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MISSION LentiPlex Pooled shRNA Library Screening in Mammalian Cells
Published on: December 21, 2011
Short hairpin RNA library-based functional screening identified ribosomal protein L31 that modulates prostate cancer
Yojiro Maruyama1, Toshiaki Miyazaki2, Kazuhiro Ikeda2
1Division of Gene Regulation and Signal Transduction, Research Center for Genomic Medicine, Saitama Medical University, Saitama, Japan; Department of Obstetrics and Gynecology, Juntendo University School of Medicine, Tokyo, Japan.
Abstract:
Androgen receptor is a primary transcription factor involved in the proliferation of prostate cancer cells. Thus, hormone therapy using antiandrogens, such as bicalutamide, is a first-line treatment for the disease. Although hormone therapy initially reduces the tumor burden, many patients eventually relapse, developing tumors with acquired endocrine resistance. Elucidation of the molecular mechanisms underlying endocrine resistance is therefore a fundamental issue for the understanding and development of alternative therapeutics for advanced prostate cancer. In the present study, we performed short hairpin RNA (shRNA)-mediated functional screening to identify genes involved in bicalutamide-mediated effects on LNCaP prostate cancer cells. Among such candidate genes selected by screening using volcano plot analysis, ribosomal protein L31 (RPL31) was found to be essential for cell proliferation and cell-cycle progression in bicalutamide-resistant LNCaP (BicR) cells, based on small interfering RNA (siRNA)-mediated knockdown experiments. Of note, RPL31 mRNA is more abundantly expressed in BicR cells than in parental LNCaP cells, and clinical data from ONCOMINE and The Cancer Genome Altas showed that RPL31 is overexpressed in prostate carcinomas compared with benign prostate tissues. Intriguingly, protein levels of the tumor suppressor p53 and its targets, p21 and MDM2, were increased in LNCaP and BicR cells treated with RPL31 siRNA. We observed decreased degradation of p53 protein after RPL31 knockdown. Moreover, the suppression of growth and cell cycle upon RPL31 knockdown was partially recovered with p53 siRNA treatment. These results suggest that RPL31 is involved in bicalutamide-resistant growth of prostate cancer cells. The shRNA-mediated functional screen in this study provides new insight into the molecular mechanisms and therapeutic targets of advanced prostate cancer.
Insights
Ribosomal protein L31 (RPL31) drives prostate cancer cell growth and resistance to hormone therapy. Targeting RPL31 may offer new therapeutic strategies for advanced prostate cancer by affecting cell cycle and tumor suppressor p53.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Androgen receptor signaling drives prostate cancer proliferation.
- Hormone therapy with antiandrogens like bicalutamide is a primary treatment.
- Acquired endocrine resistance leads to treatment relapse in advanced prostate cancer.
Purpose of the Study:
- To identify genes involved in bicalutamide resistance in prostate cancer cells.
- To elucidate molecular mechanisms underlying endocrine resistance.
- To discover novel therapeutic targets for advanced prostate cancer.
Main Methods:
- Short hairpin RNA (shRNA)-mediated functional screening of LNCaP cells.
- Volcano plot analysis to identify candidate genes.
- Small interfering RNA (siRNA)-mediated knockdown of RPL31 and p53.
Main Results:
- Ribosomal protein L31 (RPL31) is essential for proliferation in bicalutamide-resistant (BicR) cells.
- RPL31 mRNA is overexpressed in BicR cells and prostate carcinomas.
- RPL31 knockdown increases p53 and p21 levels, decreasing p53 degradation and partially reversing growth suppression.
Conclusions:
- RPL31 plays a critical role in bicalutamide-resistant prostate cancer growth.
- RPL31 influences prostate cancer progression through the p53 pathway.
- Functional screening identifies RPL31 as a potential therapeutic target for advanced prostate cancer.
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