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Hospital Environments Harbor Chlorhexidine-Tolerant Bacteria Potentially Linked to Chlorhexidine Persistence in the
Jiaxian Shen1, Yuhan Weng1, Tyler Shimada1
1Department of Civil and Environmental Engineering, McCormick School of Engineering, Northwestern University, Evanston, Illinois 60208, United States.
Abstract:
An integrated approach is essential in combating antibiotic and antimicrobial resistance. Chlorhexidine digluconate (CHG), a widely used antiseptic in medical intensive care units (MICU), has recently come under scrutiny. However, studies of CHG tolerance, particularly in interconnected indoor environments, are limited. We comprehensively explored CHG tolerance in MICU environments from chemical, microbial, and molecular perspectives. Using microcosm experiments and field surveys, we demonstrated that CHG, if transferred from patient skin to environments, can persist on surfaces despite cleaning and disinfection and decrease to sublethal levels for clinically relevant bacteria. We detected widespread CHG-tolerant bacteria (≥18.75 μg/mL), including opportunistic pathogens (e.g., Pseudomonas aeruginosa, Stenotrophomonas maltophilia, Elizabethkingia miricola), with minimum inhibitory concentrations up to 512 μg/mL. Sink drains emerged as critical hotspots, and indoor air as a potential transport mechanism. We observed indications of bacterial persistence, increased tolerance, in situ evolution, and dissemination across MICU rooms. Molecular analyses revealed heterogeneous and largely unexplored CHG resistance mechanisms and identified resistance determinant candidates, particularly qacEdelta1-carrying, plasmid-borne multidrug-resistant cassettes. Our findings underscore the importance of understanding human-environment and chemical-microbe interactions to preserve chlorhexidine's efficacy and inform infection prevention strategies. We advocate for integrated environmental management and clinical interventions.
Insights
Chlorhexidine digluconate (CHG) can persist in medical environments, leading to tolerant bacteria. This highlights the need for integrated strategies to maintain antiseptic efficacy and prevent resistance.
Area of Science:
- Environmental microbiology
- Antimicrobial resistance
- Infection control
Background:
- Antibiotic and antimicrobial resistance requires integrated strategies.
- Chlorhexidine digluconate (CHG) is a common antiseptic in medical intensive care units (MICUs).
- Limited studies exist on CHG tolerance in interconnected indoor environments.
Purpose of the Study:
- To comprehensively explore CHG tolerance in MICU environments.
- To investigate CHG persistence, bacterial tolerance, and resistance mechanisms.
- To inform infection prevention strategies by understanding chemical-microbe interactions.
Main Methods:
- Microcosm experiments and field surveys were conducted.
- Chemical, microbial, and molecular analyses were employed.
- Detection of CHG-tolerant bacteria and analysis of resistance determinants.
Main Results:
- CHG persists on surfaces despite cleaning, reaching sublethal levels for bacteria.
- Widespread CHG-tolerant bacteria, including opportunistic pathogens, were detected (≥18.75 μg/mL).
- Sink drains were identified as hotspots, indoor air as a transport mechanism, and resistance mechanisms were largely unexplored.
Conclusions:
- Understanding human-environment and chemical-microbe interactions is crucial for preserving CHG efficacy.
- Integrated environmental management and clinical interventions are advocated.
- Findings underscore the need for enhanced infection prevention strategies in MICUs.
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