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Updated: Feb 25, 2026

Microfluidic Co-culture of Epithelial Cells and Bacteria for Investigating Soluble Signal-mediated Interactions
Published on: April 20, 2010
Media from macrophages co-incubated with Enterococcus faecalis induces epithelial cell monolayer reassembly and
Natalia Belogortseva1, Monika Krezalek1, Kristina Guyton1
1Department of Surgery, University of Chicago, Chicago, Illinois, United States of America.
Abstract:
Signal exchange between intestinal epithelial cells, microbes and local immune cells is an important mechanism of intestinal homeostasis. Given that intestinal macrophages are in close proximity to both the intestinal epithelium and the microbiota, their pathologic interactions may result in epithelial damage. The present study demonstrates that co-incubation of murine macrophages with E. faecalis strains producing gelatinase (GelE) and serine protease (SprE) leads to resultant condition media (CM) capable of inducing reassembly of primary colonic epithelial cell monolayers. Following the conditioned media (CM) exposure, some epithelial cells are shed whereas adherent cells are observed to undergo dissolution of cell-cell junctions and morphologic transformation with actin cytoskeleton reorganization resulting in flattened and elongated shapes. These cells exhibit marked filamentous filopodia and lamellipodia formation. Cellular reorganization is not observed when epithelial monolayers are exposed to: CM from macrophages co-incubated with E. faecalis GelE/SprE-deficient mutants, CM from macrophages alone, or E. faecalis (GelE/SprE) alone. Flow cytometry analysis reveals increased expression of CD24 and CD44 in cells treated with macrophage/E. faecalis CM. This finding in combination with the appearance colony formation in matrigel demonstrate that the cells treated with macrophage/E. faecalis CM contain a higher proportion progenitor cells compared to untreated control. Taken together, these findings provide evidence for a triangulated molecular dialogue between E. faecalis, macrophages and colonic epithelial cells, which may have important implications for conditions in the gut that involve inflammation, injury or tumorigenesis.
Insights
Bacterial enzymes from Enterococcus faecalis (E. faecalis) interacting with macrophages can alter intestinal epithelial cells. This interaction prompts cell shape changes and increases progenitor cell populations, impacting gut health.
Area of Science:
- Microbiology
- Immunology
- Cell Biology
Background:
- Intestinal homeostasis relies on communication between epithelial cells, microbes, and immune cells.
- Pathologic interactions involving intestinal macrophages and microbiota can damage the intestinal epithelium.
Purpose of the Study:
- To investigate the effects of macrophage-E. faecalis interactions on colonic epithelial cells.
- To determine the role of E. faecalis gelatinase (GelE) and serine protease (SprE) in these interactions.
Main Methods:
- Co-incubation of murine macrophages with E. faecalis strains.
- Exposure of primary colonic epithelial cell monolayers to conditioned media (CM).
- Analysis of cell morphology, cell-cell junctions, cytoskeleton, gene expression (CD24, CD44), and progenitor cell markers.
Main Results:
- CM from macrophages co-incubated with wild-type E. faecalis induced epithelial cell shedding, junction dissolution, and actin reorganization.
- These effects were not observed with CM from mutant E. faecalis strains or macrophages/bacteria alone.
- Treated cells showed increased CD24 and CD44 expression and enhanced progenitor cell characteristics.
Conclusions:
- A molecular dialogue exists between E. faecalis, macrophages, and colonic epithelial cells.
- E. faecalis GelE and SprE are key mediators of epithelial cell changes.
- These findings have implications for gut inflammation, injury, and tumorigenesis.
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