Intestinal cell cycle regulations. Interactions of cyclin D1, Cdk4, and p21Cip1

R D Beauchamp1, H M Sheng, J Y Shao

  • 1Department of Surgery, Vanderbilt University School of Medicine, Nashville, TN 37232-5729, USA.

Annals of Surgery
|May 1, 1996
PubMed
Abstract

Insights

Contact inhibition causes intestinal epithelial cells to arrest growth by reducing cyclin D1 and Cdk4 protein levels and increasing p21 association with these proteins. This cell cycle arrest is reversible, allowing proliferation after injury.

Area of Science:

  • Cell Biology
  • Gastroenterology
  • Molecular Biology

Background:

  • p21Cip1 protein inhibits cyclin-dependent kinase activity.
  • p21Cip1 mRNA is found in nonproliferative intestinal villus compartments, suggesting a gut growth-inhibitory role.
  • The study investigates contact inhibition in rat intestinal epithelial cells (IECs).

Purpose of the Study:

  • To determine if nontransformed rat intestinal epithelial cells (IECs) undergo reversible cell cycle arrest via contact inhibition.
  • To investigate if increased p21 association with cyclin D/Cdk4 complexes correlates with growth arrest.

Main Methods:

  • IEC-6 cells were cultured under confluent conditions for density-dependent arrest.
  • Release from arrest was induced by reseeding detached cells.
  • DNA synthesis, protein/mRNA levels (cyclin D1, Cdk4, p21), and protein complex formation were analyzed using [3H]-thymidine incorporation, Northern/Western blots, and immunoprecipitation.

Main Results:

  • Density arrest significantly decreased DNA synthesis (7.5-fold) and cyclin D1/Cdk4 protein levels (approx. 70%), while mRNA remained stable.
  • Release from arrest rapidly increased DNA synthesis (43-fold) and cyclin D1/Cdk4 protein levels.
  • Density-arrested cells showed higher p21 association with cyclin D1/Cdk4 complexes (170%) and a 6.4-fold higher p21::Cdk4 ratio, correlating with reduced kinase activity.

Conclusions:

  • Intestinal epithelial cells exhibit reversible density-dependent growth arrest.
  • This arrest involves decreased cyclin D1/Cdk4 protein expression and increased p21 binding to the cyclin D1/Cdk4 complex.
  • Reversibility of contact inhibition may explain the intestinal epithelium's proliferative response to injury.

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