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Bacterial Diversity Controls Transformation of Wastewater-Derived Organic Contaminants in River-Simulating Flumes

机译:细菌多样性控制模拟河水道中废水衍生的有机污染物的转化

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摘要

Hyporheic zones are the water-saturated flow-through subsurfaces of rivers which are characterized by the simultaneous occurrence of multiple physical, biological, and chemical processes. Two factors playing a role in the hyporheic attenuation of organic contaminants are sediment bedforms (a major driver of hyporheic exchange) and the composition of the sediment microbial community. How these factors act on the diverse range of organic contaminants encountered downstream from wastewater treatment plants is not well understood. To address this knowledge gap, we investigated dissipation half-lives (DT50s) of 31 substances (mainly pharmaceuticals) under different combinations of bacterial diversity and bedform-induced hyporheic flow using 20 recirculating flumes in a central composite face factorial design. By combining small-volume pore water sampling, targeted analysis, and suspect screening, along with quantitative real-time PCR and time-resolved amplicon Illumina MiSeq sequencing, we determined a comprehensive set of DT50s, associated bacterial communities, and microbial transformation products. The resulting DT50s of parent compounds ranged from 0.5 (fluoxetine) to 306 days (carbamazepine), with 20 substances responding significantly to bacterial diversity and four to both diversity and hyporheic flow. Bacterial taxa that were associated with biodegradation included Acidobacteria (groups 6, 17, and 22), Actinobacteria (Nocardioides and Illumatobacter), Bacteroidetes (Terrimonas and Flavobacterium) and diverse Proteobacteria (Pseudomonadaceae, Sphingomonadaceae, and Xanthomonadaceae). Notable were the formation of valsartan acid from irbesartan and valsartan, the persistence of N-desmethylvenlafaxine across all treatments, and the identification of biuret as a novel transformation product of metformin. Twelve additional target transformation products were identified, which were persistent in either pore or surface water of at least one treatment, indicating their environmental relevance.
机译:亲水区是河流中水饱和的流经地下,其特征是同时发生多种物理,生物和化学过程。在有机污染物的流变衰减中起作用的两个因素是沉积物床形(流变交换的主要驱动力)和沉积物微生物群落的组成。这些因素如何作用于废水处理厂下游遇到的各种有机污染物的方法尚不清楚。为了解决这一知识差距,我们在中央复合面析因设计中使用了20种循环水槽,研究了31种物质(主要是药物)在细菌多样性和床型诱导的流变流的不同组合下的耗散半衰期(DT50)。通过结合小体积的孔隙水采样,目标分析和可疑筛查,以及定量实时PCR和时间分辨的扩增子Illumina MiSeq测序,我们确定了一套全面的DT50,相关细菌群落和微生物转化产物。母体化合物的最终DT50值为0.5(氟西汀)至306天(卡马西平),其中20种物质对细菌多样性有显着响应,而4种对多样性和低流量产生响应。与生物降解有关的细菌类群包括嗜酸细菌(第6、17和22组),放线菌(诺卡氏菌和发光杆菌),拟杆菌(特里莫纳氏菌和黄杆菌)和多种变形杆菌(假单胞菌科,Sphingomonadaceae和Xanthomonadaceae)。值得注意的是从厄贝沙坦和缬沙坦形成缬沙坦酸,N-去甲基文拉法辛在所有治疗中的持久性以及缩二脲作为二甲双胍的新型转化产物的鉴定。确定了另外十二种目标转化产物,这些产物在至少一种处理的孔隙水中或地表水中均具有持久性,表明它们与环境有关。

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  • 来源
    《Environmental Science & Technology》 |2020年第9期|5467-5479|共13页
  • 作者单位

    Department of Environmental Science (ACES) Stockholm University SE-11418 Stockholm Sweden;

    Eawag Swiss Federal Institute of Aquatic Science and Technology CH 8600 Dübendorf SwitzerlandInstitute of Biogeochemistry and Pollutant Dynamics ETH Zurich 8092 Zurich Switzerland;

    Department of Ecological Microbiology University of Bayreuth Bayreuth Germany;

    Department of Environmental Science (ACES) Stockholm University SE-11418 Stockholm Sweden Eawag Swiss Federal Institute of Aquatic Science and Technology CH 8600 Dubendorf Switzerland;

    Department Ecohydrology Leibniz-Institute of Freshwater Ecology and Inland Fisheries Berlin Germany Geography Department Humboldt University Berlin Berlin Germany;

    Technical University of Darmstadt Institute of Applied Geosciences Darmstadt Germany IWW Water Centre Mülheim an der Ruhr Germany;

    Department Ecohydrology Leibniz-Institute of Freshwater Ecology and Inland Fisheries Berlin Germany Julius Kühn-Institute Institute for Ecological Chemistry Plant Analysis and Stored Product Protection Berlin Germany;

    School of Geography Earth and Environmental Sciences University of Birmingham Birmingham U.K.;

    Department of Environmental Science (ACES) Stockholm University SE-U4I8 Stockholm Sweden;

    Department of Ecological Microbiology University of Bayreuth Bayreuth Germany Institute of Microbiology Leibniz University of Hannover DE-30167 Hannover Germany;

    Eawag Swiss Federal Institute of Aquatic Science and Technology CH 8600 Dübendorf Switzerland Institute of Biogeochemistry and Pollutant Dynamics ETH Zurich 8092 Zürich Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 05:27:33

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