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Updated: Mar 17, 2026

In vitro Investigation of the MexAB Efflux Pump From Pseudomonas aeruginosa
Published on: February 17, 2014
Multidrug efflux pumps of Gram-positive bacteria
Bryan D Schindler1, Glenn W Kaatz2
1NSF International, Ann Arbor, MI 48105, USA.
Abstract:
Gram-positive organisms are responsible for some of the most serious of human infections. Resistance to front-line antimicrobial agents can complicate otherwise curative therapy. These organisms possess multiple drug resistance mechanisms, with drug efflux being a significant contributing factor. Efflux proteins belonging to all five transporter families are involved, and frequently can transport multiple structurally unrelated compounds resulting in a multidrug resistance (MDR) phenotype. In addition to clinically relevant antimicrobial agents, MDR efflux proteins can transport environmental biocides and disinfectants which may allow persistence in the healthcare environment and subsequent acquisition by patients or staff. Intensive research on MDR efflux proteins and the regulation of expression of their genes is ongoing, providing some insight into the mechanisms of multidrug recognition and transport. Inhibitors of many of these proteins have been identified, including drugs currently being used for other indications. Structural modifications guided by structure-activity studies have resulted in the identification of potent compounds. However, lack of broad-spectrum pump inhibition combined with potential toxicity has hampered progress. Further work is required to gain a detailed understanding of the multidrug recognition process, followed by application of this knowledge in the design of safer and more highly potent inhibitors.
Insights
Gram-positive bacteria cause severe human infections, often worsened by multidrug resistance (MDR) due to efflux pumps. Developing effective inhibitors requires understanding drug recognition and transport mechanisms.
Area of Science:
- Microbiology
- Molecular Biology
- Pharmacology
Background:
- Gram-positive bacteria are a major cause of serious human infections.
- Antimicrobial resistance, particularly multidrug resistance (MDR), complicates treatment.
- Drug efflux mechanisms significantly contribute to MDR in these pathogens.
Purpose of the Study:
- To review the role of efflux proteins in Gram-positive bacterial MDR.
- To discuss the mechanisms of multidrug recognition and transport by efflux pumps.
- To evaluate the progress and challenges in developing efflux pump inhibitors.
Main Methods:
- Literature review of studies on Gram-positive bacterial efflux pumps.
- Analysis of the involvement of different transporter families in MDR.
- Examination of identified efflux pump inhibitors and their limitations.
Main Results:
- Efflux proteins from all five transporter families contribute to MDR.
- These pumps can transport diverse compounds, including antimicrobials and disinfectants.
- Existing inhibitors show limited broad-spectrum activity and potential toxicity.
Conclusions:
- Understanding efflux pump mechanisms is crucial for combating Gram-positive bacterial infections.
- Further research is needed to develop potent and safe broad-spectrum efflux pump inhibitors.
- Targeting efflux pumps offers a promising strategy to restore antimicrobial efficacy.
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