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Enhanced removal of veterinary antibiotic from wastewater by photoelectroactive biofilm of purple anoxygenic phototroph through photosynthetic electron uptake

机译:通过光合电子吸收通过紫色含氮氧化光饮料的光电冷炉从废水中取出兽医抗生素的去除

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摘要

Purple anoxygenic phototrophs have been recently attracted substantial attention for their growing potential in wastewater treatment and their diverse metabolic patterns can be regulated for process control and optimization. In this study, the photoheterotrophic metabolism of Rhodopseudomonas palustris (R palustris) was modified by photosynthetic electron uptake using a poised electrode which was explored to enhance removal of veterinary antibiotic from aqueous medium. The results showed that R. palustris grown as biofilm on electrode surface had excellent photoelectroactive activity and the photosynthetic electron uptake from the photoelectroactive biofilm significantly enhanced antibiotic florfenicol (FLO) degradation. The specific degradation rate of FLO at the set electrode potential of 0 V was 2.59-fold higher than that without applied potential. Enhanced co-metabolic reductive dehalogenation by use of the photosynthetic electrons extracted from co-substrate was mainly responsible for FLO degradation which eliminated the antibacterial activity of FLO. The electrode potential controlled the processes of photosynthetic electron uptake and its resultant FLO degradation. The fastest degradation of FLO was achieved at 0 V because the electrode poised at this potential stroke a proper balance between the enhancing photosynthetic electron uptake by serving as electron acceptor and minimizing competition with FLO for the photosynthetic electron from co-substrate. The activity of photoelectroactive biofilm was not negatively affected by FLO at environmental relevant concentration, suggesting its great potential for removal of antibiotic contaminants in wastewater. R. palustris could serve as a reservoir for floR resistance gene but its abundance can be diminished by choosing appropriate electrode potential.
机译:紫色含氧氧基光学术最近被吸引了大量关注,因为它们的废水处理潜力越来越大,可以调节它们不同的代谢模式以进行过程控制和优化。在这项研究中,通过使用探索的电极通过光合电子吸收来改变rhodopseudomonasPalustris(r Palustris)的光检查器代谢,所述电极通过探索的电极来加强从水性介质中去除兽医抗生素。结果表明,作为电极表面的生物膜生长的R.Palustris具有优异的光电子电活性和光电电极活性生物膜的光合电子显着增强的抗生素氟苯醇(FLO)降解。 0V的设定电极电位下FLO的特定降解速率比没有施加电位的情况高2.59倍。通过使用从共衬底提取的光合电子增强的共代谢还原脱氢主要负责Flo降解,这消除了Flo的抗菌活性。电极电位控制光合电子吸收的过程及其所得氟化物劣化。在0V下实现FLO的最快降解,因为通过用作电子受体并最小化来自共衬底的光合电子的光合电子的竞争最小化,电极在这种潜在的潜在冲程中提高了适当的平衡。光电子活性生物膜的活性在环境相关浓度下的氟玻璃不会受到负面影响,表明其在废水中除去抗生素污染物的巨大潜力。 R. Palustris可以作为植物抵抗基因的储层,但是通过选择适当的电极电位可以减少其丰度。

著录项

  • 来源
    《The Science of the Total Environment》 |2020年第15期|136605.1-136605.11|共11页
  • 作者单位

    Guangzhou Key Laboratory Environmental Catalysis and Pollution Control Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control School of Environmental Science and Engineering Institute of Environmental Health and Pollution Control Guangdong University of Technology Guangzhou 510006 China;

    Guangzhou Key Laboratory Environmental Catalysis and Pollution Control Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control School of Environmental Science and Engineering Institute of Environmental Health and Pollution Control Guangdong University of Technology Guangzhou 510006 China;

    Guangzhou Key Laboratory Environmental Catalysis and Pollution Control Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control School of Environmental Science and Engineering Institute of Environmental Health and Pollution Control Guangdong University of Technology Guangzhou 510006 China;

    Guangzhou Key Laboratory Environmental Catalysis and Pollution Control Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control School of Environmental Science and Engineering Institute of Environmental Health and Pollution Control Guangdong University of Technology Guangzhou 510006 China;

    Guangzhou Key Laboratory Environmental Catalysis and Pollution Control Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control School of Environmental Science and Engineering Institute of Environmental Health and Pollution Control Guangdong University of Technology Guangzhou 510006 China;

    Guangzhou Key Laboratory Environmental Catalysis and Pollution Control Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control School of Environmental Science and Engineering Institute of Environmental Health and Pollution Control Guangdong University of Technology Guangzhou 510006 China;

    Guangzhou Key Laboratory Environmental Catalysis and Pollution Control Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control School of Environmental Science and Engineering Institute of Environmental Health and Pollution Control Guangdong University of Technology Guangzhou 510006 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Photosynthetic electron uptake; Purple anoxygenic phototroph; Photoelectroactive biofilm; Florfenicol; Degradation; Antibiotic resistance gene;

    机译:光合电子吸收;紫色anoxygenic光饮;光电子活性生物膜;Florfenicol;降解;抗生素抗性基因;

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