Related Experiment Video
Updated: Apr 6, 2026

An Anaerobic Biosensor Assay for the Detection of Mercury and Cadmium
Published on: December 17, 2018
Heavy metals at environmentally relevant concentrations enhance antibiotic and ammonia removal in constructed
Chengkai Fu1, Jian Zhang2, Donglin Wang1
1Shandong Key Laboratory of Synergistic Control of Complex Multi-Media Pollution, School of Environmental Science & Engineering, Shandong University, Qingdao 266237, PR China.
Abstract:
Constructed wetlands (CWs) as the last barrier for ensuring water quality often face the simultaneous occurrence of multiple pollutants such as metals, antibiotics and nutrients. However, the mechanisms by which environmentally relevant concentrations of heavy metals (HMs) influence pollutant removal processes remain poorly understood. In this study, HMs (Zn(II), As(V), and Pb(II)) at environmentally relevant concentrations significantly enhanced doxycycline (DOX) removal and promoted ammonia oxidation in CWs, indicating functional activation rather than inhibition. Mass balance and functional gene analyses revealed that this enhancement was driven by microbial adaptation, characterized by shifts in community composition and the enrichment of functional taxa. Under low-dose metal stress, microbes carrying DOX degradation genes (tetX1, tetX2) and ammonia-oxidizing genes were enriched. Concurrently, the increased abundance of metal resistance genes (MRGs) and plasmid-mediated horizontal gene transfer (HGT) facilitated the coexistence of resistance and metabolic traits. Importantly, the consistent responses observed across different metals indicate that this adaptive activation is largely independent of metal identity. These findings expand understanding of the ecological roles of HMs at environmentally relevant concentrations and underscore their potential to modulate microbial functionality, offering valuable implications for optimizing CW performance under complex co-contamination scenarios.
Related Concept Videos
Microbial Bioremediation of Uranium
Microbial Leaching
Metabolism of Chemolithotrophs
Bioremediation
Extraction: Advanced Methods
Acid Mine Drainage

