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.

Plos One
|September 20, 2023
PubMed

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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