Massive programmed cell death in intestinal epithelial cells induced by three-dimensional growth conditions:

J Rak1, Y Mitsuhashi, V Erdos

  • 1Division of Cancer Biology Research, Reichmann Research Building, Sunnybrook Health Science Centre, Toronto, Ontario.

Insights

Normal intestinal cells undergo programmed cell death in 3D culture, but ras oncogenes suppress this process. This suggests adhesion-regulated programmed cell death is a target for cancer therapy.

Area of Science:

  • Cell Biology
  • Cancer Research
  • Molecular Biology

Background:

  • Programmed cell death (PCD) is crucial in tumor development and therapy response.
  • Most cancer studies use 2D monolayer cultures, not 3D solid tumors.
  • Gene expression and function differ significantly between 2D and 3D cultures.

Purpose of the Study:

  • To investigate cell death control in 3D culture using multicellular spheroids.
  • To compare cell death in 3D spheroids versus 2D monolayers.
  • To analyze the role of ras oncogenes in regulating cell death.

Main Methods:

  • Utilized rat intestinal epithelial cells (IEC-18) and tumorigenic variants.
  • Cultured cells in 2D monolayers and 3D multicellular spheroids.
  • Analyzed cell death markers (chromatin condensation, morphology, DNA degradation) and gene expression (bcl-2, ras).

Main Results:

  • IEC-18 cells underwent massive PCD in 3D spheroids, suppressed by bcl-2.
  • Ras-transfected IEC-18 variants survived in 3D culture.
  • Inducible ras expression allowed survival in 3D culture, with timing-dependent commitment to PCD.

Conclusions:

  • Intestinal epithelial cells may activate PCD upon detachment from monolayer configuration (adhesion-regulated PCD).
  • Mutant ras oncogenes suppress adhesion-regulated PCD.
  • Adhesion-regulated PCD is a potential target for cancer therapy.

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