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A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
FOXA1 regulates androgen receptor variant activity in models of castrate-resistant prostate cancer
Dominic Jones1, Mark Wade1, Sirintra Nakjang1
1Northern Institute for Cancer Research, Newcastle University, Newcastle Upon Tyne, NE2 4HH, UK.
Abstract:
Retention of androgen receptor (AR) signalling in castrate-resistant prostate cancer (CRPC) highlights the requirement for the development of more effective AR targeting therapies. A key mechanism of resistance to anti-androgens is through expression of constitutively active AR variants (AR-Vs) that are refractory to next-generation therapies, including Enzalutamide and Abiraterone. By maintaining an androgenic gene signature, AR-Vs drive tumour survival and progression in castrate conditions. Critically, however, our understanding of the mechanics of AR-V-driven transcription is limited, particularly with respect to dependency on pioneer factor function. Here we show that depletion of FOXA1 in the CWR22Rv1 CRPC cell line abrogates the oncogenic potential of AR-Vs. Gene expression profiling reveals that approximately 41% of the AR-V transcriptome requires FOXA1 and that depletion of FOXA1 attenuates AR-V binding at a sub-set of analysed co-regulated genes. Interestingly, AR-V levels are elevated in cells depleted of FOXA1 as a consequence of attenuated negative feedback on the AR gene, but is insufficient to maintain cell growth as evidenced by marked anti-proliferative effects in FOXA1 knockdown cells. In all, our data suggests that AR-Vs are dependent on FOXA1 for sustaining a pro-proliferative gene signature and agents targeting FOXA1 may represent novel therapeutic options for CRPC patients.
Insights
Androgen receptor variants (AR-Vs) drive prostate cancer progression. Targeting FOXA1, a key factor for AR-V function, may offer new therapeutic strategies for castrate-resistant prostate cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Castrate-resistant prostate cancer (CRPC) often retains androgen receptor (AR) signaling, necessitating novel therapies.
- Constitutively active AR variants (AR-Vs) confer resistance to current anti-androgen treatments like Enzalutamide and Abiraterone.
- AR-Vs maintain an androgenic gene signature, promoting tumor survival and progression under castrate conditions.
Purpose of the Study:
- To investigate the dependency of AR-V-driven transcription on pioneer factor function.
- To elucidate the role of FOXA1 in AR-V-mediated gene expression and oncogenic potential in CRPC.
Main Methods:
- Utilized the CWR22Rv1 CRPC cell line for experiments.
- Performed FOXA1 depletion studies (knockdown).
- Conducted gene expression profiling and analyzed AR-V binding to DNA.
Main Results:
- Depletion of FOXA1 abrogated the oncogenic potential of AR-Vs.
- Approximately 41% of the AR-V transcriptome was found to be FOXA1-dependent.
- FOXA1 depletion attenuated AR-V binding at co-regulated genes and led to anti-proliferative effects, despite elevated AR-V levels due to reduced negative feedback.
Conclusions:
- AR-Vs rely on FOXA1 to sustain a pro-proliferative gene signature in CRPC.
- Targeting FOXA1 presents a potential novel therapeutic strategy for CRPC patients.
- Understanding AR-V mechanics and pioneer factor dependency is crucial for developing effective treatments.
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