Small molecular adjuvants repurpose antibiotics towards Gram-negative bacterial infections and multispecies bacterial

Rajib Dey1, Sudip Mukherjee1, Riya Mukherjee1

  • 1Antimicrobial Research Laboratory, New Chemistry Unit, Jawaharlal Nehru Centre for Advanced Scientific Research Jakkur Bengaluru 560064 Karnataka India jayanta@jncasr.ac.in.

Chemical Science
|December 25, 2023
PubMed

Insights

Researchers developed a novel adjuvant to combat antibiotic resistance in Gram-negative bacteria. This adjuvant enhances antibiotic efficacy against challenging biofilms and infections, showing promise for treating multi-drug resistant pathogens.

Area of Science:

  • Microbiology
  • Drug Discovery
  • Biochemistry

Background:

  • Gram-negative bacteria present significant challenges due to outer membrane impermeability and efflux pumps, leading to antibiotic resistance.
  • Mixed-species biofilms exacerbate treatment difficulties, often proving refractory to conventional antibiotics.
  • Current strategies combining antibiotics with membrane-targeting adjuvants are limited by adjuvant toxicity and poor mechanistic understanding.

Purpose of the Study:

  • To design a novel, non-toxic small molecular adjuvant to overcome antibiotic resistance in Gram-negative bacteria.
  • To investigate the mechanism of action of the designed adjuvant in enhancing antibiotic efficacy.
  • To evaluate the efficacy of the adjuvant-antibiotic combination against bacterial biofilms and in vivo models.

Main Methods:

  • Rational design of a small molecular adjuvant by modulating hydrophilic/hydrophobic balance and hydrogen bonding.
  • Assessment of adjuvant-induced membrane perturbation in bacterial cells versus mammalian cells.
  • Evaluation of antibiotic efficacy enhancement, efflux pump inhibition, and biofilm disruption.
  • In vivo testing in a murine skin infection model.

Main Results:

  • The designed adjuvant selectively perturbs bacterial membranes without mammalian cell toxicity.
  • Combination therapy revitalized antibiotic efficacy by 32-512 fold against resistant strains.
  • The adjuvant effectively disrupted single-species (Acinetobacter baumannii) and multi-species biofilms (A. baumannii and MRSA).
  • Excellent in vivo efficacy (>99% reduction) was observed in a skin infection model.

Conclusions:

  • The novel adjuvant enhances antibiotic internalization and overcomes efflux-mediated resistance through moderate bacterial membrane perturbation.
  • The combination therapy demonstrates potent activity against challenging biofilms and exhibits strong in vivo efficacy.
  • This approach offers a promising strategy to combat multi-drug resistant infections with reduced resistance development potential.