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Updated: Jun 3, 2025

Characterization of Functionally Associated miRNAs in Glioblastoma and their Engineering into Artificial Clusters for Gene Therapy
Published on: October 4, 2019
miR-217-5p NanomiRs Inhibit Glioblastoma Growth and Enhance Effects of Ionizing Radiation via EZH2 Inhibition and
Jack Korleski1,2, Sweta Sudhir1, Yuan Rui3,4
1Hugo W. Moser Research Institute at Kennedy Krieger, Baltimore, MD 21205, USA.
Abstract:
Background/Objectives: CSCs are critical drivers of the tumor and stem cell phenotypes of glioblastoma (GBM) cells. Chromatin modifications play a fundamental role in driving a GBM CSC phenotype. The goal of this study is to further our understanding of how stem cell-driving events control changes in chromatin architecture that contribute to the tumor-propagating phenotype of GBM. Methods: We utilized computational analyses to identify a subset of clinically relevant genes that were predicted to be repressed in a Polycomb repressive complex 2 (PRC2)-dependent manner in GBM upon induction of stem cell-driving events. These associations were validated in patient-derived GBM neurosphere models using state-of-the-art molecular techniques to express, silence, and measure microRNA (miRNA) and gene expression changes. Advanced Poly(β-amino ester) nanoparticle formulations (PBAEs) were used to deliver miRNAs in vivo to orthotopic human GBM tumor models. Results: We show that glioma stem cell (GSC) formation and tumor propagation involve the crosstalk between multiple epigenetic mechanisms, resulting in the repression of the miRNAs that regulate PRC2 function and histone H3 lysine 27 tri-methylation (H3K27me3). We also identified miR-217-5p as an EZH2 regulator repressed in GSCs and showed that miR-217-5p reconstitution using advanced nanoparticle formulations re-activates the PRC2-repressed genes, inhibits GSC formation, impairs tumor growth, and enhances the effects of ionizing radiation in an orthotopic model of GBM. Conclusions: These findings suggest that inhibiting PRC2 function by targeting EZH2 with miR-217-5p advanced nanoparticle formulations could have a therapeutic benefit in GBM.
Insights
Targeting EZH2 with miR-217-5p nanoparticles inhibits glioblastoma stem cell growth and enhances radiation therapy. This approach offers a potential new treatment for glioblastoma (GBM).
Area of Science:
- Neuro-oncology
- Epigenetics
- Cancer Stem Cells
Background:
- Glioblastoma (GBM) stem cells (CSCs) drive tumor growth and stem cell phenotypes.
- Chromatin modifications are crucial in establishing the GBM CSC phenotype.
- Understanding how stem cell events alter chromatin architecture is key to targeting GBM propagation.
Purpose of the Study:
- Investigate how stem cell-driving events control chromatin architecture changes in GBM.
- Identify mechanisms contributing to the tumor-propagating phenotype of GBM CSCs.
- Explore therapeutic strategies targeting epigenetic regulation in GBM.
Main Methods:
- Computational analysis to identify PRC2-repressed genes in GBM.
- Validation in patient-derived GBM neurosphere models using miRNA and gene expression analysis.
- In vivo delivery of miRNAs via Poly(β-amino ester) nanoparticle formulations (PBAEs) in orthotopic GBM models.
Main Results:
- Glioblastoma stem cell (GSC) formation involves epigenetic crosstalk, repressing miRNAs that regulate Polycomb repressive complex 2 (PRC2) and H3K27me3.
- miR-217-5p, an EZH2 regulator, is repressed in GSCs.
- miR-217-5p reconstitution via nanoparticles reactivated PRC2-repressed genes, inhibited GSC formation, reduced tumor growth, and enhanced radiation therapy efficacy.
Conclusions:
- Inhibiting PRC2 by targeting EZH2 with miR-217-5p nanoparticle formulations shows therapeutic potential for GBM.
- This strategy offers a novel approach to combat GBM by targeting epigenetic dysregulation.
- The findings highlight the role of miRNA-mediated epigenetic control in GBM stem cell biology.
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