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The Citrobacter rodentium Mouse Model: Studying Pathogen and Host Contributions to Infectious Colitis
Published on: February 19, 2013
Dynamic changes in mucus thickness and ion secretion during Citrobacter rodentium infection and clearance
Jenny K Gustafsson1, Nazanin Navabi1, Ana M Rodriguez-Piñeiro1
1Department of Medical Biochemistry and Cell Biology, Sahlgrenska Academy, University of Gothenburg, Gothenburg, Sweden.
Abstract:
Citrobacter rodentium is an attaching and effacing pathogen used as a murine model for enteropathogenic Escherichia coli. The mucus layers are a complex matrix of molecules, and mucus swelling, hydration and permeability are affected by many factors, including ion composition. Here, we used the C. rodentium model to investigate mucus dynamics during infection. By measuring the mucus layer thickness in tissue explants during infection, we demonstrated that the thickness changes dynamically during the course of infection and that its thickest stage coincides with the start of a decrease of bacterial density at day 14 after infection. Although quantitative PCR analysis demonstrated that mucin mRNA increases during early infection, the increased mucus layer thickness late in infection was not explained by increased mRNA levels. Proteomic analysis of mucus did not demonstrate the appearance of additional mucins, but revealed an increased number of proteins involved in defense responses. Ussing chamber-based electrical measurements demonstrated that ion secretion was dynamically altered during the infection phases. Furthermore, the bicarbonate ion channel Bestrophin-2 mRNA nominally increased, whereas the Cftr mRNA decreased during the late infection clearance phase. Microscopy of Muc2 immunostained tissues suggested that the inner striated mucus layer present in the healthy colon was scarce during the time point of most severe infection (10 days post infection), but then expanded, albeit with a less structured appearance, during the expulsion phase. Together with previously published literature, the data implies a model for clearance where a change in secretion allows reformation of the mucus layer, displacing the pathogen to the outer mucus layer, where it is then outcompeted by the returning commensal flora. In conclusion, mucus and ion secretion are dynamically altered during the C. rodentium infection cycle.
Insights
Citrobacter rodentium infection dynamically alters gut mucus thickness and ion secretion. Mucus layer expansion and altered ion transport aid pathogen clearance by day 14.
Area of Science:
- Gastroenterology
- Microbiology
- Immunology
Background:
- Citrobacter rodentium serves as a murine model for enteropathogenic E. coli.
- Gut mucus layers are complex matrices influenced by ion composition.
- Understanding mucus dynamics during infection is crucial for host defense.
Purpose of the Study:
- To investigate mucus dynamics and ion secretion during C. rodentium infection in a murine model.
- To correlate changes in mucus layer thickness and composition with bacterial load.
- To elucidate the mechanisms of pathogen clearance related to mucus and ion transport.
Main Methods:
- Measurement of mucus layer thickness in tissue explants.
- Quantitative PCR for mucin and ion channel mRNA expression.
- Proteomic analysis of mucus.
- Ussing chamber-based electrical measurements for ion secretion.
- Microscopy of Muc2 immunostained tissues.
Main Results:
- Mucus layer thickness dynamically changed during infection, peaking at day 14, coinciding with decreased bacterial density.
- Increased mucin mRNA early in infection did not explain late-stage mucus thickening.
- Proteomics revealed increased defense proteins in mucus, not additional mucins.
- Ion secretion was altered, with Bestrophin-2 mRNA increasing and Cftr mRNA decreasing during clearance.
- The inner mucus layer structure changed, becoming scarce during severe infection and expanding during clearance.
Conclusions:
- Mucus and ion secretion are dynamically regulated during C. rodentium infection.
- Altered ion secretion may facilitate mucus layer reformation, aiding pathogen displacement and clearance.
- These findings propose a model for infection clearance involving mucus dynamics and host defense mechanisms.

