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Laser-capture Microdissection of Human Prostatic Epithelium for RNA Analysis
Published on: November 26, 2015
A Vector-Based Short Hairpin RNA Targeting Aurora B Suppresses Human Prostatic Carcinoma Growth
Mei Cao1,2, Panpan Qi1, Chong Chen1
11 Key Laboratory of Biological Resource and Ecological Environment of Chinese Education Ministry, College of Life Sciences, Sichuan University, Chengdu, People's Republic of China.
Abstract:
Aurora kinase B, playing a vital, important role in mitosis, is frequently detected to be overexpressed in many cancer cell lines and various tumor tissues, including prostatic carcinoma. Given the essential function of Aurora kinase B in mitosis and its association with tumorigenesis, it might be a drug target for prostatic carcinoma treatment. In our study, short hairpin RNA targeting Aurora kinase B was cloned into a pGPU6 plasmid vector and then transfected into human prostatic carcinoma cells. The expression level of Aurora kinase B was verified by reverse transcription-polymerase chain reaction and Western blot. At the same time, cell apoptosis was detected by 3-(4,5-dimethyl-2-thiazolyl)-2,5-diphenyl-2H-tetrazolium bromide, fluorescent staining, and flow cytometric analysis. Furthermore, prostate carcinoma cells were injected into mice to establish a tumor xenograft model. Previous studies have shown the effect of pGPU6-shAURKB plasmid on tumor growth in a prostate carcinoma xenogenic implantation model. From the study, we knew that the Aurora kinase B was significantly downregulated in prostate carcinoma cells, and cell apoptosis was also detected higher in treated groups than that in control groups. Moreover, in the prostate carcinoma xenogenic implantation model, compared with the control groups, the tumor growth was inhibited about 78.7% in the pGPU6-shAURKB plasmid-treated group, and cell apoptosis in the experimental group was notably higher than that in control groups. The average duration of tumor-bearing mice was prolonged to about 35 days. The results of experiment indicated that specific knockdown of Aurora kinase B led to prostate carcinoma cells apoptosis and inhibited tumor growth. Our data clearly confirmed that specific knockdown of Aurora kinase B expression by vector-based short hairpin RNA/liposome may be a potential new approach to treat human prostatic carcinoma.
Insights
Targeting Aurora kinase B (AURKB) with short hairpin RNA (shRNA) effectively reduced prostate cancer cell growth and increased apoptosis. This approach shows promise as a novel therapeutic strategy for prostatic carcinoma.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Aurora kinase B (AURKB) is crucial for mitosis and often overexpressed in cancers, including prostatic carcinoma.
- Its role in tumorigenesis suggests AURKB as a potential therapeutic target for prostate cancer.
Purpose of the Study:
- To investigate the efficacy of targeting Aurora kinase B (AURKB) in human prostatic carcinoma cells and a xenograft model.
- To evaluate the potential of AURKB knockdown as a treatment strategy for prostatic carcinoma.
Main Methods:
- Short hairpin RNA (shRNA) targeting AURKB was delivered via a pGPU6 plasmid vector into prostate cancer cells.
- AURKB expression was quantified using RT-PCR and Western blot.
- Cell apoptosis was assessed using MTT assays, fluorescent staining, and flow cytometry.
- Tumor growth was evaluated in a prostate cancer xenograft mouse model.
Main Results:
- AURKB expression was significantly downregulated in prostate cancer cells following shRNA treatment.
- Increased apoptosis was observed in AURKB-knockdown prostate cancer cells compared to controls.
- Tumor growth in the xenograft model was inhibited by approximately 78.7% in the AURKB-shRNA treated group.
- The average survival duration of tumor-bearing mice was extended by about 35 days.
Conclusions:
- Specific knockdown of Aurora kinase B (AURKB) induces apoptosis and inhibits tumor growth in prostate cancer.
- Vector-based short hairpin RNA (shRNA) targeting AURKB represents a potential therapeutic approach for human prostatic carcinoma.
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