Drug Repurposing to Fight Colistin and Carbapenem-Resistant Bacteria

Lucie Peyclit1,2, Sophie Alexandra Baron1,2, Jean-Marc Rolain1,2

  • 1Faculté de Médecine et de Pharmacie, IRD, APHM, MEPHI, Aix Marseille Univ, Marseille, France.

Insights

Drug repurposing offers a promising strategy to combat multi-drug resistant (MDR) bacteria, especially carbapenem and colistin-resistant strains. This approach explores existing non-antibiotic compounds as novel treatments for challenging infections.

Area of Science:

  • Microbiology
  • Pharmacology
  • Drug Discovery

Background:

  • Rising antibiotic resistance poses a global health threat.
  • Classical antibiotics are failing, and new drug development is declining.
  • Carbapenem and colistin resistance in bacteria present significant clinical challenges.

Purpose of the Study:

  • To review the rationale and methods behind drug repurposing for infectious diseases.
  • To explore current knowledge on drug repurposing for carbapenem and colistin-resistant bacteria.
  • To discuss the potential of drug repurposing in combination therapies.

Main Methods:

  • Literature review of drug repurposing strategies.
  • Summary of definitions, advantages, and disadvantages of drug repurposing.
  • Description of phenotypic, computational, and serendipitous methods.
  • Analysis of studies on repurposed compounds against Gram-negative bacteria.

Main Results:

  • Drug repurposing is an encouraged strategy for treating multi-drug resistant (MDR) bacteria.
  • Various repurposed compounds have shown efficacy against Gram-negative bacteria.
  • Combination therapies involving repurposed drugs can enhance treatment success.

Conclusions:

  • Drug repurposing provides a viable alternative to traditional antibiotic development.
  • Challenges remain regarding pharmaceutical industry interest due to profitability concerns.
  • Clinical adoption requires careful consideration of repurposed agents for MDR infections.

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