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3-D Cell Culture System for Studying Invasion and Evaluating Therapeutics in Bladder Cancer
Published on: September 13, 2018
Identification of hMex-3A and its effect on human bladder cancer cell proliferation
Ying Huang1, Chao Fang1, Jing-Wen Shi1
1Department of Ultrasound, Shengjing Hospital of China Medical University, Shenyang 110004, China.
Abstract:
In this study, hMex-3A was selected from TCGA database as a research object to observe the effects of small interfering RNA (siRNA) targeting hMex-3A on the biological activities of human bladder cancer and explore its mechanism for the first time. In this study, there were 2 groups including negative control group and hMex-3A-siRNA-transfected cells group for 5637 and T24 cell lines, respectively. After bladder cancer cells were transfected with the interference RNA sequence, proliferation of transfected cells were assessed by Celigo Cell Counting, and apoptosis were detected by flow cytometry. The knockdown rate of hMex-3A was 74% in 5637 cells and 68% in T24 cells after RNA interference. In addition, Celigo Cell Counting indicated that cell viability was significantly lower in hMex-3A-siRNA-transfected cells group (2196/well) than in negative control group (6777/well) (P < 0.05), but T24 cells did not show statistical significance between hMex-3A-siRNA-transfected cells group (5799/well) and negative control group (7899/well) (P >0.05). Flow cytometer showed that apoptosis was the highest and cells were significantly blocked after cells were transfected in hMex-3A-siRNA-transfected cells group in 5 days later (P < 0.05). Mex-3A protein was detected in bladder carcinoma sections with a mean staining intensity of 7.06±2.60. Mex-3A protein expression was significantly higher in cancerous tissue than in para-cancerous tissue (P <0.05). Our study suggested that siRNA targeting hMex-3A could markedly inhibit cell proliferation and promote apoptosis in 5637 cells. These might have significant implications to bladder carcinogenesis and serve as a potential target for the treatment of bladder cancer.
Insights
Small interfering RNA (siRNA) targeting hMex-3A significantly inhibited bladder cancer cell proliferation and promoted apoptosis in 5637 cells. This suggests hMex-3A as a potential therapeutic target for bladder cancer treatment.
Area of Science:
- Molecular Biology
- Oncology
- Genetics
Background:
- hMex-3A, identified from The Cancer Genome Atlas (TCGA) database, is investigated for its role in human bladder cancer.
- Understanding the biological activities and mechanisms of hMex-3A is crucial for developing novel bladder cancer therapies.
Purpose of the Study:
- To investigate the effects of small interfering RNA (siRNA) targeting hMex-3A on the biological activities of human bladder cancer cells.
- To explore the underlying mechanism of hMex-3A in bladder carcinogenesis for the first time.
Main Methods:
- Utilized TCGA database to select hMex-3A as the research object.
- Established two groups: negative control and hMex-3A-siRNA-transfected cells (5637 and T24 cell lines).
- Assessed cell proliferation using Celigo Cell Counting and detected apoptosis via flow cytometry post-transfection.
Main Results:
- Achieved knockdown rates of 74% (5637) and 68% (T24) for hMex-3A.
- hMex-3A siRNA significantly reduced cell viability in 5637 cells (P < 0.05) but not in T24 cells (P > 0.05).
- Flow cytometry revealed significantly increased apoptosis in hMex-3A-siRNA-transfected cells after 5 days (P < 0.05).
- Mex-3A protein expression was significantly higher in bladder carcinoma tissue compared to para-cancerous tissue (P < 0.05).
Conclusions:
- siRNA targeting hMex-3A effectively inhibits cell proliferation and promotes apoptosis in 5637 bladder cancer cells.
- hMex-3A plays a significant role in bladder carcinogenesis.
- hMex-3A represents a potential therapeutic target for bladder cancer treatment.
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