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Updated: Sep 28, 2026

Expression, Detergent Solubilization, and Purification of a Membrane Transporter, the MexB Multidrug Resistance Protein
Published on: December 3, 2010
Characterization of a Pseudomonas aeruginosa efflux pump contributing to aminoglycoside impermeability
S Westbrock-Wadman1, D R Sherman, M J Hickey
1PathoGenesis Corporation, Seattle, Washington 98119, USA.
Abstract:
Pseudomonas aeruginosa can employ many distinct mechanisms of resistance to aminoglycoside antibiotics; however, in cystic fibrosis patients, more than 90% of aminoglycoside-resistant P. aeruginosa isolates are of the impermeability phenotype. The precise molecular mechanisms that produce aminoglycoside impermeability-type resistance are yet to be elucidated. A subtractive hybridization technique was used to reveal gene expression differences between PAO1 and isogenic, spontaneous aminoglycoside-resistant mutants of the impermeability phenotype. Among the many genes found to be up-regulated in these laboratory mutants were the amrAB genes encoding a recently discovered efflux system. The amrAB genes appear to be the same as the recently described mexXY genes; however, the resistance profile that we see in P. aeruginosa is very different from that described for Escherichia coli with mexXY. Direct evidence for AmrAB involvement in aminoglycoside resistance was provided by the deletion of amrB in the PAO1-derived laboratory mutant, which resulted in the restoration of aminoglycoside sensitivity to a level nearly identical to that of the parent strain. Furthermore, transcription of the amrAB genes was shown to be up-regulated in P. aeruginosa clinical isolates displaying the impermeability phenotype compared to a genotypically matched sensitive clinical isolate from the same patient. This suggests the possibility that AmrAB-mediated efflux is a clinically relevant mechanism of aminoglycoside resistance. Although it is unlikely that hyperexpression of AmrAB is the sole mechanism conferring the impermeability phenotype, we believe that the Amr efflux system can contribute to a complex interaction of molecular events resulting in the aminoglycoside impermeability-type resistance phenotype.
Insights
Pseudomonas aeruginosa develops aminoglycoside resistance primarily through impermeability. The study identifies the AmrAB efflux system as a key contributor to this resistance mechanism in cystic fibrosis patients, suggesting a potential therapeutic target.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Pseudomonas aeruginosa exhibits multiple aminoglycoside resistance mechanisms.
- In cystic fibrosis patients, over 90% of resistant isolates show an impermeability phenotype.
- The molecular basis of aminoglycoside impermeability resistance is not fully understood.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying aminoglycoside impermeability resistance in Pseudomonas aeruginosa.
- To identify specific genes and pathways involved in this resistance phenotype.
Main Methods:
- Subtractive hybridization was employed to compare gene expression between susceptible and resistant P. aeruginosa strains.
- Isogenic, spontaneous aminoglycoside-resistant mutants were generated.
- Gene deletion studies (e.g., deletion of amrB) were performed to confirm gene function.
- Analysis of clinical isolates from cystic fibrosis patients.
Main Results:
- The amrAB genes, encoding a novel efflux system, were significantly up-regulated in resistant mutants.
- Deletion of amrB restored aminoglycoside sensitivity in laboratory mutants.
- amrAB gene transcription was also elevated in clinical isolates with the impermeability phenotype.
- The AmrAB efflux system's resistance profile differs from MexXY in E. coli.
Conclusions:
- The AmrAB efflux system is implicated as a significant contributor to aminoglycoside impermeability resistance in P. aeruginosa.
- AmrAB-mediated efflux represents a clinically relevant mechanism of resistance.
- This efflux system likely acts in concert with other factors to establish the complete impermeability phenotype.
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