Laboratory of Microbiology, Wageningen University, Dreijenplein 10, 6703 HB Wageningen, The Netherlands.
Syst Appl Microbiol. 2013 Sep;36(6):408-16. doi: 10.1016/j.syapm.2013.05.004. Epub 2013 Jul 3.
The microbial electrolysis cell (MEC) is a promising system for H2 production, but little is known about the active microbial population in MEC systems. Therefore, the microbial community of five different MEC graphite felt anodes was analyzed using denaturing gradient gel electrophoresis (DGGE) profiling. The results showed that the bacterial population was very diverse and there were substantial differences between microorganisms in anolyte and anode samples. The archaeal population in the anolyte and at the anodes, and between the different MEC anodes, was very similar. SEM and FISH imaging showed that Archaea were mainly present in the spaces between the electrode fibers and Bacteria were present at the fiber surface, which suggested that Bacteria were the main microorganisms involved in MEC electrochemical activity. Redundancy analysis (RDA) and QR factorization-based estimation (QRE) were used to link the composition of the bacterial community to electrochemical performance of the MEC. The operational mode of the MECs and their consequent effects on current density and anode resistance on the populations were significant. The results showed that the community composition was most strongly correlated with current density. The DGGE band mostly correlated with current represented a Clostridium sticklandii strain, suggesting that this species had a major role in current from acetate generation at the MEC anodes. The combination of RDA and QRE seemed especially promising for obtaining an insight into the part of the microbial population actively involved in electrode interaction in the MEC.
微生物电解池(MEC)是一种很有前途的制氢系统,但对于 MEC 系统中的活性微生物种群知之甚少。因此,使用变性梯度凝胶电泳(DGGE)分析了 5 种不同 MEC 石墨毡阳极的微生物群落。结果表明,细菌种群非常多样化,并且在阳极电解液和阳极样品中的微生物之间存在很大差异。阳极电解液和阳极中的古菌种群以及不同 MEC 阳极之间的古菌种群非常相似。SEM 和 FISH 成像表明,古菌主要存在于电极纤维之间的空间中,而细菌则存在于纤维表面,这表明细菌是参与 MEC 电化学活性的主要微生物。冗余分析(RDA)和基于 QR 分解的估计(QRE)用于将细菌群落的组成与 MEC 的电化学性能联系起来。MEC 的工作模式及其对电流密度和阳极电阻的影响对种群有显著影响。结果表明,群落组成与电流密度的相关性最强。与电流最相关的 DGGE 带代表了一种产丁酸梭菌(Clostridium sticklandii)菌株,这表明该物种在 MEC 阳极从乙酸盐生成电流方面发挥了主要作用。RDA 和 QRE 的结合似乎特别有希望深入了解微生物种群中积极参与 MEC 电极相互作用的部分。