Biocathode regulates enrofloxacin degradation by coupling with different co-metabolism conditions

化学 恩诺沙星 新陈代谢 细菌 降级(电信) 生物化学 生物膜 代谢途径 微生物学 药理学 抗生素 生物 环丙沙星 遗传学 电信 计算机科学
作者
Xiaofang Xue,Linli Wang,Dexin Wang,Xuesong Yi,Fei Yang,Yangyang Li
出处
期刊:Environmental Research [Elsevier BV]
卷期号:212 (Pt A): 113254-113254 被引量:23
标识
DOI:10.1016/j.envres.2022.113254
摘要

In this study, biocathode system coupled with different co-metabolism conditions (NaAc, glucose and NaHCO 3 ) were developed to degrade quinolones enrofloxacin (ENR) due to its poorly metabolization, easily accumulation and potential toxicity. Simultaneously, ENR reduction kinetic rate constant in NaAc-fed, glucose-fed and NaHCO 3 -fed biocathodes, and sole biocathode were increased by 343.62%, 320.46%, 189.19% and 130.88% when compared with that of abiotic cathode when the operational time and ENR concentration were set to 48 h and 25 mg/L. In addition, transformation pathways of ENR revealed pathway II were dominantly occurred in NaAc- and glucose-fed biocathode while pathway IV acting as key metabolic process were shown in NaHCO 3 -fed biocathode. Moreover, 16S rRNA high-throughput sequencing analysis indicated that biocathodic communities were sensitive to switch-over of carbon source, namely Delftia and Bosea as organohalide-respiring bacteria (OHRB) were abundant in NaAc- and glucose-fed biocathodes while Mesotoga and Syntrophorhabdus that responsible for benzoyl-CoA metabolic process were enriched in NaHCO 3 -fed biocathode. Overall, this study could unravel the underlying relationship between biocathode degradation pattern of ENR and different co-metabolism conditions, and further offer valuable scientific information on treating refractory quinolones antibiotics via green bioelectrochemical method.
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