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Updated: Feb 9, 2026

Infection of Zebrafish Embryos with Intracellular Bacterial Pathogens
Published on: March 15, 2012
A cell-based infection assay identifies efflux pump modulators that reduce bacterial intracellular load
Abigail L Reens1, Amy L Crooks1, Chih-Chia Su2
1Department of Molecular, Cellular, & Developmental Biology, University of Colorado Boulder, Boulder, CO, United States of America.
Abstract:
Bacterial efflux pumps transport small molecules from the cytoplasm or periplasm outside the cell. Efflux pump activity is typically increased in multi-drug resistant (MDR) pathogens; chemicals that inhibit efflux pumps may have potential for antibiotic development. Using an in-cell screen, we identified three efflux pump modulators (EPMs) from a drug diversity library. The screening platform uses macrophages infected with the human Gram-negative pathogen Salmonella enterica (Salmonella) to identify small molecules that prevent bacterial replication or survival within the host environment. A secondary screen for hit compounds that increase the accumulation of an efflux pump substrate, Hoechst 33342, identified three small molecules with activity comparable to the known efflux pump inhibitor PAβN (Phe-Arg β-naphthylamide). The three putative EPMs demonstrated significant antibacterial activity against Salmonella within primary and cell culture macrophages and within a human epithelial cell line. Unlike traditional antibiotics, the three compounds did not inhibit bacterial growth in standard microbiological media. The three compounds prevented energy-dependent efflux pump activity in Salmonella and bound the AcrB subunit of the AcrAB-TolC efflux system with KDs in the micromolar range. Moreover, the EPMs display antibacterial synergy with antimicrobial peptides, a class of host innate immune defense molecules present in body fluids and cells. The EPMs also had synergistic activity with antibiotics exported by AcrAB-TolC in broth and in macrophages and inhibited efflux pump activity in MDR Gram-negative ESKAPE clinical isolates. Thus, an in-cell screening approach identified EPMs that synergize with innate immunity to kill bacteria and have potential for development as adjuvants to antibiotics.
Insights
Researchers discovered three efflux pump modulators (EPMs) that combat multi-drug resistant (MDR) bacteria within host cells. These compounds enhance innate immunity and antibiotic effectiveness, offering new avenues for antibiotic development.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- Bacterial efflux pumps are crucial for multidrug resistance (MDR) in pathogens.
- Inhibiting efflux pumps is a promising strategy for developing new antibiotics.
Purpose of the Study:
- To identify novel efflux pump modulators (EPMs) using an in-cell screening approach.
- To evaluate the antibacterial activity and synergistic potential of identified EPMs.
Main Methods:
- An in-cell screen using macrophages infected with Salmonella enterica identified EPM candidates.
- Secondary screening assessed Hoechst 33342 accumulation to confirm efflux pump inhibition.
- Antibacterial activity, synergy with antimicrobials, and efflux pump binding were evaluated.
Main Results:
- Three EPMs were identified with activity comparable to PAβN.
- EPMs showed antibacterial effects against Salmonella within host cells but not in standard media.
- Compounds inhibited energy-dependent efflux, bound the AcrB subunit, and synergized with antimicrobial peptides and antibiotics.
- EPMs inhibited efflux in MDR Gram-negative ESKAPE pathogens.
Conclusions:
- In-cell screening successfully identified novel EPMs.
- These EPMs enhance innate immunity and antibiotic efficacy against MDR bacteria.
- EPMs represent a potential new class of adjuvants for antibiotic therapy.
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