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Author Spotlight: Advancing Antibiotic Resistance Research Using an Efflux-Deficient Bacterial Strain and a Single-Copy Gene Expression System
Published on: January 5, 2024
EefR mutations drive sanguinarine resistance by activating cryptic multidrug efflux pumps in AcrB-Null Escherichia
Hao-Jie Shen1, Jun-Feng Wang1, Zheng-Jie Xue1
1College of Life Sciences, Zhejiang Chinese Medical University, Hangzhou, China.
Abstract:
Antimicrobial resistance is one of the greatest threats to global health. A thorough comprehension of the underlying processes through which bacteria evolve the ability to withstand diverse stressors is vital for the development of efficacious strategies to address this challenge. This study aimed to elucidate the mechanisms underlying the adaptation of an acrB-deficient strain of Escherichia coli ATCC 35218 (35218m) to sanguinarine (SAN), the main component of phytobiotic derived from Macleaya cordata. Analysis of the in vitro-selected SAN-resistant clones of strain 35218m led to the identification of a functionally uncharacterized TetR regulator, EefR. The regulator represses its own expression and that of four neighboring genes forming the eefRABCD operon, encoding components of a tripartite RND-efflux pump (EefABC) and a putative MFS-type exporter (EefD). Overexpression of these pumps reduces the susceptibility of acrB-deficient E. coli to SAN and structurally diverse antibiotics. The eefR-eefABC-eefD cluster, widely distributed across Enterobacteriaceae genomes, is also found on plasmids in several E. coli isolates, indicating a significant risk for the rapid spread of this multidrug resistance mechanism.
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