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Updated: Dec 25, 2025

A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Targeting GRP78-dependent AR-V7 protein degradation overcomes castration-resistance in prostate cancer therapy
Yuning Liao1, Yuan Liu1, Xiaohong Xia1
1Affiliated Cancer Hospital & institute of Guangzhou Medical University, Protein Modification and Degradation Key Lab of Guangzhou and Guangdong, State Key Laboratory of Respiratory Disease, School of Basic Medical Sciences, Guangzhou Medical University, Guangzhou, Guangdong 510095, China.
Abstract:
Rationale: Androgen receptor splice variant 7 (AR-V7) is a leading cause of the development of castration-resistant prostate cancer (CRPC). However, the regulation and function of AR-V7 at levels of post-translational modifications in prostate cancer therapy remain poorly understood. Here, we conducted a library screen of natural products to identify potential small molecules responsible for AR-V7 protein degradation in human prostate cancer cell lines. Methods: A natural product library was used to screen the inhibitor of AR-V7. Co-IP and biomass spectrum assays were used to identify the AR-V7-interacting proteins, whereas western blot, confocal microscopy, RNA interfering, and gene transfection were used to validate these interactions. Cell viability, EDU staining, and colony formation assays were employed to detect cell growth and proliferation. Flowcytometry assays were used to detect the distribution of cell cycle. Mouse xenograft models were used to study the anti-CRPC effects in vivo. Results: This screen identified rutaecarpine, one of the major components of the Chinese medicine Evodia rutaecarpa, as a novel chemical that selectively induces AR-V7 protein degradation via K48-linked ubiquitination. Mechanically, this effect relies on rutaecarpine inducing the formation of a GRP78-AR-V7 protein complex, which further recruits the E3 ligase SIAH2 to directly promote the ubiquitination of AR-V7. Consequently, the genetic and pharmacological activation of the GRP78-dependent AR-V7 protein degradation restores the sensitivity of castration-resistant prostate cancer to anti-androgen therapy in cell culture and animal models. Conclusions: These findings not only provide a new approach for overcoming castration-resistance in prostate cancer therapy, but also increase our understanding about the interplay between molecular chaperones and ubiquitin ligase in shaping protein stability.
Insights
Rutaecarpine, a natural compound, selectively degrades the AR-V7 protein, a key driver of castration-resistant prostate cancer (CRPC). This discovery offers a new therapeutic strategy to restore sensitivity to anti-androgen treatments for CRPC patients.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Androgen receptor splice variant 7 (AR-V7) drives castration-resistant prostate cancer (CRPC) development.
- Mechanisms regulating AR-V7 post-translational modifications in prostate cancer therapy are poorly understood.
Purpose of the Study:
- Identify natural products that induce AR-V7 protein degradation.
- Investigate the therapeutic potential of AR-V7 targeting agents in CRPC.
Main Methods:
- Screened a natural product library for AR-V7 inhibitors.
- Utilized co-immunoprecipitation, mass spectrometry, western blotting, and confocal microscopy to identify AR-V7 interacting proteins.
- Validated interactions and assessed anti-cancer effects using cell-based assays and mouse xenograft models.
Main Results:
- Identified rutaecarpine as a novel agent that selectively induces AR-V7 protein degradation via K48-linked ubiquitination.
- Demonstrated that rutaecarpine promotes AR-V7 degradation by forming a GRP78-AR-V7 complex, recruiting E3 ligase SIAH2.
- Showed that GRP78-dependent AR-V7 degradation restores sensitivity to anti-androgen therapy in CRPC models.
Conclusions:
- Rutaecarpine provides a new therapeutic approach to overcome castration resistance in prostate cancer.
- Elucidated the interplay between molecular chaperones and ubiquitin ligases in regulating protein stability for AR-V7.
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