Related Experiment Video
Updated: Jun 9, 2025

Anti-virulent Disruption of Pathogenic Biofilms using Engineered Quorum-quenching Lactonases
Published on: January 1, 2016
Imidazoles and Quaternary Ammonium Compounds as Effective Therapies against (Multidrug-Resistant) Bacterial Wound
Lauren Van de Vliet1, Thijs Vackier1, Karin Thevissen2
1MiCA Lab, Centre of Microbial and Plant Genetics (CMPG), Department Microbial and Molecular Systems, KU Leuven, 3001 Leuven, Belgium.
Background/Objectives:
The rise and spread of antimicrobial resistance complicates the treatment of bacterial wound pathogens, further increasing the need for newer, effective therapies. Azoles such as miconazole have shown promise as antibacterial compounds; however, they are currently only used as antifungals. Previous research has shown that combining azoles with quaternary ammonium compounds yields synergistic activity against fungal pathogens, but the effect on bacterial pathogens has not been studied yet.
Methods:
In this study, the focus was on finding active synergistic combinations of imidazoles and quaternary ammonium compounds against (multidrug-resistant) bacterial pathogens through checkerboard assays. Experimental evolution in liquid culture was used to evaluate the possible emergence of resistance against the most active synergistic combination.
Results:
Several promising synergistic combinations were identified against an array of Gram-positive pathogens: miconazole/domiphen bromide, ketoconazole/domiphen bromide, clotrimazole/domiphen bromide, fluconazole/domiphen bromide and miconazole/benzalkonium chloride. Especially, miconazole with domiphen bromide exhibits potential, as it has activity at a low concentration against a broad range of pathogens and shows an absence of strong resistance development over 11 cycles of evolution.
Conclusions:
This study provides valuable insight into the possible combinations of imidazoles and quaternary ammonium compounds that could be repurposed for (topical) wound treatment. Miconazole with domiphen bromide shows the highest application potential as a possible future wound therapy. However, further research is needed into the mode of action of these compounds and their efficacy and toxicity in vivo.
Insights
This study explored combining azole antifungals with quaternary ammonium compounds to treat bacterial wound infections. Miconazole and domiphen bromide showed promising synergistic activity against pathogens with low resistance development.
Area of Science:
- Antimicrobial resistance
- Drug repurposing
- Wound infection treatment
Background:
- Antimicrobial resistance (AMR) complicates bacterial wound infection treatment.
- Azoles, like miconazole, show potential antibacterial properties but are used as antifungals.
- Synergistic effects of azoles and quaternary ammonium compounds (QACs) are known for fungi, but not bacteria.
Purpose of the Study:
- To identify synergistic combinations of imidazoles and QACs against bacterial pathogens.
- To evaluate resistance development against promising synergistic combinations.
Main Methods:
- Checkerboard assays were used to screen imidazole/QAC combinations against bacterial pathogens.
- Experimental evolution in liquid culture assessed resistance emergence.
Main Results:
- Several synergistic combinations were identified against Gram-positive pathogens, including miconazole/domiphen bromide and miconazole/benzalkonium chloride.
- Miconazole/domiphen bromide demonstrated broad-spectrum activity at low concentrations.
- This combination showed minimal resistance development over 11 experimental evolution cycles.
Conclusions:
- Imidazole and QAC combinations show potential for repurposing in topical wound treatment.
- Miconazole/domiphen bromide is a promising candidate for future wound therapies.
- Further research on mechanism of action, efficacy, and in vivo toxicity is warranted.
More Related Videos
Related Concept Videos
Antimicrobial Effectiveness
Gene Regulation in Microbial Communities: Quorum Sensing
Hand hygiene
Hand washing...
Combined Effects of Drugs: Synergism
Such synergistic combinations...
Chemical Agents for Microbial Control
Surface Membrane Barriers
The outer layer of the skin, the epidermis, is a robust barrier comprising layers of closely packed keratinized cells. This dense arrangement prevents microbes from penetrating the body. The periodic shedding of epidermal cells...

