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Updated: Jun 13, 2025

In vitro Investigation of the MexAB Efflux Pump From Pseudomonas aeruginosa
Published on: February 17, 2014
Efflux pumps mediate changes to fundamental bacterial physiology via membrane potential
Emily E Whittle1, Oluwatosin Orababa1, Alexander Osgerby2
1Department of Microbes, Infection and Microbiomes, Institute of Microbiology and Infection, College of Medical and Dental Sciences, Birmingham, United Kingdom.
Inactivating bacterial efflux pumps like AcrB delays entry into stationary phase, altering metabolism and potentially increasing antibiotic effectiveness. This impacts bacterial physiology and energy production.
Area of Science:
- Microbiology
- Bacterial Physiology
- Antimicrobial Resistance
Background:
- Efflux pumps remove antibiotics from bacteria, contributing to antimicrobial resistance.
- Loss of efflux pump function is primarily observed in actively growing cells.
- Salmonella Typhimurium's envelope changes during growth, affecting antibiotic permeability.
Purpose of the Study:
- To investigate the impact of deleting the major efflux pump (AcrB) in Salmonella Typhimurium on global gene transcription.
- To understand how AcrB deletion affects bacterial growth, metabolism, and membrane potential.
- To explore the regulatory mechanisms linking efflux pumps to the transition to stationary phase.
Main Methods:
- Deletion of the AcrB efflux pump in Salmonella Typhimurium.
- Global transcriptome analysis across different growth phases.
- Measurement of membrane potential and analysis of gene expression regulators.
Main Results:
- AcrB knockout strains entered stationary phase later than wild-type.
- Increased and prolonged expression of anaerobic energy metabolism genes was observed.
- AcrB deletion led to increased membrane potential and hyperpolarization.
- A model was proposed where ArcBA senses redox state changes to regulate growth phase transition.
Conclusions:
- Efflux pump deactivation significantly alters bacterial physiology and metabolism.
- Efflux pumps play a crucial role in maintaining membrane potential and energy metabolism.
- Inhibiting efflux pumps may enhance antibiotic activity by prolonging accumulation and potentially increasing reactive species generation.
- Changes in bacterial physiology due to efflux pump inactivation may explain decreased virulence in mutants.
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