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通过同时提高生物可利用性和微生物活性来增强污泥中高分子量多环芳烃苯并[a]蒽的厌氧生物降解:一种综合方法。

Integrated approach to enhance the anaerobic biodegradation of benz[α]anthracene: A high-molecule-weight polycyclic aromatic hydrocarbon in sludge by simultaneously improving the bioavailability and microbial activity.

机构信息

Key Laboratory of Integrated Regulation and Resource Development on Shallow Lakes, Ministry of Education, Hohai University, Nanjing 210098, China; College of Environment, Hohai University, Nanjing 210098, China.

Jiangsu Provincial Academy of Environmental Science, Nanjing, China.

出版信息

J Hazard Mater. 2019 Mar 5;365:322-330. doi: 10.1016/j.jhazmat.2018.11.012. Epub 2018 Nov 6.

Abstract

The biodegradation of benz[α]anthracene (BaA), which was a high-molecule-weight PAH, was enhanced via a combination of alkaline and alkyl polyglucosides (APG) treatment during waste activated sludge (WAS) anaerobic fermentation. The biodegradation efficiency of BaA was increased from 14.1% in the control to 30.2 and 47.8% in pH 10 and pH 10 & APG reactors, respectively. Mechanism investigations found that the alkaline and APG treatments stimulated the processes of BaA desorption from sludge and transfer/entry into microorganisms, and ultimately improved the BaA bioavailability. Meanwhile, the huge released substrates from WAS not only served as carbon sources but also involved in the electron transfer among microorganisms which contributed to the BaA biodegradation process. Moreover, the microbial activities involved in BaA biodegradation, including the abundances of functional bacteria, activities of enzymes and quantities of genes, were also incremented due to the alkaline and APG treatments. Overall, the simultaneous improvement of BaA bioavailability and microbial activities enhanced its biodegradation efficiency.

摘要

通过在废活性污泥(WAS)厌氧发酵过程中联合使用碱性和烷基多糖苷(APG)处理,可增强高分子量 PAH 苯并[a]蒽(BaA)的生物降解。与对照相比,BaA 的生物降解效率分别从 14.1%提高到 pH10 反应器中的 30.2%和 pH10 & APG 反应器中的 47.8%。机理研究发现,碱性和 APG 处理刺激了 BaA 从污泥中的解吸以及向微生物的转移/进入过程,从而提高了 BaA 的生物利用度。同时,WAS 中大量释放的底物不仅作为碳源,而且还参与微生物之间的电子传递,这有助于 BaA 的生物降解过程。此外,由于碱性和 APG 处理,还增加了参与 BaA 生物降解的微生物活性,包括功能细菌的丰度、酶的活性和基因的数量。总体而言,BaA 生物利用度和微生物活性的同时提高增强了其生物降解效率。

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