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Updated: Jun 9, 2026

Inducible and Reversible Dominant-negative (DN) Protein Inhibition
Published on: January 7, 2019
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.
Abstract:
Bexarotene is an RXR-selective vitamin A analog that has been shown to prevent ER-negative mammary tumorigenesis in animal models. While investigating the mechanism by which bexarotene prevents ER-negative breast cancer development, we found that the expression of cyclin D1, a critical cell cycle promoter, was repressed by bexarotene in vitro and in vivo. Time course and cycloheximide experiments show that repression of cyclin D1 is a late effect and requires new protein synthesis. Previously we discovered that DEC2 (differentially expressed in chondrocytes-2), a helix-loop-helix transcription repressor, was induced by bexarotene in human mammary epithelial cells. Therefore, we hypothesized that bexarotene represses the transcription of cyclin D1 through induction of DEC2. Luciferase reporter studies demonstrated that either bexarotene treatment or forced expression of DEC2 can repress the transcription of a cyclin D1 promoter reporter by affecting the basal transcriptional activity. Results from chromatin immunoprecipitation experiments showed that bexarotene treatment causes the recruitment of DEC2 and HDAC1 (histone deacetylase 1) to the cyclin D1 promoter. Co-immunoprecipitation confirms the interaction between DEC2 and HDAC1, suggesting that the recruitment of HDAC1 to the cyclin D1 promoter is through DEC2. Trichostatin A, a HDAC inhibitor, reverses the cyclin D1 repression by bexarotene, suggesting that repression of cyclin D1 involves histone deacetylation. Knock-down of DEC2 by siRNA abolishes the cyclin D1 repression, further supporting our hypothesis. Finally, we demonstrated that overexpression of DEC2 dramatically inhibited cell proliferation and repressed the expression of cyclin D1 in human mammary epithelial cells. These results suggest that bexarotene down-regulates cyclin D1 through induction of DEC2, followed by recruitment of HDAC1 to the cyclin D1 promoter causing transcriptional repression. By elucidating the mechanism by which rexinoids inhibit cell proliferation, it will be possible to develop more effective and less toxic drugs to prevent ER-negative breast cancers.
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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