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Modulation of androgen receptor transactivation by FoxH1. A newly identified androgen receptor corepressor
Guangchun Chen1, Masatoshi Nomura, Hidetaka Morinaga
1Department of Medicine and Bioregulatory Science, Graduate School of Medical Science, Kyushu University, Maidashi 3-1-1, Higashi-ku, Fukuoka 812-8582, Japan.
Abstract:
Androgen signaling plays key roles in the development and progression of prostate cancer, and numerous ongoing studies focus on the regulation of androgen receptor (AR) transactivity to develop novel therapies for the treatment of androgen-independent prostate cancer. FoxH1, a member of the Forkhead-box (FOX) gene family of transcription factors, takes part in mediating transforming growth factor-beta/activin signaling through its interaction with the Smad2.Smad4 complex. Using a series of experiments, we found that FoxH1 repressed both ligand-dependent and -independent transactivation of the AR on androgen-induced promoters. This action of FoxH1 was independent of its transactivation capacity and activin A but relieved by Smad2.Smad4. In addition, the repression of the AR by FoxH1 did not require deacetylase activity. A protein-protein interaction was identified between the AR and FoxH1 independently of dihydrotestosterone. Furthermore, a confocal microscopic analysis of LNCaP cells revealed that the interaction between the AR and FoxH1 occurred in the nucleus and that FoxH1 specifically blocked the foci formation of dihydrotestosterone-activated AR, which has been shown to be correlated with the AR transactivation potential. Taken together, our results indicate that FoxH1 functions as a new corepressor of the AR. Our observations not only strengthen the role of FoxH1 in AR-mediated transactivation but also suggest that therapeutic interventions based on AR-coregulator interactions could be designed to block both androgen-dependent and -independent growth of prostate cancer.
Insights
FoxH1 acts as a novel corepressor of the androgen receptor (AR), inhibiting both its ligand-dependent and -independent activity in prostate cancer cells. This discovery offers new therapeutic targets for prostate cancer treatment.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- Androgen receptor (AR) signaling is crucial for prostate cancer development and progression.
- Targeting AR transactivity is a key strategy for treating androgen-independent prostate cancer.
- FoxH1 is a transcription factor involved in TGF-beta/activin signaling via Smad2.Smad4 interaction.
Purpose of the Study:
- To investigate the role of FoxH1 in regulating androgen receptor (AR) transactivity.
- To determine if FoxH1 acts as a corepressor or coactivator of the AR.
- To explore the potential of targeting AR-coregulator interactions for prostate cancer therapy.
Main Methods:
- In vitro experiments to assess FoxH1's effect on AR transactivation.
- Protein-protein interaction studies between FoxH1 and AR.
- Confocal microscopy in LNCaP cells to analyze subcellular localization and AR foci formation.
Main Results:
- FoxH1 repressed both ligand-dependent and -independent AR transactivation.
- FoxH1 directly interacted with the AR in a ligand-independent manner within the nucleus.
- FoxH1 inhibited the foci formation of dihydrotestosterone-activated AR, indicating repression of transactivation potential.
Conclusions:
- FoxH1 functions as a novel corepressor of the androgen receptor (AR).
- FoxH1's interaction with AR is independent of its transactivation capacity and Smad2.Smad4 complex.
- Targeting FoxH1-AR interactions may offer a therapeutic strategy against both androgen-dependent and -independent prostate cancer growth.
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