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Human pathogenic bacteria on high-touch dry surfaces can be controlled by warming to human-skin temperature under
Ayano Konno1, Torahiko Okubo1, Yoshiaki Enoeda1
1Faculty of Health Sciences, Department of Medical Laboratory Science, Hokkaido University, Kita-ku, Sapporo, Japan.
Abstract:
Healthcare-associated infections have become a major health issue worldwide. One route of transmission of pathogenic bacteria is through contact with "high-touch" dry surfaces, such as handrails. Regular cleaning of surfaces with disinfectant chemicals is insufficient against pathogenic bacteria and alternative control methods are therefore required. We previously showed that warming to human-skin temperature affected the survival of pathogenic bacteria on dry surfaces, but humidity was not considered in that study. Here, we investigated environmental factors that affect the number of live bacteria on dry surfaces in hospitals by principal component analysis of previously-collected data (n = 576, for CFU counts), and experimentally verified the effect of warming to human-skin temperature on the survival of pathogenic bacteria on dry surfaces under humidity control. The results revealed that PCA divided hospital dry surfaces into four groups (Group 1~4) and hospital dry surfaces at low temperature and low humidity (Group 3) had much higher bacterial counts as compared to the others (Group 1 and 4) (p<0.05). Experimentally, warming to human-skin temperature (37°C with 90% humidity) for 18~72h significantly suppressed the survival of pathogenic bacteria on dry surfaces, such as plastic surfaces [p<0.05 vs. 15°C (Escherichia coli DH5α, Staphylococcus aureus, Pseudomonas aeruginosa, Acinetobacter baumannii, and blaNDM-5 E. coli)] or handrails [p<0.05 vs. 15~25°C (E. coli DH5α, S. aureus, P. aeruginosa, A. baumannii)], under moderate 55% humidity. Furthermore, intermittent heating to human-skin temperature reduced the survival of spore-forming bacteria (Bacillus subtilis) (p<0.01 vs. continuous heating to human-skin temperature). NhaA, an Na+/H+ antiporter, was found to regulate the survival of bacteria on dry surfaces, and the inhibitor 2-aminoperimidine enhanced the effect of warming at human-skin temperature on the survival of pathogenic bacteria (E. coli DH5α, S. aureus, A. baumannii) on dry surfaces. Thus, warming to human-skin temperature under moderate humidity is a useful method for impairing live pathogenic bacteria on high-touch surfaces, thereby helping to prevent the spread of healthcare-associated infections.
Insights
Warming high-touch surfaces to human-skin temperature, especially under moderate humidity, effectively reduces pathogenic bacteria. This method offers a novel strategy to combat healthcare-associated infections by targeting bacterial survival on surfaces.
Area of Science:
- Microbiology
- Environmental Science
- Infection Control
Background:
- Healthcare-associated infections (HAIs) are a significant global health concern.
- Pathogenic bacteria transmit via contact with contaminated high-touch surfaces.
- Current disinfection methods are insufficient, necessitating alternative strategies.
Purpose of the Study:
- To investigate environmental factors influencing pathogenic bacteria on hospital dry surfaces.
- To experimentally assess the efficacy of warming to human-skin temperature in controlling bacterial survival.
- To explore the role of humidity and specific bacterial mechanisms in survival.
Main Methods:
- Principal Component Analysis (PCA) of previously collected CFU count data (n=576) from hospital surfaces.
- Experimental verification of warming effects on bacterial survival under controlled humidity.
- Investigation of NhaA antiporter and its inhibitor's role in bacterial survival.
Main Results:
- PCA identified low temperature and low humidity as conditions promoting higher bacterial counts.
- Warming to 37°C significantly suppressed pathogenic bacteria (e.g., E. coli, S. aureus) on plastic and handrail surfaces under 55% humidity.
- Intermittent heating was more effective against spore-forming bacteria (Bacillus subtilis) than continuous heating.
- NhaA inhibition enhanced the antibacterial effect of warming.
Conclusions:
- Warming high-touch surfaces to human-skin temperature is a promising method for reducing pathogenic bacteria.
- This approach, particularly under moderate humidity, can help prevent the spread of HAIs.
- Targeting bacterial survival mechanisms, like NhaA, offers further potential for infection control.
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