The rexinoid bexarotene represses cyclin D1 transcription by inducing the DEC2 transcriptional repressor

Yuxin Li1, Qiang Shen, Hee-Tae Kim

  • 1Department of Clinical Cancer Prevention, The University of Texas, Anderson Cancer Center Cancer, Houston, TX 77030, USA.

Insights

Bexarotene prevents ER-negative breast cancer by reducing cyclin D1 expression through DEC2 induction and HDAC1 recruitment to the cyclin D1 promoter, inhibiting cell proliferation.

Area of Science:

  • Oncology
  • Molecular Biology
  • Pharmacology

Background:

  • Bexarotene, an RXR-selective vitamin A analog, shows promise in preventing ER-negative mammary tumorigenesis.
  • Cyclin D1 is a key cell cycle promoter, and its repression is a target for cancer prevention strategies.

Purpose of the Study:

  • To elucidate the mechanism by which bexarotene prevents ER-negative breast cancer.
  • To investigate the role of DEC2 (differentially expressed in chondrocytes-2) in bexarotene-mediated repression of cyclin D1.

Main Methods:

  • Luciferase reporter assays to assess transcriptional activity.
  • Chromatin immunoprecipitation and co-immunoprecipitation to study protein-DNA and protein-protein interactions.
  • siRNA-mediated knockdown and overexpression studies to evaluate gene function.
  • Treatment with HDAC inhibitor (Trichostatin A) to assess the role of histone deacetylation.

Main Results:

  • Bexarotene treatment repressed cyclin D1 expression in a protein synthesis-dependent manner.
  • Bexarotene induced DEC2 expression, which was found to repress cyclin D1 transcription.
  • DEC2 and HDAC1 were recruited to the cyclin D1 promoter, leading to transcriptional repression via histone deacetylation.
  • Knockdown of DEC2 abolished bexarotene-induced cyclin D1 repression.

Conclusions:

  • Bexarotene down-regulates cyclin D1 through DEC2 induction, leading to HDAC1 recruitment and transcriptional repression.
  • This mechanism highlights the potential of targeting the DEC2-HDAC1 pathway for ER-negative breast cancer prevention.
  • Understanding rexinoid mechanisms can aid in developing more effective and less toxic breast cancer therapeutics.

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