电呼吸驱动的甲氧苄氨嘧啶高效厌氧生物降解:优化生物电表征,系统阐明抗生素耐药基因的生物降解机制和命运

IF 11.3 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Xue Wang , Yaoli Wei , Zenan Zhang , Mengnan Cao , Bin Liang , Xiuping Yue , Aijuan Zhou
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引用次数: 0

摘要

本研究构建了一个以三甲氧苄啶(TMP)为唯一碳源的生物电化学系统,以评估生物电源呼吸对加速 TMP 降解的作用。对生物电特性进行了全面优化。结果表明,当磷酸缓冲溶液的外阻、pH 值和浓度分别为 1000 Ω、7 和 25 mM 时,TMP 的最佳去除率为 99.38%。根据液相色谱-质谱法和密度泛函理论计算,推测了 TMP 的潜在降解途径,包括脱甲基、脱甲氧基、羟基化和亚甲桥裂解。经电解呼吸处理后,TMP 生物降解产物的总体生物毒性普遍降低。在生物电解厌氧处理系统中,电活性菌(3.85%)和潜在降解菌(27.18%)明显增加,生物电解呼吸在促进 TMP 生物降解方面发挥了关键作用。然而,研究发现,在 TMP 的长期毒性胁迫下,TMP 降解菌中的抗生素耐药基因(ARGs)出现了富集。此外,还广泛研究了微生物群落与环境变量之间的综合相互作用,发现电活性菌和潜在降解菌与 TMP 去除率和生物矿化效率呈强正相关。这项研究为在实际应用中有效处理含抗生素废水提供了指导和可行的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Efficient anaerobic biodegradation of trimethoprim driven by electrogenic respiration: Optimizing bioelectro-characterization, elucidating biodegradation mechanism and fate of antibiotic resistance genes systematically

Efficient anaerobic biodegradation of trimethoprim driven by electrogenic respiration: Optimizing bioelectro-characterization, elucidating biodegradation mechanism and fate of antibiotic resistance genes systematically
In this study, a bioelectrochemical system, with trimethoprim (TMP) as the sole carbon source, was constructed to evaluate the bioelectrogenic respiration on the acceleration of TMP degradation. The bioelectro-characterization was comprehensively optimized. The results showed that the optimal removal efficiency of TMP was achieved (99.38 %) when the external resistance, pH, and concentration of phosphate buffer solution were 1000 Ω, 7, and 25 mM, respectively. The potential TMP degradation pathways were speculated based on Liquid Chromatography-Mass Spectrometry and density functional theory calculations, including demethylation, demethoxy, hydroxylation and methylene bridge cracking. The overall biotoxicity of TMP biodegradation products after electrogenic respiration treatment was generally reduced. Electroactive bacteria (3.85 %) and potential degraders (27.18 %) were markedly increased in bioelectrogenic anaerobic treatment system, where bioelectrogenic respiration played a crucial role in promoting TMP biodegradation. However, it was observed that under long-term toxic stress of TMP, there was an enrichment of antibiotic resistance genes (ARGs) among the TMP-degrading bacteria. Furthermore, the comprehensive interaction between microbial communities and environmental variables was extensively investigated, revealing that electroactive bacteria and potential degraders were strongly positively correlated with TMP removal and biomineralization efficiency. This study provides guidance and promising strategy for the effective treatment of antibiotic-containing wastewater in practical applications.
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来源期刊
Journal of Hazardous Materials
Journal of Hazardous Materials 工程技术-工程:环境
CiteScore
25.40
自引率
5.90%
发文量
3059
审稿时长
58 days
期刊介绍: The Journal of Hazardous Materials serves as a global platform for promoting cutting-edge research in the field of Environmental Science and Engineering. Our publication features a wide range of articles, including full-length research papers, review articles, and perspectives, with the aim of enhancing our understanding of the dangers and risks associated with various materials concerning public health and the environment. It is important to note that the term "environmental contaminants" refers specifically to substances that pose hazardous effects through contamination, while excluding those that do not have such impacts on the environment or human health. Moreover, we emphasize the distinction between wastes and hazardous materials in order to provide further clarity on the scope of the journal. We have a keen interest in exploring specific compounds and microbial agents that have adverse effects on the environment.
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