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Updated: Mar 24, 2026

Author Spotlight: Advancing Antibiotic Resistance Research Using an Efflux-Deficient Bacterial Strain and a Single-Copy Gene Expression System
Published on: January 5, 2024
Current Advances in Developing Inhibitors of Bacterial Multidrug Efflux Pumps
Hannah Y Mahmood, Shirin Jamshidi, J Mark Sutton
1Institute of Pharmaceutical Science, King's College London, Britannia House, London SE1 1DB, UK. k.miraz.rahman@kcl.ac.uk.
Abstract:
Antimicrobial resistance represents a significant challenge to future healthcare provision. An acronym ESKAPEE has been derived from the names of the organisms recognised as the major threats although there are a number of other organisms, notably Neisseria gonorrhoeae, that have become equally challenging to treat in the clinic. These pathogens are characterised by the ability to rapidly develop and/or acquire resistance mechanisms in response to exposure to different antimicrobial agents. A key part of the armoury of these pathogens is a series of efflux pumps, which effectively exclude or reduce the intracellular concentration of a large number of antibiotics, making the pathogens significantly more resistant. These efflux pumps are the topic of considerable interest, both from the perspective of basic understanding of efflux pump function, and its role in drug resistance but also as targets for the development of novel adjunct therapies. The necessity to overcome antimicrobial resistance has encouraged investigations into the characterisation of resistance-modifying efflux pump inhibitors to block the mechanisms of drug extrusion, thereby restoring antibacterial susceptibility and returning existing antibiotics into the clinic. A greater understanding of drug recognition and transport by multidrug efflux pumps is needed to develop clinically useful inhibitors, given the breadth of molecules that can be effluxed by these systems. This review discusses different bacterial EPIs originating from both natural source and chemical synthesis and examines the challenges to designing successful EPIs that can be useful against multidrug resistant bacteria.
Insights
Antimicrobial resistance is a major threat, with efflux pumps enabling bacteria to resist antibiotics. Developing efflux pump inhibitors (EPIs) is crucial to restore antibiotic effectiveness against resistant pathogens.
Area of Science:
- Microbiology
- Pharmacology
- Drug Discovery
Background:
- Antimicrobial resistance (AMR) poses a significant threat to global healthcare.
- Pathogens like those in the ESKAPEE group and Neisseria gonorrhoeae rapidly develop resistance.
- Bacterial efflux pumps are key mechanisms that reduce intracellular antibiotic concentrations, conferring resistance.
Purpose of the Study:
- To review bacterial efflux pump inhibitors (EPIs) as a strategy to combat antimicrobial resistance.
- To explore the role of efflux pumps in multidrug resistance.
- To discuss challenges in developing effective EPIs for clinical use.
Main Methods:
- Literature review of bacterial efflux pump inhibitors (EPIs).
- Analysis of natural and synthetic EPIs.
- Examination of efflux pump function and drug transport mechanisms.
Main Results:
- Efflux pumps are critical in the resistance mechanisms of many challenging pathogens.
- EPIs offer a potential strategy to restore the efficacy of existing antibiotics.
- Understanding drug recognition by efflux pumps is vital for inhibitor design.
Conclusions:
- Targeting bacterial efflux pumps with inhibitors is a promising approach to overcome antimicrobial resistance.
- Further research into EPIs from natural and synthetic sources is necessary.
- Overcoming challenges in EPI design is essential for clinical application against multidrug-resistant bacteria.
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