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Analysis of the Microbial Community in an Acidic Hollow-Fiber Membrane Biofilm Reactor (Hf-MBfR) Used for the Biological Conversion of Carbon Dioxide to Methane

机译:酸性中空纤维膜生物膜反应器(Hf-MBfR)用于二氧化碳生物转化为甲烷的微生物群落分析

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摘要

Hydrogenotrophic methanogens can use gaseous substrates, such as H2 and CO2, in CH4 production. H2 gas is used to reduce CO2. We have successfully operated a hollow-fiber membrane biofilm reactor (Hf-MBfR) for stable and continuous CH4 production from CO2 and H2. CO2 and H2 were diffused into the culture medium through the membrane without bubble formation in the Hf-MBfR, which was operated at pH 4.5–5.5 over 70 days. Focusing on the presence of hydrogenotrophic methanogens, we analyzed the structure of the microbial community in the reactor. Denaturing gradient gel electrophoresis (DGGE) was conducted with bacterial and archaeal 16S rDNA primers. Real-time qPCR was used to track changes in the community composition of methanogens over the course of operation. Finally, the microbial community and its diversity at the time of maximum CH4 production were analyzed by pyrosequencing methods. Genus Methanobacterium, related to hydrogenotrophic methanogens, dominated the microbial community, but acetate consumption by bacteria, such as unclassified Clostridium sp., restricted the development of acetoclastic methanogens in the acidic CH4 production process. The results show that acidic operation of a CH4 production reactor without any pH adjustment inhibited acetogenic growth and enriched the hydrogenotrophic methanogens, decreasing the growth of acetoclastic methanogens.
机译:氢营养型产甲烷菌可在CH4生产中使用气态底物,例如H2和CO2。氢气用于减少二氧化碳。我们已经成功运营了中空纤维膜生物膜反应器(Hf-MBfR),用于稳定,连续地从CO2和H2生产CH4。 Hf-MBfR中的CO2和H2通过膜扩散到培养基中,而没有气泡形成,Hf-MBfR在70天内在pH 4.5-5.5下运行。着眼于氢营养型产甲烷菌的存在,我们分析了反应器中微生物群落的结构。用细菌和古细菌16S rDNA引物进行变性梯度凝胶电泳(DGGE)。实时定量PCR被用来追踪在整个手术过程中产甲烷菌群落组成的变化。最后,通过焦​​磷酸测序法分析了最大CH4产生时的微生物群落及其多样性。与氢营养型产甲烷菌有关的甲烷杆菌属在微生物群落中占主导地位,但是细菌(例如未分类的梭状芽孢杆菌)的乙酸盐消耗限制了酸性CH4生产过程中破弹质产甲烷菌的发展。结果表明,在不进行任何pH调节的情况下,在CH4生产反应器中进行酸性操作会抑制产乙酸的生长,并富集氢营养型产甲烷菌,从而降低了破胶产甲烷菌的生长。

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