Drug resistance studies with topical antiseptics

Insights

Certain bacteria, including Proteus, Serratia, and Pseudomonas, developed resistance to chlorhexidine and benzalkonium chloride after repeated in vitro exposure. Povidone-iodine did not induce resistance, and chlorhexidine resistance varied in stability among species.

Area of Science:

  • Microbiology
  • Antimicrobial Resistance

Background:

  • Chlorhexidine is a widely used antiseptic.
  • Emerging bacterial resistance to disinfectants is a growing concern.
  • Understanding resistance mechanisms is crucial for infection control.

Purpose of the Study:

  • To investigate the development of in vitro resistance to chlorhexidine in specific bacterial species.
  • To determine if cross-resistance to other disinfectants occurs.
  • To assess the stability of acquired chlorhexidine resistance.

Main Methods:

  • Exposure of Proteus, Serratia, and Pseudomonas species to sub-inhibitory concentrations of chlorhexidine.
  • Serial in vitro transfers (5-8 passages) to induce resistance.
  • Testing for cross-resistance to benzalkonium chloride and povidone-iodine.
  • Evaluating resistance stability through drug-free transfers.

Main Results:

  • Proteus, Serratia, and Pseudomonas species acquired resistance to chlorhexidine after 5-8 in vitro transfers.
  • Cross-resistance to benzalkonium chloride was observed in resistant strains.
  • No resistance was developed against povidone-iodine.
  • Chlorhexidine resistance was stable in Serratia and Pseudomonas but transitory in Proteus.

Conclusions:

  • Repeated exposure to chlorhexidine can induce resistance in clinically relevant bacteria.
  • Cross-resistance to other quaternary ammonium compounds like benzalkonium chloride is a potential issue.
  • Povidone-iodine appears to be a more robust antiseptic against the tested strains.
  • The stability of chlorhexidine resistance varies, necessitating further investigation into underlying mechanisms.

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