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Cyclin proteolysis as a retinoid cancer prevention mechanism

K H Dragnev1, S J Freemantle, M J Spinella

  • 1Norris Cotton Cancer Center and Department of Medicine, Dartmouth-Hitchcock Medical Center, Lebanon, New Hampshire 03756, USA.

Insights

Retinoids, vitamin A derivatives, prevent cancer by degrading G1 cyclins via a ubiquitin-dependent proteolysis pathway. This mechanism, involving specific retinoid receptors, offers a rationale for combining retinoids in cancer prevention trials.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cell Biology

Background:

  • Retinoids, vitamin A derivatives, are known for their roles in cancer therapy and prevention.
  • Their mechanisms involve interactions with retinoid receptors and co-regulators, but understanding chemopreventive pathways requires further investigation.
  • Previous research indicated all-trans-retinoic acid (RA) prevents carcinogen-induced transformation of human bronchial cells by inducing G1 arrest.

Purpose of the Study:

  • To elucidate the specific molecular mechanisms by which retinoids exert their chemopreventive effects.
  • To investigate the role of G1 cyclin degradation in retinoid-mediated cancer prevention.
  • To identify the specific retinoid receptors involved in signaling this degradation pathway.

Main Methods:

  • Established an in vitro degradation assay using in vitro translated cyclin D1 and cellular extracts from RA-treated or untreated human bronchial epithelial cells.
  • Utilized proteasomal inhibitors to assess the role of proteasome-dependent degradation.
  • Employed retinoid receptor selective agonists (RAR and RXR) to determine receptor-specific signaling pathways.
  • Examined immunohistochemical expression profiles of cyclins D1 and E in bronchial preneoplasia.

Main Results:

  • Retinoic acid (RA) treatment induced proteasome-dependent degradation of cyclin D1, a key G1 regulator.
  • The degradation pathway was confirmed in vitro and was dependent on the PEST domain of cyclin D1, suggesting ubiquitination.
  • Retinoic acid receptor (RAR)beta and retinoid X receptor (RXR) signaling pathways, but not RARalpha or RARgamma, mediated this cyclin degradation.
  • Aberrant expression of G1 cyclins (D1 and E) was frequently observed in bronchial preneoplasia.

Conclusions:

  • Ubiquitin-dependent proteolysis of G1 cyclins represents a novel retinoid chemoprevention mechanism.
  • This pathway is activated by specific retinoid receptors (RARbeta and RXR).
  • Findings provide a rationale for combining retinoids with other agents in chemoprevention strategies, particularly those that do not activate this proteolysis pathway.

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