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Updated: Sep 29, 2025

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Attenuating Adaptive VEGF-A and IL8 Signaling Restores Durable Tumor Control in AR Antagonist-Treated Prostate
Pamela J Maxwell1, Melanie McKechnie1, Christopher W Armstrong1
1Movember FASTMAN Centre of Excellence, Patrick G Johnston Centre for Cancer Research, School of Medicine, Dentistry and Biomedical Sciences, Queen's University Belfast, Belfast, Northern Ireland, United Kingdom.
Abstract:
Inhibiting androgen signaling using androgen signaling inhibitors (ASI) remains the primary treatment for castrate-resistant prostate cancer. Acquired resistance to androgen receptor (AR)-targeted therapy represents a major impediment to durable clinical response. Understanding resistance mechanisms, including the role of AR expressed in other cell types within the tumor microenvironment, will extend the clinical benefit of AR-targeted therapy. Here, we show the ASI enzalutamide induces vascular catastrophe and promotes hypoxia and microenvironment adaptation. We characterize treatment-induced hypoxia, and subsequent induction of angiogenesis, as novel mechanisms of relapse to enzalutamide, highlighting the importance of two hypoxia-regulated cytokines in underpinning relapse. We confirmed AR expression in CD34+ vascular endothelium of biopsy tissue and human vascular endothelial cells (HVEC). Enzalutamide attenuated angiogenic tubule formation and induced cytotoxicity in HVECs in vitro, and rapidly induced sustained hypoxia in LNCaP xenografts. Subsequent reoxygenation, following prolonged enzalutamide treatment, was associated with increased tumor vessel density and accelerated tumor growth. Hypoxia increased AR expression and transcriptional activity in prostate cells in vitro. Coinhibition of IL8 and VEGF-A restored tumor response in the presence of enzalutamide, confirming the functional importance of their elevated expression in enzalutamide-resistant models. Moreover, coinhibition of IL8 and VEGF-A resulted in a durable, effective resolution of enzalutamide-sensitive prostate tumors. We conclude that concurrent inhibition of two hypoxia-induced factors, IL8 and VEGF-A, prolongs tumor sensitivity to enzalutamide in preclinical models and may delay the onset of enzalutamide resistance.
Implications:
Targeting hypoxia-induced signaling may extend the therapeutic benefit of enzalutamide, providing an improved treatment strategy for patients with resistant disease.
Insights
Enzalutamide treatment for prostate cancer causes hypoxia, promoting resistance. Combining enzalutamide with IL8 and VEGF-A inhibitors may overcome resistance and improve treatment durability.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Androgen signaling inhibitors (ASI) are primary treatments for castrate-resistant prostate cancer.
- Acquired resistance to androgen receptor (AR)-targeted therapy limits durable clinical response.
Purpose of the Study:
- To investigate novel mechanisms of enzalutamide resistance in prostate cancer.
- To explore the role of hypoxia and associated cytokines in treatment relapse.
- To evaluate combination therapy strategies for overcoming resistance.
Main Methods:
- In vitro studies using human vascular endothelial cells (HVECs).
- In vivo studies using LNCaP xenografts in mice.
- Analysis of AR expression in tumor microenvironment.
- Assessment of hypoxia, angiogenesis, IL8, and VEGF-A levels.
- Evaluation of combination therapy with enzalutamide, IL8, and VEGF-A inhibitors.
Main Results:
- Enzalutamide induced vascular catastrophe, hypoxia, and microenvironment adaptation.
- Treatment-induced hypoxia and subsequent angiogenesis were identified as novel relapse mechanisms.
- AR expression was confirmed in vascular endothelium.
- Coinhibition of IL8 and VEGF-A restored tumor response to enzalutamide and led to durable tumor resolution in preclinical models.
Conclusions:
- Concurrent inhibition of hypoxia-induced factors IL8 and VEGF-A prolongs tumor sensitivity to enzalutamide.
- Targeting hypoxia-induced signaling may extend therapeutic benefit and delay resistance to enzalutamide.
- Combination therapy offers a promising strategy for improved treatment of resistant prostate cancer.
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