Citrobacter rodentium Infection Induces Persistent Molecular Changes and Interferon Gamma-Dependent Major

Caroline Mullineaux-Sanders1, Zuzanna Kozik2, Julia Sanchez-Garrido1

  • 1Centre for Molecular Microbiology and Infection, Department of Life Sciences, Imperial College, London, United Kingdom.

Mbio
|February 1, 2022
PubMed

Insights

Gut epithelial cells show lasting inflammation and immune signaling weeks after Citrobacter rodentium infection clears. Despite tissue recovery, interferon gamma (IFN-γ) and MHCII expression persist, suggesting a prolonged "high alert" state.

Area of Science:

  • Microbiology
  • Immunology
  • Gastroenterology

Background:

  • Studies on mucosal infections often overlook post-infection tissue recovery.
  • Little is known about the molecular mechanisms driving long-term gut health after pathogen clearance.

Purpose of the Study:

  • To investigate the temporal proteomic changes in colonic intestinal epithelial cells (cIECs) after Citrobacter rodentium infection.
  • To understand the long-term molecular consequences and recovery processes in the gut mucosa.

Main Methods:

  • Deep quantitative proteomic analysis of mouse cIECs at multiple time points post-Citrobacter rodentium infection (10, 13-20, and 48 days postinfection).
  • Comparative analysis between wild-type and interferon gamma knockout (Ifnγ-/-) mice.

Main Results:

  • Persistent upregulation of inflammatory and nutritional immunity responses during infection clearance.
  • While tissue morphology recovered, specific cell populations (ChgB+) remained reduced long-term.
  • Increased antigen processing and presentation proteins, including MHCII on cIECs, driven by IFN-γ, were observed 4 weeks post-infection.
  • cIEC MHCII expression was not essential for protective IgG-mediated immunity against C. rodentium.

Conclusions:

  • Colonic epithelial cells exhibit a sustained IFN-γ-driven inflammatory signature and MHCII expression long after C. rodentium clearance.
  • This persistent immune activation in cIECs may not be required for adaptive immunity but could play a role in mucosal healing.
  • The findings highlight the complex and prolonged nature of mucosal tissue responses to bacterial infection.

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