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Generation of Prostate Cancer Patient Derived Xenograft Models from Circulating Tumor Cells
Published on: October 20, 2015
Oxibendazole inhibits prostate cancer cell growth
Qiaoli Chen1, Yuhua Li2, Xiaoyu Zhou2
1School of Pharmacy, Fudan University, Shanghai 201203, P.R. China.
Abstract:
Prostate cancer (PCa) is one of the most common malignancies among men and is the second leading cause of cancer-associated mortality in the developed world. Androgen deprivation therapy (ADT) is the most common treatment for PCa. However, the majority of androgen-sensitive PCa patients will eventually develop resistance to ADT and the disease will become androgen-independent. There is, therefore, an immediate requirement to develop effective therapeutic techniques towards the treatment of recurrent PCa. Oxibendazole (OBZ) is an anthelmintic drug that has also shown promise in the treatment of malignancies. In the present study, the capability of OBZ to repress the growth of PCa cells was assessed in human androgen-independent PCa 22Rv1 and PC-3 cell lines. The growth of the 22Rv1 and PC-3 cell lines, as assessed with a trypan blue exclusion assay, was markedly inhibited by OBZ treatment in vitro, with half-maximal inhibitory concentration values of 0.25 and 0.64 µM, respectively. The mean size of 22Rv1 tumors in nude mice treated with OBZ (25 mg/kg/day) was 47.96% smaller than that of the control mice. Treatment with OBZ increased the expression of microRNA-204 (miR-204), as determined by reverse transcription-quantitative polymerase chain reaction (RT-qPCR), and the level of p53 as determined with western blotting, two well-characterized tumor suppressor genes. When miR-204 expression was knocked down by introduction of an miR-204 inhibitor, the inhibitory effect of OBZ was markedly reduced; however, when it was overexpressed, the inhibitory efficiency of OBZ was markedly higher, indicating that upregulation of miR-204 is key for the efficacy of OBZ. Additionally, OBZ was demonstrated with RT-qPCR to repress the expression of the androgen receptor, and by western blotting to reduce prostate-specific androgen in 22Rv1 cells. The results suggest that OBZ has potential for clinical use in the treatment of recurrent PCa.
Insights
Oxibendazole (OBZ) effectively inhibits prostate cancer (PCa) cell growth and reduces tumor size in mice. This anthelmintic drug shows promise for treating recurrent PCa by upregulating tumor suppressors like miR-204 and p53.
Area of Science:
- Oncology
- Pharmacology
Background:
- Prostate cancer (PCa) is a leading cause of cancer mortality in men.
- Androgen deprivation therapy (ADT) is standard for PCa, but resistance is common, necessitating new treatments.
- Recurrent PCa requires novel therapeutic strategies.
Purpose of the Study:
- To evaluate the efficacy of oxibendazole (OBZ) against androgen-independent prostate cancer cells.
- To investigate the mechanisms underlying OBZ's anti-cancer effects in PCa.
Main Methods:
- In vitro studies using PCa cell lines (22Rv1, PC-3) with trypan blue exclusion assay.
- In vivo studies using nude mice xenograft models treated with OBZ.
- Analysis of microRNA-204 (miR-204) and p53 expression via RT-qPCR and western blotting.
- Assessment of androgen receptor and prostate-specific antigen levels.
Main Results:
- OBZ significantly inhibited PCa cell growth in vitro (IC50 values: 0.25 µM for 22Rv1, 0.64 µM for PC-3).
- OBZ treatment reduced tumor volume by 47.96% in mice.
- OBZ increased miR-204 and p53 expression, crucial tumor suppressors.
- OBZ's efficacy is dependent on miR-204 upregulation; it also reduced androgen receptor and prostate-specific antigen levels.
Conclusions:
- Oxibendazole demonstrates significant anti-prostate cancer activity in vitro and in vivo.
- The mechanism involves upregulation of miR-204 and p53, and downregulation of androgen receptor signaling.
- OBZ holds potential as a therapeutic agent for recurrent prostate cancer.
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