Sub-Minimum Inhibitory Concentrations of Amoxicillin Modulate Biofilm Formation and the Expression of

Desiye T Tegegne1,2, Sylwia Banaszkiewicz3, Jacek Bania3

  • 1Department of Pharmacology and Toxicology, Faculty of Veterinary Medicine, Wrocław University of Environmental and Life Sciences, ul. Norwida 31, 50-375 Wroclaw, Poland.

Insights

Sub-inhibitory amoxicillin concentrations can enhance biofilm formation in *Enterococcus faecalis*, a common cause of urinary tract infections. This suggests that maintaining effective drug levels is crucial for preventing persistent infections and treatment failure.

Area of Science:

  • Microbiology
  • Infectious Diseases
  • Antimicrobial Resistance

Background:

  • *Enterococcus faecalis* biofilms on urinary catheters contribute to persistent catheter-associated urinary tract infections (CAUTIs).
  • Sub-minimum inhibitory concentrations (sub-MICs) of antimicrobials may paradoxically promote biofilm formation.
  • Commonly used urinary tract infection antibiotics include amoxicillin, ciprofloxacin, and nitrofurantoin.

Purpose of the Study:

  • To investigate the impact of sub-MICs of amoxicillin, ciprofloxacin, and nitrofurantoin on *E. faecalis* biofilm formation.
  • To analyze the expression of key biofilm-associated genes (*asa1*, *ace*, *esp*, *gelE*, *cylA*, *efaA*, *ebpA*) following sub-MIC antimicrobial exposure.

Main Methods:

  • Two *E. faecalis* strains (ATCC 29212 and strain 54) were exposed to 1/8× and 1/4× MIC of amoxicillin, ciprofloxacin, and nitrofurantoin in artificial urine medium (AUM) and tryptone soya broth (TSB).
  • Bacterial growth was monitored, and biofilm formation was quantified using microtiter plate assays.
  • Quantitative reverse transcription PCR (RT-qPCR) was used to assess biofilm-associated gene expression under flow conditions at 24 and 48 hours.

Main Results:

  • Sub-MICs of amoxicillin significantly enhanced biofilm formation in both strains and media, particularly at 1/4× MIC.
  • Ciprofloxacin and nitrofurantoin exhibited inhibitory effects on biofilm formation.
  • Amoxicillin exposure led to strain- and time-dependent upregulation of biofilm-associated genes, with *E. faecalis* strain 54 showing a more pronounced response.

Conclusions:

  • Sub-inhibitory amoxicillin concentrations can promote *E. faecalis* biofilm formation, potentially increasing bacterial persistence.
  • Maintaining therapeutically effective antimicrobial concentrations is critical to prevent treatment failure in CAUTIs.
  • Differential gene expression patterns highlight the complex response of *E. faecalis* to sub-antimicrobial stress.

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