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Co-metabolism for enhanced phenol degradation and bioelectricity generation in microbial fuel cell

机译:微生物燃料电池中增强酚类降解和生物电性产生的共代谢

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Co-metabolism is one of the effective approaches to increase the removal of refractory pollutants in microbial fuel cells (MFCs), but studies on the links between the co-substrates and biodegradation remain limited. In this study, four external carbon resources were used as co-substrates for phenol removal and power generation in MFC. The result demonstrated that acetate was the most efficient co-substrate with an initial phenol degradation of 78.8% and the voltage output of 389.0 mV. Polarization curves and cyclic voltammogram analysis indicated that acetate significantly increased the activity of extracellular electron transfer (EET) enzyme of the anodic microorganism, such as cytochrome c OmcA. GC-MS and LC-MS results suggested that phenol was biodegraded via catechol, 2-hydroxymuconic semialdehyde, and pyruvic acid, and these intermediates were reduced apparently in acetate feeding MFC. The microbial community analysis by high-throughput sequencing showed that Acidovorax, Geobacter, and Thauera were predominant species when using acetate as co-substrate. It can be concluded that the efficient removal of phenol was contributed to the positive interactions between electrochemically active bacteria and phenolic degradation bacteria. This study might provide new insight into the positive role of the co-substrate during the treatment of phenolic wastewater by MFC. (C) 2020 Elsevier B.V. All rights reserved.
机译:共代谢是增加微生物燃料电池(MFC)中耐火污染物的有效方法之一,但研究了共衬底和生物降解之间的链接保持有限。在该研究中,使用四种外部碳资源作为MFC中酚去除和发电的共衬底。结果表明,乙酸盐是最有效的共衬底,初始酚类降解为78.8%,电压输出为389.0 mV。偏振曲线和循环伏安图分析表明,醋酸盐显着增加了阳极微生物的细胞外电子转移(EET)酶的活性,例如细胞色素C OMCA。 GC-MS和LC-MS结果表明苯酚通过儿茶酚,2-羟基氨基醛和丙酮酸生物降解,并且这些中间体显然在乙酸盐饲料MFC中减少。通过高通量测序的微生物群落分析表明,当使用乙酸酯作为共底的酸胃,地杆菌和粉末是主要的物种。可以得出结论,苯酚的有效除去有助于电化学活性细菌和酚类降解细菌之间的阳性相互作用。该研究可能对MFC治疗酚醛废水期间对共衬底的积极作用提供新的洞察。 (c)2020 Elsevier B.V.保留所有权利。

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