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Antibiotic resistomes in face-mask biofilm along an urban river: Multiple drivers and co-occurrence with human opportunistic pathogens

npj Emerging Contaminants 2023 17 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Yanjun Liu, Zhenghao Li, Yun-Tian He, Yuan Li, Guo‐Ping Sheng

Summary

Discarded face masks tossed into rivers aren't just plastic waste, they become breeding grounds for slimy bacterial films that collect antibiotic-resistant genes at higher levels than natural surfaces like rocks. Even more concerning, these mask-biofilms also harbor disease-causing bacteria that can carry this resistance, meaning littered masks could help spread germs that don't respond to antibiotics. This research is a reminder that proper mask disposal isn't just about litter, it's about preventing our waterways from becoming hotspots for drug-resistant infections.

Study Type Environmental

Discarded face masks from the global COVID-19 pandemic have contributed significantly to plastic pollution in surface water, whereas their potential as a reservoir for aquatic pollutants is not well understood. Herein, we conducted a field experiment along a human-impacted urban river, investigating the variations of antibiotic resistance genes (ARGs), pathogens, and water-borne contaminants in commonly-used face masks. Results showed that high-biomass biofilms formed on face masks selectively enriched more ARGs than stone biofilm (0.08-0.22 vs 0.07-0.15 copies/16 S rRNA gene copies) from bulk water, which mainly due to unique microbial communities, enhanced horizontal gene transfer, and selective pressure of accumulated contaminants based on redundancy analysis and variation partitioning analysis. Several human opportunistic pathogens (e.g., Acinetobacter, Escherichia-Shigella, Bacillus, and Klebsiella), which are considered potential ARG carriers, were also greatly concentrated in face-mask biofilms, imposing a potential threat to aquatic ecological environment and human health. Moreover, wastewater treatment plant effluents, as an important source of pollutants to urban rivers, further aggravated the abundances of ARGs and opportunistic pathogens in face-mask biofilms. Our findings demonstrated that discarded face masks provide a hotspot for the proliferation and spread of ARGs and pathogens in urban water, highlighting the urgent requirement for implementing stricter regulations in face mask disposal.

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