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Enoki, Winter Mushroom · 2004 · Research Support, Non U.S. Gov'T

Medium relevance

Effect of a Pore-Forming Protein Derived from Flammulina velutipes on the Caco-2 Intestinal Epithelial Cell Monolayer

Flammulina velutipes

Gut & microbiome
SpeciesEnoki, Winter Mushroom
JournalBioscience, biotechnology, and biochemistry
Year2004

Key points

  • We have previously found a transepithelial electrical resistance (TEER)-decreasing protein derived from Flammulina velutipes, which was revealed to be identical to flammutoxin (FTX) that is known as a hemolytic pore-forming protein
  • This protein induced a rapid decrease in TEER and parallel increase in paracellular permeability in the intestinal epithelial Caco-2 cell monolayer without any cytotoxicity
  • An immunoblotting analysis revealed that the FTX-induced decrease in TEER was accompanied by the formation of a high-molecular-weight complex on the surface of Caco-2 cells
  • Intracellular Ca(2+) imaging showed that exposure to FTX caused a rapid Ca(2+) influx
  • Staining with fluorescent phalloidin showed a marked change to filamentous actin in the FTX-treated cells
  • These results suggest that TEER reduction could sensitively detect small membrane pore formation by FTX in the intestinal epithelium which causes a morphological alteration and disruption of the paracellular barrier function

Metadata-grounded summary

Citation abstract

We have previously found a transepithelial electrical resistance (TEER)-decreasing protein derived from Flammulina velutipes, which was revealed to be identical to flammutoxin (FTX) that is known as a hemolytic pore-forming protein. This protein induced a rapid decrease in TEER and parallel increase in paracellular permeability in the intestinal epithelial Caco-2 cell monolayer without any cytotoxicity. An immunoblotting analysis revealed that the FTX-induced decrease in TEER was accompanied by the formation of a high-molecular-weight complex on the surface of Caco-2 cells. Intracellular Ca(2+) imaging showed that exposure to FTX caused a rapid Ca(2+) influx. It was observed by electron microscopy that FTX induced swelling of microvilli and expansion of the cellular surface. Staining with fluorescent phalloidin showed a marked change to filamentous actin in the FTX-treated cells. These results suggest that TEER reduction could sensitively detect small membrane pore formation by FTX in the intestinal epithelium which causes a morphological alteration and disruption of the paracellular barrier function.

Citation

Narai A, Watanabe H, Iwanaga T, Tomita T, Shimizu M (2004). Effect of a Pore-Forming Protein Derived from Flammulina velutipes on the Caco-2 Intestinal Epithelial Cell Monolayer. Bioscience, biotechnology, and biochemistry https://doi.org/10.1271/bbb.68.2230 PMID: 15564659

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