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Monitoring microbial communities’ dynamics during the start-up of microbial fuel cells by high-throughput screening techniques

机译:通过高通量筛选技术监测微生物燃料电池启动过程中的微生物群落动态

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Microbial Electrochemical Technologies are based on the use of electrochemically active microorganisms that can carry out extracellular electron transfer to an electrode while they are oxidizing the organic compounds. The dynamics and changes of the bacterial community in the anode biofilm and planktonic broth of an acetate fed batch single chamber air cathode MFC have been studied by combing flow-cytometry and Illumina sequencing techniques. At the beginning of the test, from 0?h to 70?h, microbial planktonic communities changed from four groups to two groups, as revealed by DNA content, and from three groups to one group based on the cell membrane polarization revealed by a DiOCsub6/sub(3) probe. Between 4supth/sup day and 13supth/sup day, microbial communities changed from one group to a maximum of three groups, monitoring DNA content, and from one group to two based on the cell membrane polarization. The 16S rDNA gene profiling confirmed the shift in microbial communities, with Acinetobacter (39.34%), Azospirillum (27.66%), Arcobacter (4.17%) and Comamonas (2.62%) being the most abundant genera at the beginning of MFC activation. After 70?h the main genera detected were Azospirillum (46.42%), Acinetobacter (34.66%), Enterococcus (2.32%) , Dysgonomonas (2.14%). Data obtained have shown that flow cytometry and illumina sequencing are useful tools to monitor “online” the changes in microbial communities during the MFCs start-up and the increase of Azospirillum and Acinetobacter genera is in good agreement with the MFC voltage generation. Moreover, monitoring planktonic populations, instead of the less accessible anode biofilm, was in good agreement with the evolution of MFC voltage.
机译:微生物电化学技术基于电化学活性微生物的使用,这些微生物可以在氧化有机化合物的同时将细胞外电子转移到电极上。结合流式细胞仪和Illumina测序技术,研究了醋酸盐补料单室空气阴极MFC阳极生物膜和浮游液中细菌群落的动态和变化。在测试开始时,从0?h到70?h,根据DiOC揭示的细胞膜极化,微生物浮游生物群落由DNA含量显示从四组变为两组,从三组变为一组。 6 (3)探针。在第4天至第13天之间,微生物群落从一组变为最多三组,以监测DNA含量,并且从一组变为第二组(基于细胞)膜极化。 16S rDNA基因谱分析证实了微生物群落的变化,其中不动杆菌(39.34%),固氮螺菌(27.66%),无杆杆菌(4.17%)和Comamonas(2.62%)是MFC活化开始时最丰富的属。 70?h后,检测到的主要属是固氮螺菌(46.42%),不动杆菌(34.66%),肠球菌(2.32%)和dysgonomonas(2.14%)。所获得的数据表明,流式细胞仪和照明测序是监测MFC启动过程中微生物群落“在线”变化的有用工具,并且固氮螺菌属和不动杆菌属的增加与MFC的电压产生非常吻合。而且,监测浮游生物而不是难以接近的阳极生物膜,与MFC电压的变化非常吻合。

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