobic methanotrophs in an oxygen-limited membrane bioreactor

机译:氧气 - 有限膜生物反应器中严格厌氧甲状腺炎甲烷类甲烷类动物的共培养

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摘要

Wetlands contribute to 30% of global methane emissions due to an imbalance between microbial methane production and consumption. Methanogenesis and methanotrophy have mainly been studied separately, and little is known about their potential interactions in aquatic environments. To mimic the interaction between methane producers and oxidizers in the environment, we co-cultivated the methanogenic archaeon Methanosarcina barkeri with aerobic Methylocystaceae methanotrophs in an oxygen-limited bioreactor using acetate as methanogenic substrate. Methane, acetate, dissolved oxygen, available nitrogen, pH, temperature, and cell density were monitored to follow system stability and activity. Stable reactor operation was achieved for two consecutive periods of 2 months. Fluorescence in situ hybridization micrographs indicated close association between both groups of microorganisms. This association suggests that the methanotrophs profit from direct access to the methane that is produced from acetate, while methanogens are protected by the concomitant oxygen consumption of the methanotrophs. This proof of principle study can be used to set up systems to study their responses to environmental changes.
机译:由于微生物甲烷生产和消费不平衡,湿地有助于全球甲烷排放量的30%。甲烷化和甲基萎缩主要是分开进行研究的,并且关于它们在水生环境中的潜在相互作用几乎熟知。为了模仿甲烷生产者和氧化剂在环境中的相互作用,我们将甲状腺原酸甲基甲基菌甲基甲酸甲烷雌激素培养在氧化的生物反应器中使用乙酸盐作为甲肉桂酸酯基底。监测甲烷,乙酸盐,溶解氧,可用的氮,pH,温度和细胞密度,以遵循系统稳定性和活性。稳定的反应器操作连续2个月连续两次实现。原位杂交显微照片的荧光表明两组微生物之间的密切关联。该关联表明甲蛋白营养不良从直接进入由醋酸盐产生的甲烷,而甲烷酮受到甲胰蛋白的伴随氧气消耗的保护。这种原则研究证明可用于建立系统,以研究他们对环境变化的反应。

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