Selection of resistance by antimicrobial coatings in the healthcare setting

F Pietsch1, A J O'Neill2, A Ivask3

  • 1Federal Institute for Materials Research and Testing, Department of Materials and Environment, Division of Biodeterioration and Reference Organisms, Berlin, Germany.

Insights

Antimicrobial surfaces may inadvertently promote antimicrobial resistance through mutation and gene transfer. Further research is needed to assess real-world risks in healthcare settings.

Area of Science:

  • Microbiology
  • Materials Science
  • Public Health

Background:

  • Antimicrobial touch surfaces are implemented in healthcare to enhance hygiene and combat antimicrobial resistance.
  • Concerns exist regarding the potential for these surfaces to drive the evolution and spread of antimicrobial resistance.

Purpose of the Study:

  • To review existing studies on the risks of antimicrobial resistance associated with antimicrobial touch surfaces.
  • To focus on surfaces utilizing copper, silver, and antimicrobial peptides.
  • To identify gaps in current research, particularly translational studies in healthcare environments.

Main Methods:

  • Literature review of studies investigating resistance evolution on antimicrobial surfaces.
  • Analysis of resistance mechanisms including de-novo mutation, horizontal gene transfer, and species sorting.
  • Focus on copper, silver, and antimicrobial peptide surfaces.

Main Results:

  • Evidence suggests antimicrobial surfaces can select for resistance through various mechanisms.
  • Cross-resistance and co-resistance between metal/antimicrobial peptides and antibiotics are potential concerns.
  • Data on resistance development in actual healthcare settings is limited.

Conclusions:

  • Antimicrobial surfaces pose a potential risk for selecting and increasing antimicrobial-resistant strains.
  • Translational studies are crucial to evaluate real-world resistance selection in healthcare.
  • Future research must consider factors like antimicrobial concentration, biofilms, and environmental humidity.
  • On-site efficacy tests should routinely assess resistance selection risks.

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