Micropollutant-driven bacterial adaptation enables resilient pharmaceuticals biodegradation at trace concentrations in biologically treated wastewater.
Demaria, F.; Suleiman, M.; Bargiela, R.; Ferrer, M.; Blazquez, S.; Nunez, A.; Petchey, O.; Corvini, P.; Junier, P.
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Pharmaceutical residues are persistent contaminants that resist conventional wastewater treatment and can disrupt ecosystems; however, microorganisms provide a promising biobased solution to transform or mineralize these complex xenobiotics. Whether pollutant-adapted communities maintain their degradative capacity under realistic environmental conditions remains a long-standing debate in environmental biotechnology. Here, microbial consortia enriched in six membrane bioreactors under high pharmaceutical concentration (100 mg/L) retained full biodegradation capacity across a 5000-fold concentration range. After prolonged exposure to six model compounds (atenolol, caffeine, diclofenac, enalapril, ibuprofen, and paracetamol) complete removal occurred for all except diclofenac. Degradation remained efficient even at lower and environmentally relevant concentrations (1 mg/L-20 {micro}g/L) and recovered rapidly upon re-exposure to higher loads (100 mg/L). Metagenomic profiling revealed enrichment of oxygenase-mediated catabolic pathways supporting this resilience. When transferred to a 7 liters bioreactor treating real wastewater, the adapted community removed targeted and untargeted pharmaceuticals, demonstrating robustness, scalability, and strong potential for sustainable micropollutant remediation. Environmental ImplicationPharmaceuticals and their metabolites are environmentally hazardous because these bioactive micropollutants are persistent and continuously discharged via wastewater, thereby endangering both ecosystem and human health. This study shows that pollutant-adapted microbial consortia can address this challenge, retaining strong degradative function across large concentration fluctuations, including environmentally relevant levels. It also demonstrates scalability: the adapted community can be transferred to real-wastewater operation to remove both targeted and additional pharmaceuticals, supporting a bio-based "polishing" step for wastewater treatment plants. Overall, these findings support more sustainable biological mitigation strategies to reduce micropollutant loads.
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