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An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
Naftopidil, a selective {alpha}1-adrenoceptor antagonist, suppresses human prostate tumor growth by altering
Yasuhide Hori1, Kenichiro Ishii, Hideki Kanda
1Department of Nephro-Urologic Surgery and Andrology, Mie University Graduate School of Medicine, Mie, Japan.
Abstract:
In prostate cancer, tumor-stroma interactions play a critical role in the promotion of tumorigenesis, and thus the prevention of those interactions is a promising target to suppress tumor growth. Several studies demonstrated that alpha(1)-adrenoceptor (α(1)-AR) antagonists, therapeutic drugs for benign prostatic hyperplasia, have growth inhibitory effects on human prostate cancer (PCa) cells through induction of apoptosis or G(1) cell-cycle arrest. However, their direct actions on stromal cells surrounding cancer cells have not yet been elucidated. In this study, we investigated the effects of subtype-selective α(1)-AR antagonists (naftopidil, tamsulosin, and silodosin) on prostate tumor growth with a focus on the role of stroma, using commercially available fibroblast cells (PrSC). Tumorigenic studies in vivo showed significant reductions in tumor growth when E9 cells (an androgen low-sensitive LNCaP subline) grafted with PrSC were treated with naftopidil. In in vitro analyses, naftopidil and silodosin showed antiproliferative effects on PCa cells regardless of androgen sensitivity and α(1)-AR subtype expression. In PrSC, a strong growth inhibitory effect was observed with naftopidil but not silodosin. Flow cytometric analysis revealed that naftopidil, but not silodosin, induced G(1) cell-cycle arrest in both PCa cells and PrSC. In naftopidil-treated PrSC, total interleukin-6 protein was significantly reduced with increased suppression of cell proliferation. Silodosin induced weak early apoptosis only in PCa cells. These findings demonstrated that naftopidil strongly suppressed cell proliferation of stromal cells, resulting in decreased tumorigenic soluble factor, suggesting that naftopidil might be effective in preventing stromal support of tumor cells.
Insights
Naftopidil, an alpha(1)-adrenoceptor antagonist, inhibits prostate cancer growth by suppressing stromal cell proliferation and reducing tumor-promoting factors. This suggests naftopidil may disrupt crucial tumor-stroma interactions.
Area of Science:
- Oncology
- Pharmacology
- Cell Biology
Background:
- Tumor-stroma interactions are critical in prostate cancer (PCa) progression.
- Alpha(1)-adrenoceptor (α(1)-AR) antagonists show anti-cancer effects but their stromal actions are unknown.
- Investigating subtype-selective α(1)-AR antagonists on PCa and stromal cells is crucial.
Purpose of the Study:
- To investigate the effects of naftopidil, tamsulosin, and silodosin on prostate tumor growth, focusing on stromal cell interactions.
- To elucidate the direct actions of these antagonists on prostate stromal cells (PrSC).
Main Methods:
- In vivo tumorigenesis studies using E9 PCa cells co-grafted with PrSC.
- In vitro proliferation assays on PCa cells and PrSC.
- Flow cytometry for cell-cycle analysis.
- Measurement of interleukin-6 (IL-6) protein levels.
Main Results:
- Naftopidil significantly reduced tumor growth in vivo.
- Naftopidil and silodosin inhibited PCa cell proliferation.
- Naftopidil strongly inhibited PrSC proliferation, inducing G(1) cell-cycle arrest.
- Naftopidil reduced IL-6 protein in PrSC.
- Silodosin showed weak apoptosis induction in PCa cells only.
Conclusions:
- Naftopidil suppresses prostate cancer growth by inhibiting stromal cell proliferation and reducing pro-tumorigenic factors like IL-6.
- Naftopidil's action on stromal cells suggests a novel therapeutic strategy against prostate cancer.
- Targeting tumor-stroma interactions with naftopidil may prevent stromal support for tumor cells.
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