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Cyclin D1 is a selective modifier of androgen-dependent signaling and androgen receptor function
Clay E S Comstock1, Michael A Augello1, Matthew J Schiewer1
1From the Kimmel Cancer Center,; Department of Cancer Biology.
Abstract:
D-type cyclins regulate cellular outcomes in part through cyclin-dependent, kinase-independent mechanisms that modify transcription factor action, and recent in vivo studies showed that cyclin D1 associates with a large number of transcriptional regulators in cells of the retina and breast. Given the frequency of cyclin D1 alterations in cancer, it is imperative to delineate the molecular mechanisms by which cyclin D1 controls key transcription factor networks in human disease. Prostate cancer was used as a paradigm because this tumor type is reliant at all stages of the disease on androgen receptor (AR) signaling, and cyclin D1 has been shown to negatively modulate AR-dependent expression of prostate-specific antigen (KLK3/PSA). Strategies were employed to control cyclin D1 expression under conditions of hormone depletion, and the effect of cyclin D1 on subsequent androgen-dependent gene expression was determined using unbiased gene expression profiling. Modulating cyclin D1 conferred widespread effects on androgen signaling and revealed cyclin D1 to be a selective effector of hormone action. A subset of androgen-induced target genes, known to be directly regulated by AR, was strongly suppressed by cyclin D1. Analyses of AR occupancy at target gene regulatory loci of clinical relevance demonstrated that cyclin D1 limits AR residence after hormone stimulation. Together, these findings reveal a new function for cyclin D1 in controlling hormone-dependent transcriptional outcomes and demonstrate a pervasive role for cyclin D1 in regulating transcription factor dynamics.
Insights
Cyclin D1 controls gene expression by altering transcription factor activity, particularly the androgen receptor (AR) in prostate cancer. This study reveals a new role for cyclin D1 in regulating hormone-dependent gene expression.
Area of Science:
- Molecular Biology
- Cancer Biology
- Genetics
Background:
- D-type cyclins, including cyclin D1, influence cellular functions via kinase-independent mechanisms affecting transcription factors.
- Cyclin D1 interacts with numerous transcriptional regulators and its alterations are frequent in cancer.
- Prostate cancer relies on androgen receptor (AR) signaling, and cyclin D1 negatively impacts AR-dependent gene expression.
Purpose of the Study:
- To investigate the molecular mechanisms by which cyclin D1 controls transcription factor networks in human disease, using prostate cancer as a model.
- To delineate cyclin D1's role in regulating androgen receptor (AR) signaling and hormone-dependent gene expression.
Main Methods:
- Controlled cyclin D1 expression under hormone depletion conditions.
- Unbiased gene expression profiling to assess the impact of cyclin D1 on androgen-dependent gene expression.
- Analysis of AR occupancy at target gene regulatory loci.
Main Results:
- Modulating cyclin D1 significantly affected androgen signaling, identifying it as a selective effector of hormone action.
- Cyclin D1 strongly suppressed a subset of AR-regulated androgen-induced target genes.
- Cyclin D1 was shown to limit AR residence time at target gene regulatory sites after hormone stimulation.
Conclusions:
- Cyclin D1 plays a novel role in regulating hormone-dependent transcriptional outcomes.
- Cyclin D1 has a pervasive influence on the dynamics of transcription factors, impacting gene expression.
- Understanding cyclin D1's role is crucial for targeting AR signaling in prostate cancer and other diseases.
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