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Evaluation of multidrug efflux pump inhibitors by a new method using microfluidic channels. | LitMetric

AI Article Synopsis

  • Fluorescein-di-β-D-galactopyranoside (FDG) is metabolized by β-galactosidase in E. coli to yield fluorescein, a fluorescent dye, and both compounds act as substrates for efflux pumps.
  • A microfluidic channel device was developed to assess the efflux-inhibitory effects of specific inhibitors (D13-9001 and PAβN) on E. coli strains with various pump deletions.
  • Results showed that D13-9001 specifically inhibited the MexAB-OprM pump, while PAβN enhanced fluorescence across all strains, indicating its role as a substrate and membrane permeabilizer affecting multiple pumps.

Article Abstract

Fluorescein-di-β-D-galactopyranoside (FDG), a fluorogenic compound, is hydrolyzed by β-galactosidase in the cytoplasm of Escherichia coli to produce a fluorescent dye, fluorescein. We found that both FDG and fluorescein were substrates of efflux pumps, and have developed a new method to evaluate efflux-inhibitory activities in E. coli using FDG and a microfluidic channel device. We used E. coli MG1655 wild-type, ΔacrB (ΔB), ΔtolC (ΔC) and ΔacrBΔtolC (ΔBC) harboring plasmids carrying the mexAB-oprM (pABM) or mexXY-oprM (pXYM) genes of Pseudomonas aeruginosa. Two inhibitors, MexB-specific pyridopyrimidine (D13-9001) and non-specific Phe-Arg-β-naphthylamide (PAβN) were evaluated. The effects of inhibitors on pumps were observed using the microfluidic channel device under a fluorescence microscope. AcrAB-TolC and analogous pumps effectively prevented FDG influx in wild-type cells, resulting in no fluorescence. In contrast, ΔB or ΔC easily imported and hydrolyzed FDG to fluorescein, which was exported by residual pumps in ΔB. Consequently, fluorescent medium in ΔB and fluorescent cells of ΔC and ΔBC were observed in the microfluidic channels. D13-9001 substantially increased fluorescent cell number in ΔBC/pABM but not in ΔBC/pXYM. PAβN increased medium fluorescence in all strains, especially in the pump deletion mutants, and caused fluorescein accumulation to disappear in ΔC. The checkerboard method revealed that D13-9001 acts synergistically with aztreonam, ciprofloxacin, and erythromycin only against the MexAB-OprM producer (ΔBC/pABM), and PAβN acts synergistically, especially with erythromycin, in all strains including the pump deletion mutants. The results obtained from PAβN were similar to the results from membrane permeabilizer, polymyxin B or polymyxin B nonapeptide by concentration. The new method clarified that D13-9001 specifically inhibited MexAB-OprM in contrast to PAβN, which appeared to be a substrate of the pumps and permeabilized the membranes in E. coli.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3075257PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0018547PLOS

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