Clinical breakpoint meropenem concentration modulate outer membrane vesicle production in enterotoxigenic Bacteroides

Saniya Kozhakhmetova1, Ayazhan Bekbayeva2,3, Elena Zholdybayeva1

  • 1National Scientific Shared Laboratory of Biotechnology, National Center for Biotechnology, Z05K8A1, Astana, Kazakhstan.

Archives of Microbiology
|November 12, 2025
PubMed

Insights

Breakpoint meropenem concentrations did not improve outcomes in enterotoxigenic Bacteroides fragilis infections. Instead, it induced stress, altered outer membrane vesicle (OMV) size, and increased inflammatory markers, suggesting a pathway for antibiotic resistance.

Area of Science:

  • Microbiology
  • Infectious Diseases
  • Pharmacology

Background:

  • Clinical breakpoint antibiotic concentrations can affect bacterial physiology and virulence.
  • The impact of these concentrations on outer membrane vesicle (OMV) production in anaerobic pathogens is not well understood.
  • Enterotoxigenic Bacteroides fragilis (ETBF) is an important anaerobic pathogen.

Purpose of the Study:

  • To investigate the effects of breakpoint meropenem concentrations on ETBF infection in a rat model.
  • To assess changes in bacterial ultrastructure, inflammation, and OMV production.

Main Methods:

  • A rat intra-abdominal infection model was used with ETBF and meropenem at a clinical breakpoint concentration (1.0 mg/L).
  • Transmission electron microscopy, morphometric vesicle analysis, hematological studies, and qRT-PCR for cytokine expression were performed.
  • Groups included negative control, B. fragilis infection, and B. fragilis infection plus meropenem.

Main Results:

  • Breakpoint meropenem did not improve infection outcomes or reduce bacterial load.
  • Systemic inflammation and hematocrit reduction were observed in infected groups.
  • Meropenem treatment led to increased expression of IL-1α, IL-1β, and TNF-α by day 16.
  • OMV size distribution shifted significantly towards smaller vesicles (<90 nm).

Conclusions:

  • Breakpoint meropenem concentrations induce a sustained stress response in ETBF.
  • This stress response alters the OMV profile, with a shift towards smaller vesicles.
  • The findings suggest a potential mechanism by which sub-lethal antibiotic concentrations may facilitate antibiotic resistance development.

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