Turkey Tail, Yun Zhi · 2026 · Journal Article
Medium relevanceMechanistic insights into the enhancement of azithromycin biodegradation by extracellular polymeric substances: Roles of metabolic activity, electron transfer, and reactive oxygen species.
Trametes versicolor
Key points
- White-rot fungi (WRF) have shown potential as an effective alternative for antibiotic removal in wastewater treatment
- In this study, we demonstrate that extracellular polymeric substances (EPS) from Brucella intermedia ZL-06 significantly enhance the degradation of azithromycin (AZI) by the WRF Trametes versicolor, reducing the degradation time from 9 to 6 days and achieving > 99.9 % elimination
- Mass-balance calculations revealed a 35.33 % increase in the specific biodegradation rate per unit biomass
- Mechanistic analysis showed that EPS-primed T. versicolor rapidly generated extracellular reactive oxygen species (ROS)
- The essential role of ROS in AZI degradation was confirmed by the significant inhibition of degradation efficiency in radical-scavenging assays
- Additionally, EPS treatment enhanced electron flux, as evidenced by a 31.12 % increase in cytochrome C content, upregulated oxidoreductase activities, and a reduction in the extracellular electron-transfer resistance between T. versicolor and AZI, from 139.01 Ω to 47.86 Ω, as measured by cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS)
Metadata-grounded summary
Citation abstract
White-rot fungi (WRF) have shown potential as an effective alternative for antibiotic removal in wastewater treatment. However, their slow degradation rates remain a major challenge. In this study, we demonstrate that extracellular polymeric substances (EPS) from Brucella intermedia ZL-06 significantly enhance the degradation of azithromycin (AZI) by the WRF Trametes versicolor, reducing the degradation time from 9 to 6 days and achieving > 99.9 % elimination. Mass-balance calculations revealed a 35.33 % increase in the specific biodegradation rate per unit biomass. Mechanistic analysis showed that EPS-primed T. versicolor rapidly generated extracellular reactive oxygen species (ROS). The essential role of ROS in AZI degradation was confirmed by the significant inhibition of degradation efficiency in radical-scavenging assays. Additionally, EPS treatment enhanced electron flux, as evidenced by a 31.12 % increase in cytochrome C content, upregulated oxidoreductase activities, and a reduction in the extracellular electron-transfer resistance between T. versicolor and AZI, from 139.01 Ω to 47.86 Ω, as measured by cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS). This study proposes a novel mechanism for synergistic degradation, involving both ROS generation and chem-/biodegradation processes. These findings provide a theoretical foundation for developing ROS-enzyme synergistic platforms in antibiotic bioremediation.
Citation
Zhou JG, Wei MH, Wang SJ, Chen L, Ullah MW, Liu HT, et al. (2026). Mechanistic insights into the enhancement of azithromycin biodegradation by extracellular polymeric substances: Roles of metabolic activity, electron transfer, and reactive oxygen species. Journal of hazardous materials https://doi.org/10.1016/j.jhazmat.2025.140925 PMID: 41468823
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