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Updated: Feb 18, 2026

MicroRNA Detection in Prostate Tumors by Quantitative Real-time PCR qPCR
Published on: May 16, 2012
miR-564 inhibited metastasis and proliferation of prostate cancer by targeting MLLT3
1Laboratory Medicine, Yidu Central Hospital of Weifang City, Weifang, Shandong, China. wochuizhanzha@163.com.
Objective:
MiR-564 has been discovered to be abnormally expressed in human malignancy. Two recent studies suggested that miR-564 plays a role in tumor inhibition in both lung and breast cancer. However, no evidence reported the mechanism and function of miR-564 in prostate cancer (PCa).
Patients And Methods:
The PCa tissues and their adjacent normal tissues were collected from 50 PCa patients. Expressions of miR-564 in tissues and cells were evaluated with RT-qPCR. The MTT [3-(4,5-dimethylthiazol-2-yl)2,5-diphenyl tetrazolium bromide] assay, flow cytometry and Western-blot analysis, were applied to detect the proliferation, cell cycle progression and the protein expression of PCa cell lines (PC-3 and DU-145). Migration and invasion of PCa cells were analyzed by Transwell assays. Furthermore, the correlation between miR-564 and MLLT3 was assessed by luciferase reporter assay. Also, the PCa cells were transfected with miR-564 mimics control and inhibitor.
Results:
In our present research, miR-564 was found dysregulated in PCa cells and to act as a suppressor in PCa cell proliferation, progression of cell cycle, cell invasion and migration. MLLT3 (also known as Af9) is a proto-oncogene, which has first reported in leukemia, and the regulation of its expression remains incompletely elucidated. Also, it is first reported in our study, suggesting that MLLT3 is a direct target of miR-564. The results also showed a significant negative correlation with miR-564 in PCa cells. Furthermore, up-regulation of MLLT3 attenuates the effects of miR-564 on the ability of PCa cells.
Conclusions:
Our research demonstrated the suppressor function of miR-564 in PCa, revealing restoration of miR-564 as a potential therapeutic strategy for the treatment of PCa.
Insights
MicroRNA-564 (miR-564) suppresses prostate cancer (PCa) progression by inhibiting cell proliferation, cell cycle, invasion, and migration. Restoring miR-564 levels offers a potential therapeutic strategy for PCa treatment.
Area of Science:
- Molecular Biology
- Oncology
- Genetics
Background:
- MicroRNA-564 (miR-564) exhibits altered expression in various human malignancies.
- Previous studies indicate miR-564's tumor-inhibitory role in lung and breast cancers.
- The specific function and mechanism of miR-564 in prostate cancer (PCa) remain unelucidated.
Purpose of the Study:
- To investigate the role and mechanism of miR-564 in prostate cancer (PCa).
- To determine if miR-564 functions as a tumor suppressor in PCa.
- To identify potential molecular targets of miR-564 in PCa.
Main Methods:
- Quantitative real-time PCR (RT-qPCR) to assess miR-564 expression in PCa tissues and cell lines.
- MTT assay, flow cytometry, and Western blot analysis to evaluate proliferation and cell cycle.
- Transwell assays for migration and invasion, and luciferase reporter assays to confirm MLLT3 as a direct target of miR-564.
Main Results:
- miR-564 was found to be dysregulated in PCa tissues and cell lines.
- miR-564 demonstrated significant tumor-suppressive effects, inhibiting PCa cell proliferation, cell cycle progression, invasion, and migration.
- MLLT3 (Af9) was identified as a direct target of miR-564, with a negative correlation observed between their expression levels in PCa.
Conclusions:
- miR-564 acts as a suppressor in prostate cancer.
- MLLT3 is a direct target of miR-564, and its upregulation can counteract miR-564's inhibitory effects.
- Restoration of miR-564 represents a promising therapeutic avenue for prostate cancer treatment.
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