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Updated: May 13, 2026

Genome-wide Screen for miRNA Targets Using the MISSION Target ID Library
Published on: April 6, 2012
The microRNA miR-34a inhibits prostate cancer stem cells and metastasis by directly repressing CD44
Can Liu1, Kevin Kelnar, Bigang Liu
1Department of Molecular Carcinogenesis, the University of Texas M.D. Anderson Cancer Center, Science Park, Smithville, Texas, USA.
Abstract:
Cancer stem cells (CSCs), or tumor-initiating cells, are involved in tumor progression and metastasis. MicroRNAs (miRNAs) regulate both normal stem cells and CSCs, and dysregulation of miRNAs has been implicated in tumorigenesis. CSCs in many tumors--including cancers of the breast, pancreas, head and neck, colon, small intestine, liver, stomach, bladder and ovary--have been identified using the adhesion molecule CD44, either individually or in combination with other marker(s). Prostate CSCs with enhanced clonogenic and tumor-initiating and metastatic capacities are enriched in the CD44(+) cell population, but whether miRNAs regulate CD44(+) prostate cancer cells and prostate cancer metastasis remains unclear. Here we show, through expression analysis, that miR-34a, a p53 target, was underexpressed in CD44(+) prostate cancer cells purified from xenograft and primary tumors. Enforced expression of miR-34a in bulk or purified CD44(+) prostate cancer cells inhibited clonogenic expansion, tumor regeneration, and metastasis. In contrast, expression of miR-34a antagomirs in CD44(-) prostate cancer cells promoted tumor development and metastasis. Systemically delivered miR-34a inhibited prostate cancer metastasis and extended survival of tumor-bearing mice. We identified and validated CD44 as a direct and functional target of miR-34a and found that CD44 knockdown phenocopied miR-34a overexpression in inhibiting prostate cancer regeneration and metastasis. Our study shows that miR-34a is a key negative regulator of CD44(+) prostate cancer cells and establishes a strong rationale for developing miR-34a as a novel therapeutic agent against prostate CSCs.
Insights
MicroRNA 34a (miR-34a) inhibits prostate cancer stem cells (CSCs) by targeting CD44. Restoring miR-34a levels in prostate CSCs can reduce metastasis and improve survival, suggesting its therapeutic potential.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Cancer stem cells (CSCs) drive tumor progression and metastasis.
- MicroRNAs (miRNAs) regulate stem cell function, and their dysregulation is linked to cancer.
- CD44 is a marker for CSCs in various cancers, including prostate cancer.
Purpose of the Study:
- To investigate the role of miRNAs in regulating CD44-positive (CD44+) prostate CSCs and metastasis.
- To determine if miR-34a regulates CD44+ prostate cancer cells and prostate cancer metastasis.
Main Methods:
- Expression analysis of miR-34a in CD44+ prostate CSCs.
- Functional assays involving enforced miR-34a expression or antagomir treatment.
- In vivo studies using xenograft models and systemic delivery of miR-34a.
- Identification and validation of CD44 as a direct target of miR-34a.
Main Results:
- miR-34a was underexpressed in CD44+ prostate CSCs.
- Enforced miR-34a expression inhibited CSCs' clonogenic, regenerative, and metastatic capacities.
- miR-34a antagomirs promoted tumor development and metastasis in CD44- cells.
- Systemic miR-34a delivery reduced metastasis and improved survival in mice.
- CD44 was validated as a direct target of miR-34a, and its knockdown mimicked miR-34a's effects.
Conclusions:
- miR-34a is a key negative regulator of CD44+ prostate CSCs.
- miR-34a plays a critical role in controlling prostate cancer metastasis.
- miR-34a represents a promising therapeutic candidate for targeting prostate CSCs.
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