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Updated: Feb 15, 2026

Isolation of Cancer Stem Cells From Human Prostate Cancer Samples
Published on: March 14, 2014
miR-195 inhibits cell proliferation and angiogenesis in human prostate cancer by downregulating PRR11 expression
Chao Cai1, Huichan He1, Xiaolu Duan1
1Department of Urology, Minimally Invasive Surgery Center, The First Affiliated Hospital of Guangzhou Medical University and Guangdong Key Laboratory of Urology, Guangzhou, Guangdong 510230, P.R. China.
Abstract:
hsa-miR-195-5p (miR-195) has been proven to be a critical regulator in the progression of prostate cancer (PCa). To identify additional targets and molecular functions of miR-195, we overexpressed miR-195 by transient oligonucleotide transfection in DU145 and LNCaP cells and examined the effects. RNA-based microarray and dual-luciferase assays were carried out to identify novel targets of miR-195, while in vitro functional assays, a subcutaneous xenograft model, tissue microarray (TMA) analysis and a cohort of publicly available data (Taylor cohort) were used to investigate the biological function and clinical value of miR-195 targeting. The results shown that miR-195 overexpression could markedly suppress cellular proliferation and tube formation compared with miR-negative control. The RNA-based microarray identified a total of 153 differentially regulated genes with fold changes of ≤|1.5|, including 138 (90.2%) downregulated and 15 (9.8%) upregulated genes. Among the downregulated genes, we found that proline-rich protein 11 (PRR11) combined with miR-195 expression (miR-195/PRR11) could be used as an independent predictor of the risk of biochemical recurrence in the Taylor cohort. Additionally, the dual-luciferase assay identified PRR11 as a novel target of miR-195, and the in vitro assays indicated that PRR11 abrogated the suppressive effects of miR-195 on cell proliferation, tube formation and cell cycling. Furthermore, the subcutaneous tumor xenograft model indicated that knockdown of PRR11 inhibited xenograft growth and angiogenesis, while the results of the TMA and Taylor cohort analyses collectively demonstrated that PRR11 expression was upregulated in aggressive tumors and is associated with poor clinical outcome. Taken together, these findings further illustrate the suppressive role of miR-195 in PCa, and indicate a novel role of PRR11 in PCa. Importantly, the newly identified miR-195/PRR11 axis may aid with identifying potential therapeutic targets in PCa.
Insights
MicroRNA-195 (miR-195) suppresses prostate cancer (PCa) progression by targeting proline-rich protein 11 (PRR11). The miR-195/PRR11 axis reveals new therapeutic targets for PCa treatment.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- Prostate cancer (PCa) remains a significant health concern, with microRNAs (miRNAs) playing critical roles in its progression.
- hsa-miR-195-5p (miR-195) is recognized as a key regulator in PCa, but its full range of targets and functions requires further elucidation.
Purpose of the Study:
- To identify novel molecular targets and biological functions of miR-195 in prostate cancer.
- To investigate the clinical significance of the miR-195/PRR11 interaction in PCa progression and patient outcomes.
Main Methods:
- Overexpression of miR-195 in PCa cell lines (DU145, LNCaP) followed by RNA-based microarray analysis.
- Dual-luciferase reporter assays to validate miR-195 targets.
- In vitro functional assays, subcutaneous xenograft models, tissue microarray (TMA) analysis, and public data analysis (Taylor cohort).
Main Results:
- miR-195 overexpression suppressed prostate cancer cell proliferation and tube formation.
- Proline-rich protein 11 (PRR11) was identified as a novel direct target of miR-195 and was downregulated upon miR-195 overexpression.
- PRR11 knockdown inhibited tumor growth and angiogenesis in vivo; high PRR11 expression correlated with aggressive tumors and poor outcomes in clinical cohorts.
Conclusions:
- miR-195 exhibits a suppressive role in prostate cancer progression.
- PRR11 acts as an oncogene in PCa, promoting proliferation, tube formation, and cell cycling.
- The novel miR-195/PRR11 axis offers potential for developing new therapeutic strategies and biomarkers for prostate cancer.
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