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Comprehensive study on the potential environmental risk of temporal antibiotic usage through wastewater discharges

废水 流出物 污水处理 环境化学 抗生素 环丙沙星 喹诺酮类 水生生态系统 环境科学 抗生素耐药性 磺胺甲恶唑 生态毒性 化学 环境工程 生物 微生物学 毒性 有机化学
作者
Elisa Gracia-Marín,Andreu Rico,David Fabregat‐Safont,Francisco J. López,Félix Hernández,Elena Pitarch,Lubertus Bijlsma
出处
期刊:Chemosphere [Elsevier BV]
卷期号:346: 140587-140587 被引量:30
标识
DOI:10.1016/j.chemosphere.2023.140587
摘要

Antibiotic residues can reach aquatic ecosystems through urban wastewater discharges, posing an ecotoxicological risk for aquatic organisms and favoring the development of bacterial resistance. To assess the emission rate and hazardousness of these compounds, it is important to carry out periodic chemical monitoring campaigns that provide information regarding the actual performance of wastewater treatment plants (WWTPs) and the potential impact of the treated wastewater in the aquatic environment. In this study, 18 of the most widely consumed antibiotics in Spain were determined by liquid chromatography-tandem mass spectrometry in both influent (IWW) and effluent wastewater (EWW) samples collected over four seasons along 2021–2022. Eleven antibiotics were detected in EWW with azithromycin, ciprofloxacin and levofloxacin showing the highest concentration levels (around 2 μg L−1 of azithromycin and 0.4 μg L−1 of quinolone compounds). Data showed that only 4 out of the 11 compounds were removed by more than 50 % in the WWTP, with sulfamethoxazole standing out with an average removal efficiency >80 %. The risk that treated water could pose to the aquatic environment was also assessed, with 6 compounds indicating a potential environmental risk by exceeding established ecotoxicological and resistance thresholds. Based on the risk assessment, the WWTP removal efficiency required to reduce such risk for antibiotics was estimated. In addition, pooled wastewater samples were screened by LC coupled to high resolution mass spectrometry with ion mobility separation, searching for metabolites and transformation products of the antibiotics investigated to widen future research. Studies like this are crucial to map the impact of antibiotic pollution and to provide the basis for designing water quality and risk prevention monitoring programs.
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