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Updated: Jun 10, 2026

Sequencing Small Non-coding RNA from Formalin-fixed Tissues and Serum-derived Exosomes from Castration-resistant Prostate Cancer Patients
Published on: November 19, 2019
Castration resistance in human prostate cancer is conferred by a frequently occurring androgen receptor splice
Shihua Sun1, Cynthia C T Sprenger, Robert L Vessella
1Department of Medicine, University of Washington School of Medicine, Seattle, Washington 98104, USA.
Abstract:
Progression of prostate cancer following castration is associated with increased androgen receptor (AR) expression and signaling despite AR blockade. Recent studies suggest that these activities are due to the generation of constitutively active AR splice variants, but the mechanisms by which these splice variants could mediate such effects are not fully understood. Here we have identified what we believe to be a novel human AR splice variant in which exons 5, 6, and 7 are deleted (ARv567es) and demonstrated that this variant can contribute to cancer progression in human prostate cancer xenograft models in mice following castration. We determined that, in human prostate cancer cell lines, ARv567es functioned as a constitutively active receptor, increased expression of full-length AR (ARfl), and enhanced the transcriptional activity of AR. In human xenografts, human prostate cancer cells transfected with ARv567es cDNA formed tumors that were resistant to castration. Furthermore, the ratio of ARv567es to ARfl expression within the xenografts positively correlated with resistance to castration. Importantly, we also detected ARv567es frequently in human prostate cancer metastases. In summary, these data indicate that constitutively active AR splice variants can contribute to the development of castration-resistant prostate cancers and may serve as biomarkers for patients who are likely to suffer from early recurrence and are candidates for therapies directly targeting the AR rather than ligand.
Insights
A novel androgen receptor splice variant (ARv567es) drives castration-resistant prostate cancer progression. This variant promotes tumor growth and resistance to hormone therapy, suggesting it as a potential biomarker for early recurrence.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Prostate cancer progression after castration is linked to increased androgen receptor (AR) signaling.
- Constitutively active AR splice variants are implicated, but their mechanisms remain unclear.
Purpose of the Study:
- Identify and characterize novel AR splice variants contributing to castration-resistant prostate cancer (CRPC).
- Investigate the role of a newly identified variant, ARv567es, in CRPC development and progression.
Main Methods:
- Identified a novel AR splice variant, ARv567es (deletion of exons 5, 6, 7).
- Assessed ARv567es function in prostate cancer cell lines and xenograft models.
- Quantified ARv567es and full-length AR (ARfl) expression in tumors and metastases.
Main Results:
- ARv567es acts as a constitutively active receptor, upregulating ARfl expression and enhancing AR transcriptional activity.
- Prostate cancer xenografts expressing ARv567es exhibited castration resistance.
- A higher ARv567es to ARfl ratio correlated with increased castration resistance.
- ARv567es was frequently detected in human prostate cancer metastases.
Conclusions:
- Constitutively active AR splice variants, like ARv567es, significantly contribute to the development of castration-resistant prostate cancer.
- ARv567es may serve as a predictive biomarker for early recurrence in prostate cancer patients.
- Targeting AR splice variants, rather than ligands, could be a therapeutic strategy for CRPC.
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