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首页> 外文期刊>Microbiological Research >Diversity of methanogenic archaea in a biogas reactor fed with swine feces as the mono-substrate by mcrA analysis
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Diversity of methanogenic archaea in a biogas reactor fed with swine feces as the mono-substrate by mcrA analysis

机译:通过mcrA分析在以猪粪便为单底物的沼气反应器中产甲烷古菌的多样性

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Methanogenesis from the biomass in the anoxic biogas reactors is catalyzed by syntrophic cooperation between anaerobic bacteria, syntrophic acetogenic bacteria and methanogenic archaea. Understanding of microbial community composition within the biogas reactors may improve the methane production from biomass fermentation. In this study, methanogenic archaea diverity of a biogas reactor supplied with swine feces as mono-substrate under mesophilic conditions was investigated. Community composition was determined by analysis of methyl coenzyme reductase subunit A gene (mcrA) clone library consisting of 123 clones. Statistical analysis of mcrA library indicated that all major groups of methanogens from our biogas reactor were detected. In the library, 57.7% clones were affiliated to Methanobacteriales, 34.2% to Methanomicrobiales, 2.4% to Methanosarcinales and about 5.7% clones belonged to unclassified euryarchaeota. Over 90% of the methanogenic archaea from our biogas reactor were postulated to be hydrogenotrophic methanogens. Comparing with other previous studies reporting that hydrogenotrophic methanogens are dominant species in the biogas plants, this study firstly reported that Methanobacteriales instead of Methanomicrobiales are the most predominant methanogenic archaea in the biogas reactor fed with swine feces as sole substrate
机译:缺氧沼气反应器中生物质的产甲烷作用是由厌氧细菌,同食性产乙酸菌和产甲烷古菌之间的同养作用催化的。了解沼气反应器内的微生物群落组成可能会改善生物质发酵产生的甲烷。在这项研究中,研究了在嗜温条件下,以猪粪便为单基质的沼气反应器的产甲烷古生菌多样性。通过分析由123个克隆组成的甲基辅酶还原酶亚基A基因(mcrA)克隆文库来确定群落组成。对mcrA文库的统计分析表明,我们沼气反应器中所有主要的产甲烷菌素均已检测到。在该库中,有57.7%的克隆属于甲烷细菌,34.2%的甲烷细菌,2.4%的甲烷菌是细菌,约5.7%的克隆属于未分类的真细菌。假设我们沼气反应器中超过90%的产甲烷古菌是氢营养型产甲烷菌。与其他先前报道的氢营养型产甲烷菌是沼气厂中的优势物种的研究相比,该研究首先报道了以猪粪便为唯一底物的沼气反应堆中,以甲烷细菌代替甲烷微生物是最主要的产甲烷古菌。

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