Human Clostridium difficile infection: inhibition of NHE3 and microbiota profile

Melinda A Engevik1, Kristen A Engevik1, Mary Beth Yacyshyn2

  • 1Department of Molecular and Cellular Physiology, University of Cincinnati College of Medicine, Cincinnati, Ohio;

Insights

Clostridium difficile infection (CDI) alters the gut environment by inhibiting Na+/H+ exchanger 3 (NHE3). This leads to an environment favoring C. difficile growth, impacting hospital-acquired infections.

Area of Science:

  • Microbiology
  • Gastroenterology
  • Infectious Diseases

Background:

  • Clostridium difficile infection (CDI) causes hospital-acquired diarrhea and colitis.
  • Understanding C. difficile proliferation is key for developing new therapies.
  • Previous studies showed C. difficile toxin B inhibits Na+/H+ exchanger 3 (NHE3) in cell lines.

Purpose of the Study:

  • To investigate if C. difficile toxin inhibits NHE3 in vivo in humans.
  • To determine the effect of NHE3 inhibition on the intestinal environment and gut microbiota.
  • To establish the role of NHE3 in C. difficile pathogenesis.

Main Methods:

  • Analysis of NHE3 expression in CDI patient biopsy specimens.
  • Measurement of Na+ and pH in stool from CDI patients and healthy individuals.
  • Microbiota profiling of stool samples.
  • In vitro growth studies of C. difficile under varying Na+ and pH conditions.
  • Experiments using human intestinal organoids (HIOs) challenged with C. difficile or stool supernatants.

Main Results:

  • CDI patients exhibited decreased NHE3 expression in biopsies and elevated Na+ and alkalinity in stool.
  • CDI stool microbiota showed increased Bacteroidetes and Proteobacteria, with decreased Firmicutes.
  • C. difficile demonstrated optimal growth in vitro at elevated Na+ and alkaline pH.
  • C. difficile and CDI stool supernatant reduced NHE3 expression in HIOs.

Conclusions:

  • C. difficile actively inhibits NHE3 in vivo in humans.
  • NHE3 inhibition by C. difficile creates an intestinal environment conducive to pathogen proliferation.
  • This mechanism highlights a novel therapeutic target for managing CDI.

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