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

  • Xue Wang
  • , Yaoli Wei*
  • , Zenan Zhang
  • , Mengnan Cao
  • , Bin Liang
  • , Xiuping Yue
  • , Aijuan Zhou
  • *Corresponding author for this work
  • Taiyuan University of Technology
  • Taiyuan Institute of Technology
  • Harbin Institute of Technology
  • Shanxi-Zheda Institute of Advanced Materials and Chemical Engineering

Research output: Contribution to journalArticlepeer-review

Abstract

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.

Original languageEnglish
Article number138070
JournalJournal of Hazardous Materials
Volume492
DOIs
StatePublished - 15 Jul 2025
Externally publishedYes

Keywords

  • Antibiotic resistance genes (ARGs)
  • Degradation pathways
  • Electrogenic respiration
  • Microbial community structure
  • Trimethoprim (TMP) biodegradation

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