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Determination of Tolerable Fatty Acids and Cholera Toxin Concentrations Using Human Intestinal Epithelial Cells and BALB/c Mouse Macrophages
Published on: May 30, 2013
Cholera intoxication of human enteroids reveals interplay between decoy and functional glycoconjugate ligands
Akshi Singla1,2, Andrew Boucher1, Kerri-Lee Wallom3
1Department of Microbiology and Immunology, Institute of Biomedicine, University of Gothenburg, Medicinaregatan 1G, 41390 Gothenburg, Sweden.
Abstract:
Prior research on cholera toxin (CT) binding and intoxication has relied on human colonic cancer derived epithelial cells. While these transformed cell lines have been beneficial, they neither derive from small intestine where intoxication occurs, nor represent the diversity of small intestinal epithelial cells (SI-ECs) and variation in glycoconjugate expression among individuals. Here, we used human enteroids, derived from jejunal biopsies of multipledonors to study CT binding and intoxication of human non-transformed SI-ECs. We modulated surface expression of glycosphingolipids, glycoproteins and specific glycans to distinguish the role of each glycan/glycoconjugate. Cholera-toxin-subunit-B (CTB) mutants were generated to decipher the preference of each glycoconjugate to different binding sites and the correlation between CT binding and intoxication. Human enteroids contain trace amounts of GM1, but other glycosphingolipids may be contributing to CT intoxication. We discovered that inhibition of either fucosylation or O-glycosylation sensitize enteroids to CT-intoxication. This can either be a consequence of the removal of fucosylated "decoy-like-ligands" binding to CTB's non-canonical site and/or increase in the availability of Gal/GalNAc-terminating glycoconjugates binding to the canonical site. Furthermore, simultaneous inhibition of fucosylation and O-glycosylation increased the availability of additional Gal/GalNAc-terminating glycoconjugates but counteracted the sensitization in CT intoxication caused by inhibiting O-glycosylation because of reduction in fucose. This implies a dual role of fucose as a functional glycan and a decoy, the interplay of which influences CT binding and intoxication. Finally, while the results were similar for enteroids from different donors, they were not identical, pointing to a role for human genetic variation in determining sensitivity to CT.
Insights
Cholera toxin (CT) intoxication in the small intestine was studied using human enteroids. Inhibiting specific sugar modifications, like fucosylation, altered CT binding and intoxication sensitivity, highlighting the role of glycans and host genetics.
Area of Science:
- Microbiology
- Glycobiology
- Gastroenterology
Background:
- Previous cholera toxin (CT) research used colon cancer cells, not small intestinal cells where intoxication occurs.
- Small intestinal epithelial cells (SI-ECs) and their glycoconjugate expression vary significantly among individuals.
Purpose of the Study:
- Investigate CT binding and intoxication in non-transformed human SI-ECs using enteroids.
- Determine the role of specific glycans and glycoconjugates in CT interaction.
- Analyze CTB mutant binding preferences and their correlation with intoxication.
Main Methods:
- Utilized human enteroids derived from jejunal biopsies of multiple donors.
- Modulated surface glycosphingolipids, glycoproteins, and glycans.
- Generated cholera-toxin-subunit-B (CTB) mutants to assess binding site preferences.
Main Results:
- Human enteroids showed minimal GM1 but potential contribution from other glycosphingolipids to CT intoxication.
- Inhibiting fucosylation or O-glycosylation sensitized enteroids to CT intoxication.
- Fucose plays a dual role as a functional glycan and a decoy, influencing CT binding and intoxication.
Conclusions:
- Glycan modifications, particularly fucosylation and O-glycosylation, significantly impact CT binding and intoxication in human SI-ECs.
- Host genetic variation influences individual sensitivity to CT.
- Enteroids provide a more relevant model for studying CT pathogenesis in the human small intestine.
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