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Updated: Dec 20, 2025

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Independence of HIF1a and androgen signaling pathways in prostate cancer
Maxine G B Tran1,2, Becky A S Bibby3, Lingjian Yang3
1Uro-oncology Research Group, Cancer Research UK Cambridge Institute, Cambridge, CB02 0RE, UK.
Background:
Therapeutic targeting of the androgen signaling pathway is a mainstay treatment for prostate cancer. Although initially effective, resistance to androgen targeted therapies develops followed by disease progression to castrate-resistant prostate cancer (CRPC). Hypoxia and HIF1a have been implicated in the development of resistance to androgen targeted therapies and progression to CRCP. The interplay between the androgen and hypoxia/HIF1a signaling axes was investigated.
Methods:
In vitro stable expression of HIF1a was established in the LNCaP cell line by physiological induction or retroviral transduction. Tumor xenografts with stable expression of HIF1a were established in castrated and non-castrated mouse models. Gene expression analysis identified transcriptional changes in response to androgen treatment, hypoxia and HIF1a. The binding sites of the AR and HIF transcription factors were identified using ChIP-seq.
Results:
Androgen and HIF1a signaling promoted proliferation in vitro and enhanced tumor growth in vivo. The stable expression of HIF1a in vivo restored tumor growth in the absence of endogenous androgens. Hypoxia reduced AR binding sites whereas HIF binding sites were increased with androgen treatment under hypoxia. Gene expression analysis identified seven genes that were upregulated both by AR and HIF1a, of which six were prognostic.
Conclusions:
The oncogenic AR, hypoxia and HIF1a pathways support prostate cancer development through independent signaling pathways and transcriptomic profiles. AR and hypoxia/HIF1a signaling pathways independently promote prostate cancer progression and therapeutic targeting of both pathways simultaneously is warranted.
Insights
Androgen receptor (AR) and hypoxia-inducible factor 1-alpha (HIF1a) signaling independently drive prostate cancer progression. Targeting both pathways simultaneously is crucial for effective treatment of castrate-resistant prostate cancer (CRPC).
Area of Science:
- Molecular Oncology
- Cancer Signaling Pathways
Background:
- Androgen signaling pathway (AR) is a primary treatment for prostate cancer.
- Resistance to AR-targeted therapy leads to castrate-resistant prostate cancer (CRPC).
- Hypoxia and HIF1a are implicated in therapy resistance and CRPC progression.
Purpose of the Study:
- To investigate the interplay between androgen and hypoxia/HIF1a signaling axes in prostate cancer.
- To understand the mechanisms driving resistance to AR-targeted therapies.
Main Methods:
- Established stable HIF1a expression in LNCaP cells and tumor xenografts in mouse models.
- Analyzed gene expression changes in response to androgen, hypoxia, and HIF1a.
- Identified AR and HIF binding sites using ChIP-seq.
Main Results:
- Androgen and HIF1a signaling promoted cancer cell proliferation and tumor growth.
- Stable HIF1a expression restored tumor growth in the absence of androgens.
- Hypoxia altered AR and HIF binding sites, with seven genes upregulated by both AR and HIF1a, six of which were prognostic.
Conclusions:
- AR, hypoxia, and HIF1a pathways independently support prostate cancer development and progression.
- Simultaneous therapeutic targeting of both AR and hypoxia/HIF1a pathways is warranted for CRPC treatment.
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