Related Experiment Video
Updated: Jul 7, 2025

Biomimetic Materials to Characterize Bacteria-host Interactions
Published on: November 16, 2015
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.
Abstract:
Gram-negative bacterial infections pose a significant challenge due to two major resistance elements, including the impermeability of the outer membrane and the overexpression of efflux pumps, which contribute to antibiotic resistance. Additionally, the coexistence of multispecies superbugs in mixed species biofilms further complicates treatment, as these infections are refractory to most antibiotics. To address this issue, combining obsolete antibiotics with non-antibiotic adjuvants that target bacterial membranes has shown promise in combating antibacterial resistance. However, the clinical translation of this cocktail therapy has been hindered by the toxicity associated with these membrane active adjuvants, mainly due to a limited understanding of their structure and mechanism of action. Towards this goal, herein, we have designed a small molecular adjuvant by tuning different structural parameters, such as the balance between hydrophilic and hydrophobic groups, spatial positioning of hydrophobicity and hydrogen bonding interactions, causing moderate membrane perturbation in bacterial cells without any toxicity to mammalian cells. Moderate membrane perturbation not only enhances the internalization of antibiotics, but also increases the intracellular concentration of drugs by hampering the efflux machinery. This revitalises the efficacy of various classes of antibiotics by 32-512 fold, without inducing toxicity. The leading combination not only exhibits potent bactericidal activity against A. baumannii biofilms but also effectively disrupts mature multispecies biofilms composed of A. baumannii and methicillin-resistant Staphylococcus aureus (MRSA), which is typically resistant to most antibiotics. Importantly, the combination therapy demonstrates good biocompatibility and excellent in vivo antibacterial efficacy (>99% reduction) in a skin infection model of A. baumannii. Interestingly, A. baumannii shows reduced susceptibility to develop resistance against the leading combination, underscoring its potential for treating multi-drug resistant infections.
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.
Related Concept Videos
Combined Effects of Drugs: Synergism
Such synergistic combinations...
Antibiotic Selection

