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Updated: Jun 16, 2026

In Vitro and In Vivo Approaches to Determine Intestinal Epithelial Cell Permeability
Published on: October 19, 2018
Short-term tissue permeability actions of dextran sulfate sodium studied in a colon organ culture system
Elisabeth M Danielsen1, Alba De Haro Hernando1, Mohammad Yassin1
1Department of Cellular and Molecular Medicine, the Panum Institute, Faculty of Health Sciences, University of Copenhagen , Copenhagen, Denmark.
Abstract:
Dextran sulfate sodium (DSS)-induced colitis is the most commonly used animal model for inflammatory bowel diseases. However, the precise molecular action of DSS, in particular its initial effect on the epithelial tissue permeability, is still poorly understood. In the present work, organ culture of mouse - and pig colon explants were performed for 1-2 h in the presence/absence of 2% DSS together with polar- and lipophilic fluorescent probes. Probe permeability was subsequently assessed by fluorescence microscopy. DSS rapidly increased paracellular permeability of 70-kDa dextran without otherwise affecting the overall epithelial integrity. FITC-conjugated DSS likewise permeated the epithelial barrier and strongly accumulated in nuclei of cells scattered in the lamina propria. By immunolabeling, plasma cells, T cells, macrophages, mast cells, and fibroblasts were identified as possible targets for DSS, indicating that accumulation of the polyanion in nuclei was not confined to a particular type of cell in the lamina propria. In contrast, colonocytes were rarely targeted by DSS, but as visualized by transmission electron microscopy, it induced the formation of vacuole-like structures in the intercellular space between adjacent epithelial cells. Nuclei of various cell types in the lamina propria, including both cells of the innate and adaptive immune system, are novel targets for a rapid action of DSS, and from previous in vitro studies, polyanions like DSS are known to disrupt nucleosomes by binding to the histones. We therefore propose that nuclear targeting is one way whereby DSS exerts its inflammatory action as a colitogen in animal models of inflammatory bowel diseases.
Insights
Dextran sulfate sodium (DSS) rapidly increases intestinal permeability in animal models of inflammatory bowel disease. This polyanion targets cell nuclei in the lamina propria, suggesting a novel mechanism for its colitogenic action.
Area of Science:
- Gastroenterology
- Immunology
- Cell Biology
Background:
- Dextran sulfate sodium (DSS)-induced colitis is a key animal model for inflammatory bowel diseases.
- The precise molecular mechanisms of DSS, especially its initial impact on epithelial permeability, remain unclear.
Purpose of the Study:
- To investigate the early molecular actions of DSS on colonic epithelial permeability and cellular targets.
- To elucidate the role of DSS in the pathogenesis of DSS-induced colitis.
Main Methods:
- Organ culture of mouse and pig colon explants.
- Incubation with DSS and fluorescent probes (polar and lipophilic).
- Assessment of probe permeability via fluorescence microscopy and transmission electron microscopy; immunolabeling for cell identification.
Main Results:
- DSS significantly increased paracellular permeability to 70-kDa dextran without compromising overall epithelial integrity.
- FITC-conjugated DSS permeated the epithelial barrier and accumulated in nuclei of various lamina propria cells (plasma cells, T cells, macrophages, mast cells, fibroblasts).
- DSS induced vacuole-like structures in intercellular spaces of epithelial cells but rarely targeted colonocytes directly.
Conclusions:
- Nuclear accumulation of DSS in diverse lamina propria cell types represents a novel, rapid action of this colitogen.
- DSS may exert its inflammatory effects by targeting cell nuclei, potentially by disrupting nucleosomes.
- Understanding these mechanisms is crucial for refining animal models of inflammatory bowel diseases.

