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Updated: Feb 15, 2026

Isolation of Cancer Stem Cells From Human Prostate Cancer Samples
Published on: March 14, 2014
Modulation of AKR1C2 by curcumin decreases testosterone production in prostate cancer
Hisamitsu Ide1, Yan Lu2, Takahiro Noguchi2
1Department of Urology, Dokkyo Medical University Saitama Medical Center, Saitama, Japan.
Abstract:
Intratumoral androgen biosynthesis has been recognized as an essential factor of castration-resistant prostate cancer. The present study investigated the effects of curcumin on the inhibition of intracrine androgen synthesis in prostate cancer. Human prostate cancer cell lines, LNCaP and 22Rv1 cells were incubated with or without curcumin after which cell proliferation was measured at 0, 24, 48 and 72 hours, respectively. Prostate tissues from the transgenic adenocarcinoma of the mouse prostate (TRAMP) model were obtained after 1-month oral administration of 200 mg/kg/d curcumin. Testosterone and dihydrotestosterone concentrations in LNCaP prostate cancer cells were determined through LC-MS/MS assay. Curcumin inhibited cell proliferation and induced apoptosis of prostate cancer cells in a dose-dependent manner. Curcumin decreased the expression of steroidogenic acute regulatory proteins, CYP11A1 and HSD3B2 in prostate cancer cell lines, supporting the decrease of testosterone production. After 1-month oral administration of curcumin, Aldo-Keto reductase 1C2 (AKR1C2) expression was elevated. Simultaneously, decreased testosterone levels in the prostate tissues were observed in the TRAMP mice. Meanwhile, curcumin treatments considerably increased the expression of AKR1C2 in prostate cancer cell lines, supporting the decrease of dihydrotestosterone. Taken together, these results suggest that curcumin's natural bioactive compounds could have potent anticancer properties due to suppression of androgen production, and this could have therapeutic effects on prostate cancer.
Insights
Curcumin, a natural compound, effectively inhibits prostate cancer growth by suppressing androgen synthesis. This study shows curcumin reduces testosterone and dihydrotestosterone levels, offering potential therapeutic benefits for prostate cancer treatment.
Area of Science:
- Oncology
- Biochemistry
- Pharmacology
Background:
- Intratumoral androgen biosynthesis is crucial for castration-resistant prostate cancer (CRPC) progression.
- Understanding mechanisms to inhibit intracrine androgen synthesis is vital for CRPC therapy.
Purpose of the Study:
- To investigate the effects of curcumin on inhibiting intracrine androgen synthesis in prostate cancer.
- To evaluate curcumin's impact on prostate cancer cell proliferation and apoptosis.
Main Methods:
- Human prostate cancer cell lines (LNCaP, 22Rv1) were treated with curcumin.
- Cell proliferation was measured over 72 hours.
- Prostate tissues from TRAMP mice received oral curcumin.
- Testosterone and dihydrotestosterone levels were quantified using LC-MS/MS.
- Expression of key steroidogenic enzymes (CYP11A1, HSD3B2, AKR1C2) was analyzed.
Main Results:
- Curcumin inhibited prostate cancer cell proliferation and induced apoptosis in a dose-dependent manner.
- Curcumin decreased the expression of CYP11A1 and HSD3B2, reducing testosterone production.
- Curcumin elevated Aldo-Keto reductase 1C2 (AKR1C2) expression, contributing to dihydrotestosterone reduction.
- TRAMP mice treated with curcumin showed decreased testosterone levels in prostate tissues.
Conclusions:
- Curcumin possesses potent anticancer properties by suppressing androgen production in prostate cancer.
- The findings suggest curcumin's potential as a therapeutic agent for prostate cancer, particularly CRPC.
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