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Updated: Dec 7, 2025

Murine Prostate Micro-dissection and Surgical Castration
Published on: May 11, 2016
Crosstalk Between AR and Wnt Signaling Promotes Castration-Resistant Prostate Cancer Growth
Jun Luo1, Dan Wang2, Xuechao Wan2
1Department of Urology, Shanghai Fourth People's Hospital Affiliated to Tongji University School of Medicine, Shanghai, People's Republic of China.
Introduction:
Prostate cancer (PCa) is the most commonly diagnosed cancer and the third leading cause of cancer-related death in males in the United States. Despite the initial efficacy of androgen deprivation therapy in prostate cancer (PCa) patients, most patients progress to castration-resistant prostate cancer. However, the mechanisms underlying the androgen-independent progression of PCa remain largely unknown.
Methods:
In this study, we established a PCa cell line (LNCaP-AI) by maintaining LNCaP cells under androgen-depleted conditions. To explore the cellular and molecular mechanisms of androgen-independent growth of PCa, we analyzed the gene expression patterns in androgen-independent prostate cancer (AIPC) compared with that in androgen-dependent prostate cancer (ADPC). KEGG pathway analysis revealed that Wnt signaling pathways were activated after androgen deprivation therapy (ADT). In vitro experiments showed that the inhibition of Wnt pathway reduced AIPC cell growth by inhibiting cell cycle progression and promoting apoptosis. Furthermore, WNT5A, LEF1 were identified as direct targets of AR by chromatin immunoprecipitation (ChIP) assay and public ChIP-seq datasets analysis.
Results:
In the present study, we found a regulatory mechanism through which crosstalk between androgen receptor (AR) and Wnt signals promoted androgen-independent conversion of PCa. The Wnt pathway was inhibited by androgen in androgen-dependent prostate cancer cells, but this blocking effect was not elicited in androgen-independent prostate cancer (AIPC) cells. Moreover, Wnt pathway genes WNT5A and LEF1 were directly downregulated by AR. In vitro experiments showed that inhibition of the Wnt pathways repressed AIPC cell growth by inhibiting cell cycle progression and promoting apoptosis. We found that WNT5A and LEF1 were downregulated in low-grade PCa but upregulated in metastatic PCa.
Conclusion:
In summary, we revealed that crosstalk between AR and Wnt signaling pathways promotes androgen-independent growth of PCa, which may provide novel therapeutic opportunities for castration-resistant prostate cancer.
Insights
Crosstalk between androgen receptor (AR) and Wnt signaling promotes castration-resistant prostate cancer (CRPC) growth. Inhibiting Wnt pathways may offer new therapeutic strategies for advanced prostate cancer.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling
Background:
- Prostate cancer (PCa) is a leading cause of cancer death in men.
- Androgen deprivation therapy (ADT) is initially effective but often leads to castration-resistant prostate cancer (CRPC).
- Mechanisms driving androgen-independent progression in PCa are not fully understood.
Purpose of the Study:
- To investigate the molecular mechanisms underlying androgen-independent growth in prostate cancer.
- To explore the role of crosstalk between androgen receptor (AR) and Wnt signaling in PCa progression.
Main Methods:
- Established an androgen-independent PCa cell line (LNCaP-AI) from LNCaP cells.
- Analyzed gene expression patterns in androgen-independent PCa (AIPC) versus androgen-dependent PCa (ADPC).
- Utilized KEGG pathway analysis, in vitro experiments, and chromatin immunoprecipitation (ChIP) assays.
Main Results:
- Wnt signaling pathways were activated in AIPC cells after ADT.
- AR directly downregulates Wnt pathway genes WNT5A and LEF1.
- Inhibition of Wnt pathways reduced AIPC cell growth by affecting cell cycle and apoptosis.
- WNT5A and LEF1 expression patterns differed between low-grade and metastatic PCa.
Conclusions:
- A regulatory mechanism involving AR and Wnt signal crosstalk promotes androgen-independent PCa growth.
- This crosstalk represents a potential therapeutic target for CRPC.
- Findings suggest novel treatment strategies for castration-resistant prostate cancer.
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