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Bioelectrochemically enhanced degradation of bisphenol S: mechanistic insights from stable isotope-assisted investigations

机译:生物电化学上增强了双酚S的降解:来自稳定同位素辅助调查的机械洞察

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摘要

Electroactive microbes is the driving force for the bioelectrochemical degradation of organic pollutants, but the underlying microbial interactions between electrogenesis and pollutant degradation have not been clearly identified. Here, we combined stable isotope-assisted metabolomics (SIAM) and 13C-DNA stable isotope probing (DNA-SIP) to investigate bisphenol S (BPS) enhanced degradation by electroactive mixed-culture biofilms (EABs). Using SIAM, six 13C fully labeled transformation products were detected originating via hydrolysis, oxidation, alkylation, or aromatic ring-cleavage reactions from 13C-BPS, suggesting hydrolysis and oxidation as the initial and key degradation pathways for the electrochemical degradation process. The DNA-SIP results further displayed high 13C-DNA accumulation in the genera Bacteroides and Cetobacterium from the EABs and indicated their ability in the assimilation of BPS or its metabolites. Collectively, network analysis showed that the collaboration between electroactive microbes and BPS assimilators played pivotal roles the improvement in bioelectrochemically enhanced BPS degradation.
机译:电活性微生物是有机污染物的生物电化学降解的驱动力,但尚未明确鉴定出电生物和污染物降解之间的潜在微生物相互作用。在此,我们组合稳定同位素辅助的代谢组(SIAM)和13C-DNA稳定同位素探测(DNA-SIP)以研究双酚S(BPS)通过电活性混合培养生物膜(EAB)增强降解。使用暹罗,通过水解,氧化,烷基化或来自13C-BPS的芳族环切割反应来检测六13C完全标记的转化产物,表明水解和氧化作为电化学降解过程的初始和关键降解途径。 DNA-SIP结果进一步显示了来自EAB的Gensa Bactoides和甲杆菌的高13C-DNA积聚,并表明了它们在BPS或其代谢物的同化中的能力。集体,网络分析表明,电活性微生物和BPS同化器之间的协作起到了枢转作用的改善生物电化学上增强的BPS劣化。

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