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Updated: Apr 4, 2026

Induction of Mesenchymal-Epithelial Transitions in Sarcoma Cells
Published on: April 7, 2017
Epigenetic silencing of Kruppel like factor-3 increases expression of pro-metastatic miR-182
Mohit Sachdeva1, Rebecca D Dodd1, Zhiqing Huang2
1Department of Radiation Oncology, Duke University Medical Center, Durham, NC 27710, USA.
Abstract:
Accumulating evidence indicates that microRNAs (miRs) regulate cancer metastasis. We have shown that miR-182 drives sarcoma metastasis in vivo by coordinated regulation of multiple genes. Recently, we also demonstrated that in a subset of primary sarcomas that metastasize to the lung, miR-182 expression is elevated through binding of MyoD1 to the miR-182 promoter. However, it is not known if there are also transcription factors that inhibit miR-182 expression. Defining negative regulators of miR-182 expression may help explain why some sarcomas do not metastasize and may also identify pathways that can modulate miR-182 for therapeutic benefit. Here, we use an in silico screen, chromatin-immunoprecipitation, and luciferase reporter assays to discover that Kruppel like factor-3 (Klf-3) is a novel transcriptional repressor of miR-182. Knockdown of Klf-3 increases miR-182 expression, and stable overexpression of Klf-3, but not a DNA-binding mutant Klf-3, decreases miR-182 levels. Klf-3 expression is downregulated in both primary mouse and human metastatic sarcomas, and Klf-3 levels negatively correlate with miR-182 expression. Interestingly, Klf-3 also negatively regulates MyoD1, suggesting an alternative mechanism for Klf-3 to repress miR-182 expression in addition to direct binding of the miR-182 promoter. Using Methylation Specific PCR (MSP) and pyrosequencing assays, we found that Klf-3 is epigenetically silenced by DNA hypermethylation both in mouse and human sarcoma cells. Finally, we show the DNA methylation inhibitor 5'Azacytidine (Aza) restores Klf-3 expression while reducing miR-182 levels. Thus, our findings suggest that demethylating agents could potentially be used to modulate miR-182 levels as a therapeutic strategy.
Insights
Kruppel like factor-3 (Klf-3) represses miR-182, a microRNA driving sarcoma metastasis. Klf-3 silencing by DNA hypermethylation in sarcomas is reversed by 5'Azacytidine, suggesting a therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- MicroRNAs (miRs) play a critical role in cancer metastasis.
- miR-182 has been identified as a driver of sarcoma metastasis.
- The regulation of miR-182 expression, particularly its negative regulators, is not fully understood.
Purpose of the Study:
- To identify novel transcriptional repressors of miR-182.
- To investigate the role of Kruppel like factor-3 (Klf-3) in regulating miR-182 expression.
- To explore the therapeutic potential of modulating miR-182 in sarcoma.
Main Methods:
- In silico screening, chromatin-immunoprecipitation, and luciferase reporter assays were used to identify Klf-3 as a miR-182 repressor.
- Klf-3 and miR-182 expression levels were analyzed in mouse and human sarcoma samples.
- Methylation Specific PCR (MSP) and pyrosequencing were employed to assess Klf-3 epigenetic silencing.
- The effect of 5'Azacytidine (Aza) on Klf-3 and miR-182 expression was evaluated.
Main Results:
- Klf-3 was identified as a novel transcriptional repressor of miR-182.
- Klf-3 knockdown increased miR-182 expression, while Klf-3 overexpression decreased it.
- Klf-3 expression was downregulated in metastatic sarcomas and negatively correlated with miR-182 levels.
- Klf-3 was found to be epigenetically silenced by DNA hypermethylation in sarcoma cells.
- 5'Azacytidine treatment restored Klf-3 expression and reduced miR-182 levels.
Conclusions:
- Klf-3 acts as a tumor suppressor by inhibiting miR-182-driven sarcoma metastasis.
- Epigenetic silencing of Klf-3 via DNA hypermethylation contributes to sarcoma progression.
- Demethylating agents like 5'Azacytidine represent a potential therapeutic strategy to restore Klf-3 and reduce miR-182 in sarcomas.
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