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Impacts of conductive materials on microbial community during syntrophic propionate oxidization for biomethane recovery

甲烷菌 甲烷杆菌 丙酸盐 产甲烷 厌氧消化 细菌 化学 厌氧氨氧化菌 食品科学 甲烷八叠球菌 微生物学 微生物种群生物学 生物 甲烷 生物化学 有机化学 反硝化 氮气 遗传学 反硝化细菌
作者
Bing Guo,Yingdi Zhang,Najiaowa Yu,Yang Liu
出处
期刊:Water Environment Research [Wiley]
卷期号:93 (1): 84-93 被引量:40
标识
DOI:10.1002/wer.1357
摘要

Abstract Propionate is one of the most important intermediates in anaerobic digestion, and its degradation requires a syntrophic partnership between propionate‐oxidizing bacteria and hydrogenotrophic methanogens. Anaerobic digestion efficiency can be improved by direct interspecies electron transfer (DIET) through conductive materials. This study aimed to investigate the effects of DIET on syntrophic propionate oxidization under room temperature (20°C) and reveal the syntrophic partners. Firstly, conventional anaerobic consortium and conductive material‐enriched consortium were tested for DIET under high H 2 partial pressure. The latter supplemented with granular activated carbon (GAC) can mitigate H 2 inhibition through DIET. Secondly, a DIET consortium was enriched for testing GAC and magnetite, both showed DIET facilitation. Microbial communities in GAC‐ and magnetite‐supplemented reactors were similar. Syntrophic propionate‐oxidizing bacteria, for example , Smithella (3.9%–9.9%) and a genus from the family Syntrophaceae (1.9%–3.6%) and methanogens Methanobacterium (30.3%–75.2%), Methanolinea (8.5%–25.2%), Methanosaeta (11.4%–36.7%), and Candidatus Methanofastidiosum (3.6%–6.6%), were predominant. Functional genes for cell mobility and membrane transport (3.3% and 9.5% in control reactor) increased with GAC (3.7% and 11.1%, respectively) and magnetite (3.7% and 10.9%, respectively) addition. Syntrophic propionate‐oxidizing bacteria and methanogenesis partners were revealed by co‐occurrence network, for example , Methanobacterium with Smithella , Syntrophobacter , Dechloromonas, and Trichococcus , signifying the importance of the syntrophic partnership in DIET environment. Practitioner points DIET improved syntrophic propionate oxidization under room temperature condition (20°C). Microbial communities were similar for GAC‐ and magnetite‐supplemented reactors, different with control reactor. Syntrophic propionate‐oxidizing bacteria and methanogenesis partners were revealed by co‐occurrence network. Methanobacterium and Smithella , Syntrophobacter , Dechloromonas, and Trichococcus were correlated.
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