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.

Tissue Barriers
|February 22, 2020
PubMed

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.