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Microbial Resource Management for Ex Situ Biomethanation of Hydrogen at Alkaline pH

机译:碱性pH下氢气原位生物甲醚的微生物资源管理

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Biomethanation is a promising solution to convert H 2 (produced from surplus electricity) and CO 2 to CH 4 by using hydrogenotrophic methanogens. In ex situ biomethanation with mixed cultures, homoacetogens and methanogens compete for H 2 /CO 2 . We enriched a hydrogenotrophic microbiota on CO 2 and H 2 as sole carbon and energy sources, respectively, to investigate these competing reactions. The microbial community structure and dynamics of bacteria and methanogenic archaea were evaluated through 16S rRNA and mcrA gene amplicon sequencing, respectively. Hydrogenotrophic methanogens and homoacetogens were enriched, as acetate was concomitantly produced alongside CH 4 . By controlling the media composition, especially changing the reducing agent, the formation of acetate was lowered and grid quality CH 4 (≥97%) was obtained. Formate was identified as an intermediate that was produced and consumed during the bioprocess. Stirring intensities ≥ 1000 rpm were detrimental, probably due to shear force stress. The predominating methanogens belonged to the genera Methanobacterium and Methanoculleus . The bacterial community was dominated by Lutispora . The methanogenic community was stable, whereas the bacterial community was more dynamic. Our results suggest that hydrogenotrophic communities can be steered towards the selective production of CH 4 from H 2 /CO 2 by adapting the media composition, the reducing agent and the stirring intensity.
机译:生物甲烷化是通过使用氢型甲烷基因将H 2(由剩余电力产生)和CO 2至CH 4转化的有希望的溶液。在与混合培养物中,同种酰基乙酰和甲烷的竞争中的H 2 / CO 2竞争。我们富集了CO 2和H 2的氢雌激霉菌微生物,分别为唯一的碳和能源,以研究这些竞争反应。通过16S rRNA和MCRA基因扩增子测序评估细菌和甲状腺炎的微生物群落结构和动力学。富集的氢脱氢甲烷和同种酰乙乙酮,随着乙酸盐伴随着CH 4而产生。通过控制培养基组合物,特别是改变还原剂,降低乙酸盐的形成,并获得栅格质量CH 4(≥97%)。甲酸甲酸盐被鉴定为生物过程中产生和消耗的中间体。搅拌强度≥1000rpm是有害的,可能是由于剪切力应力。主要的甲烷基因属于属甲基杆菌和甲蛋白。细菌群落由Lutispora主导。甲基甲基群落稳定,而细菌群体更为动态。我们的研究结果表明,通过调整培养基组成,还原剂和搅拌强度,可以通过H 2 / CO 2从H 2 / CO 2选择性地产生氢营养营养营养。

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