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Updated: Aug 13, 2026

Contrast Ultrasound Targeted Treatment of Gliomas in Mice via Drug-Bearing Nanoparticle Delivery and Microvascular Ablation
Published on: December 15, 2010
Functionalized nanogels carrying an anticancer microRNA for glioblastoma therapy
Zohar Shatsberg1, Xuejiao Zhang2, Paula Ofek1
1Department of Physiology and Pharmacology, Sackler School of Medicine, Tel Aviv University, Tel Aviv, Israel.
Abstract:
Glioblastoma Multiforme (GBM) is one of the most aggressive forms of all cancers. The median survival with current standard-of-care radiation and chemotherapy is about 14months. GBM is difficult to treat due to heterogeneity in cancer cell population. MicroRNA-based drugs have rapidly become a vast and burgeoning field due to the ability of a microRNA (miRNA) to target many genes involved in key cellular pathways. However, in vivo delivery of miRNA remains a crucial challenge for its therapeutic success. To bypass this shortcoming, we designed polymeric nanogels (NGs), which are based on a polyglycerol-scaffold, as a new strategy of miRNA delivery for GBM therapy. We focused on miR-34a, which is known for its key role in important oncogenic pathways and its tumor suppression ability in GBM and other cancers. We evaluated the capability of six NG derivatives to complex with miR-34a, neutralize its negative charge and deliver active miRNA to the cell cytoplasm. Human U-87 MG GBM cells treated with our NG-miR-34a nano-polyplexes showed remarkable downregulation of miR-34a target genes, which play key roles in the regulation of apoptosis and cell cycle arrest, and induce inhibition of cells proliferation and migration. Administration of NG-miR-34a nano-polyplexes to human U-87 MG GBM-bearing SCID mice significantly inhibited tumor growth as opposed to treatment with NG-negative control miR polyplex or saline. The comparison between different polyplexes highlighted the key features for the rational design of polymeric delivery systems for oligonucleotides. Taken together, we expect that this new therapeutic approach will pave the way for safe and efficient therapies for GBM.
Insights
New polymeric nanogels effectively deliver miR-34a to treat glioblastoma multiforme (GBM) in mice. This novel approach inhibits GBM cell proliferation and migration, offering a promising therapeutic strategy for this aggressive brain cancer.
Area of Science:
- Biomedical Engineering
- Oncology
- Nanotechnology
Background:
- Glioblastoma multiforme (GBM) is a highly aggressive brain cancer with poor prognosis.
- Current treatments offer limited survival benefits due to tumor heterogeneity.
- MicroRNA (miRNA) therapeutics show promise but face challenges in in vivo delivery.
Purpose of the Study:
- To develop and evaluate polymeric nanogels (NGs) for targeted delivery of miR-34a in GBM therapy.
- To assess the efficacy of NG-miR-34a nano-polyplexes in inhibiting GBM cell growth and migration.
- To investigate the potential of this novel nanogel system for safe and efficient GBM treatment.
Main Methods:
- Design of polyglycerol-scaffold-based polymeric nanogels (NGs).
- Complexation of miR-34a with NG derivatives to form nano-polyplexes.
- In vitro evaluation using human U-87 MG GBM cells to assess gene downregulation, apoptosis, cell cycle arrest, proliferation, and migration inhibition.
- In vivo studies using U-87 MG GBM-bearing SCID mice to evaluate tumor growth inhibition.
Main Results:
- NG-miR-34a nano-polyplexes successfully delivered active miR-34a into GBM cells.
- Significant downregulation of miR-34a target genes involved in apoptosis and cell cycle regulation was observed.
- Inhibition of GBM cell proliferation and migration in vitro.
- Significant inhibition of tumor growth in vivo compared to control groups.
Conclusions:
- Polymeric nanogels provide an effective platform for in vivo delivery of miRNA therapeutics for GBM.
- NG-miR-34a nano-polyplexes demonstrate significant anti-tumor activity against GBM.
- This approach represents a promising strategy for developing safer and more efficient GBM therapies.
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