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利用固定化内生青霉(Penicillium restrictum)进行生物增强,以提高好氧中空纤维膜生物反应器处理含抗生素废水的群体感应淬灭活性,从而控制生物污垢。

Bioaugmentation with immobilized endophytic Penicillium restrictum to improve quorum quenching activity for biofouling control in an aerobic hollow-fiber membrane bioreactor treating antibiotic-containing wastewater.

机构信息

Department of Environmental Engineering, Istanbul Technical University, Maslak, Istanbul 34469, Turkey.

Institute of Environment, University of Tabriz, Tabriz 5166616471, Iran.

出版信息

Ecotoxicol Environ Saf. 2021 Mar 1;210:111831. doi: 10.1016/j.ecoenv.2020.111831. Epub 2020 Dec 31.

Abstract

The effects of bioaugmentation with immobilized Penicillium restrictum on the removal efficiency of sulfamethoxazole (SMX), erythromycin (ERY) and tetracycline (TC) antibiotics as well as membrane biofouling was studied using hollow-fiber membrane bioreactor (HF-MBR). Bioaugmentation with P. restrictum led to a significant change in the antibiotic removal efficiency and relative abundance of aerobic microbial community, most probably as a result of its quorum quenching activity. Furthermore, in addition to its role in the increase of SMX and ERY removal efficiencies and the decrease of their sorption on solid phase, bioaugmentation significantly reduced the transmembrane pressure which in turn reduced membrane clogging. The most abundant phyla in sludge and biofilm samples in the presence of P. restrictum were observed to be Proteobacteria, Bacteroidetes and Firmicutes. Differences in bacterial compositions and their specificity in biodegradation of antibiotics in different reactors showed that bacteria were specifically selected under the pressure of antibiotics and growing fungus.

摘要

采用固定化青霉(Penicillium restrictum)进行生物增强对中空纤维膜生物反应器(HF-MBR)中磺胺甲恶唑(SMX)、红霉素(ERY)和四环素(TC)抗生素去除效率和膜生物污染的影响进行了研究。青霉(Penicillium restrictum)的生物增强导致抗生素去除效率和需氧微生物群落相对丰度发生显著变化,这很可能是由于其群体感应淬灭活性所致。此外,除了在提高 SMX 和 ERY 去除效率以及降低其在固相上的吸附方面发挥作用外,生物增强还显著降低了跨膜压力,从而减少了膜堵塞。在存在青霉(Penicillium restrictum)的污泥和生物膜样品中,最丰富的菌门是变形菌门、拟杆菌门和厚壁菌门。不同反应器中细菌组成的差异及其对抗生素生物降解的特异性表明,在抗生素的压力下和生长的真菌的选择下,细菌具有特异性。

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