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Subinhibitory Concentrations of Ciprofloxacin Enhance Antimicrobial Resistance and Pathogenicity of Enterococcus
Clara Sinel1, Margherita Cacaci2, Pierrick Meignen3
1University of Caen Normandie, EA4655 (Team Antibioresistance), Caen, France.
Abstract:
Enterococcus faecium has emerged as a major opportunistic pathogen for 2 decades with the spread of hospital-adapted multidrug-resistant clones. As members of the intestinal microbiota, they are subjected to numerous bacterial stresses, including antibiotics at subinhibitory concentrations (SICs). Since fluoroquinolones are extensively prescribed, SICs are very likely to occur in vivo, with potential effects on bacterial metabolism with subsequent modulation of opportunistic traits. The aim of this study was to evaluate globally the impact of SICs of ciprofloxacin on antimicrobial resistance and pathogenicity of E. faecium Transcriptomic analysis was performed by RNA sequencing (RNA-seq) (HiSeq 2500; Illumina) using the vanB-positive reference strain E. faecium Aus0004 in the absence or presence of ciprofloxacin SIC (0.38 mg/liter, i.e., 1/8 of the MIC). Several genetic and phenotypic tests were used for validation. In the presence of ciprofloxacin SIC, 196 genes were significantly induced, whereas 286 genes were significantly repressed, meaning that 16.8% of the E. faecium genome was altered. Among upregulated genes, EFAU004_02294 (fold change, 14.3) encoded a protein (Qnr of E. faecium [EfmQnr]) homologue of Qnr proteins involved in quinolone resistance in Gram-negative bacilli. Its implication in intrinsic and adaptive fluoroquinolone (FQ) resistance in E. faecium was experimentally ascertained. Moreover, EFAU004_02292, coding for the collagen adhesin Acm, was also induced by the SIC of ciprofloxacin (fold change, 8.2), and higher adhesion capabilities were demonstrated phenotypically. Both EfmQnr and Acm determinants may play an important role in the transition from a commensal to a pathogenic state of E. faecium that resides in the gut of patients receiving fluoroquinolone therapy.
Insights
Subinhibitory concentrations of ciprofloxacin significantly alter Enterococcus faecium gene expression, increasing antimicrobial resistance and pathogenicity. This highlights how common antibiotic treatments can inadvertently promote the virulence of this opportunistic pathogen.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Enterococcus faecium is a significant opportunistic pathogen, often exhibiting multidrug resistance.
- Intestinal bacteria like E. faecium are exposed to subinhibitory concentrations (SICs) of antibiotics in vivo.
- Fluoroquinolones are widely used, making their SICs a relevant factor in bacterial adaptation.
Purpose of the Study:
- To investigate the global impact of ciprofloxacin SICs on E. faecium's antimicrobial resistance and pathogenicity.
- To identify specific genes and pathways affected by ciprofloxacin exposure at subinhibitory levels.
Main Methods:
- Transcriptomic analysis using RNA sequencing (RNA-seq) on E. faecium Aus0004.
- Exposure to ciprofloxacin at subinhibitory concentration (0.38 mg/liter).
- Validation using genetic and phenotypic assays.
Main Results:
- Ciprofloxacin SICs induced 196 genes and repressed 286 genes, altering 16.8% of the E. faecium genome.
- Upregulation of a Qnr homolog (EfmQnr) associated with fluoroquinolone resistance.
- Induction of the collagen adhesin Acm gene, leading to increased bacterial adhesion.
Conclusions:
- Ciprofloxacin SICs can enhance fluoroquinolone resistance in E. faecium via EfmQnr.
- Increased expression of Acm contributes to heightened pathogenicity.
- These factors may facilitate the transition of E. faecium from commensal to pathogen in patients on fluoroquinolone therapy.
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