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Published on: October 27, 2020
Reduced surface expression of epithelial E-cadherin evoked by interferon-gamma is Fyn kinase-dependent
David Smyth1, Gabriella Leung, Maria Fernando
1Gastrointestinal Research Group, Department of Physiology & Pharmacology, Calvin, Phoebe and Joan Snyder Institute for Chronic Diseases, University of Calgary, Calgary, Alberta, Canada.
Insights
Interferon gamma (IFNγ) disrupts gut epithelial cell adhesion by promoting E-cadherin internalization and degradation. This process is mediated by Fyn kinase and Hakai, leading to a weaker epithelial barrier.
Area of Science:
- Gastroenterology
- Cell Biology
- Immunology
Background:
- Interferon gamma (IFNγ) is a pro-inflammatory cytokine impacting gut epithelial barrier function.
- E-cadherin is crucial for normal epithelial tissue integrity, mediating cell-cell adhesion via adherens junctions.
Purpose of the Study:
- To investigate the mechanism by which IFNγ regulates E-cadherin in T84 human colonic epithelial cells.
- To elucidate the role of Src kinase, specifically Fyn, and Hakai in IFNγ-induced E-cadherin disruption.
Main Methods:
- Immunofluorescence microscopy to assess E-cadherin internalization.
- Immunoprecipitation to analyze E-cadherin localization and binding partners.
- Western blotting and siRNA to determine the roles of Src kinase, Fyn, and Hakai.
- Assessment of T84 cell monolayer fragility under physical stress.
Main Results:
- IFNγ treatment increased E-cadherin internalization, which was reversed by Src kinase inhibition.
- IFNγ induced E-cadherin, p120-catenin, and beta-catenin translocation to the cytosol in a Src-kinase-dependent manner.
- E-cadherin and p120-catenin phosphorylation and subsequent degradation were mediated by Fyn kinase and Hakai.
- Disruption of E-cadherin by IFNγ led to increased T84 cell monolayer fragility and detachment.
Conclusions:
- IFNγ disrupts epithelial cell adhesion through a Fyn kinase and Hakai-dependent mechanism involving E-cadherin internalization and degradation.
- This pathway represents a novel mechanism contributing to impaired epithelial barrier function in inflammatory conditions.
- Targeting Fyn kinase or Hakai may offer therapeutic strategies to preserve epithelial barrier integrity.
Abstract:
Interferon gamma (IFNγ) is an important regulatory cytokine that can exert a pro-inflammatory effect in the gut, where it has been shown to increase epithelial permeability via disruption of the tight junctions. Here we investigated the potential for IFNγ to regulate the adherens junction protein E-cadherin, an important mediator of normal epithelial tissue function, using the model T84 human colonic epithelial cell line. IFNγ (10 ng/ml) stimulated increased internalization of E-cadherin as assessed by immunofluorescence microscopy; internalization was reversed when cells were treated with PP1 (125 nM), a Src kinase-selective inhibitor. Immunoprecipitation studies demonstrated loss of E-cadherin from membrane fractions following IFNγ treatment and a corresponding increase in cytosolic E-cadherin and its binding partners, p120-catenin and beta-catenin: effects that were Src-kinase dependent. E-cadherin and p120-catenin phosphorylation was increased by IFNγ treatment and siRNA studies showed this was dependent upon the Src-kinase isoform Fyn. E-cadherin ubiquitinylation and subsequent proteasomal degradation stimulated by IFNγ was found to be dependent upon Fyn and the E-cadherin-selective ubiquitin ligase, Hakai. Use of Fyn and Hakai siRNA inhibited the internalization of E-cadherin as shown by immunoblotting and confocal fluorescence microscopy. Finally, IFNγ treatment resulted in a more fragile T84 cell monolayer with increased cell detachment in response to physical stress, which was prevented by PP1 and siRNA targeting Fyn or Hakai. Collectively, these results demonstrate a Fyn kinase-dependent mechanism through which IFNγ regulates E-cadherin stability and suggest a novel mechanism of disruption of epithelial cell contact, which could contribute to perturbed epithelial barrier function.
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