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微生物燃料电池-湿地同步去除抗生素和氮:微生物响应及碳氮代谢途径。

Simultaneous removal of antibiotics and nitrogen by microbial fuel cell-constructed wetlands: Microbial response and carbon-nitrogen metabolism pathways.

机构信息

School of Water Conservancy and Environment, University of Jinan, Jinan 250022, China.

School of Water Conservancy and Environment, University of Jinan, Jinan 250022, China; Shandong Provincial Engineering Technology Research Center for Ecological Carbon Sink and Capture Utilization, Jinan 250022, China.

出版信息

Sci Total Environ. 2023 Oct 1;893:164855. doi: 10.1016/j.scitotenv.2023.164855. Epub 2023 Jun 17.

Abstract

Microbial fuel cell-constructed wetlands (MFC-CWs) are attracted extensive attention due to their simultaneous removal performance during the co-occurrence of various pollutants in wastewater. This study explored the performance and mechanisms on the simultaneous removal of antibiotics and nitrogen from MFC-CWs which packed with coke (MFC-CW (C)) and quartz sand (MFC-CW (Q)) substrate. Results showed that removal of sulfamethoxazole (93.60 %), COD (77.94 %), NH-N (79.89 %), NO- N (82.67 %), and TN (70.29 %) significantly enhanced by MFC-CW (C) due to the enhancement of relative abundance of membrane transport, amino acid metabolism and carbohydrate metabolism pathways. The results indicated that coke substrate can generate more electric energy in MFC-CW. Firmicutes (18.56-30.82 %), Proteobacteria (23.33-45.76 %), and Bacteroidetes (17.1-27.85 %) were dominant phyla in the MFC-CWs. MFC-CW (C) posed significant effects on the microbial diversity and structure, which motivated the functional microbes involved in the transformation of antibiotics and nitrogen and bioelectricity generation. Given the overall performance of MFC-CW, packing with cost-effective substrate to electrode region of MFC-CWs was found to be an effective strategy for simultaneously removing antibiotics and nitrogen in the wastewater treatment.

摘要

微生物燃料电池-人工湿地(MFC-CWs)由于在废水中同时存在多种污染物时具有协同去除性能,因此受到广泛关注。本研究探索了填充焦炭(MFC-CW(C))和石英砂(MFC-CW(Q))基质的 MFC-CWs 同时去除抗生素和氮的性能和机制。结果表明,由于膜转运、氨基酸代谢和碳水化合物代谢途径的相对丰度增加,MFC-CW(C)显著提高了磺胺甲恶唑(93.60%)、COD(77.94%)、NH-N(79.89%)、NO-N(82.67%)和 TN(70.29%)的去除率。结果表明,焦炭基质可以在 MFC-CW 中产生更多的电能。Firmicutes(18.56-30.82%)、Proteobacteria(23.33-45.76%)和 Bacteroidetes(17.1-27.85%)是 MFC-CWs 中的优势菌群。MFC-CW(C)对微生物多样性和结构有显著影响,这激发了参与抗生素和氮转化以及生物电能产生的功能微生物。鉴于 MFC-CW 的整体性能,发现向 MFC-CWs 的电极区域填充具有成本效益的基质是同时去除废水中抗生素和氮的有效策略。

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