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Published on: August 24, 2018
GelMA Hydrogel Loading circNEFM-Engineered Exosomes Inhibits Glioma Growth
Songning Fu1, Zhisen Tian2, Lu Liu3
1Department of Spine Surgery, The First Hospital of Jilin University, Changchun, Jilin 130021, China.
Abstract:
Glioma is a highly malignant tumor of the central nervous system characterized by high morbidity, substantial drug resistance, and poor prognosis. Therapeutic challenges stem from the invasive growth of tumor cells, limited drug penetration through the blood-brain barrier (BBB), and widespread drug resistance induced by the tumor microenvironment. In recent years, biotherapeutic strategies based on the biological characteristics of circular RNAs (circRNAs) have emerged as promising avenues for glioma management. circNEFM functions as a competitive endogenous RNA (ceRNA) by sponging miR-1248 and miR-1236, thereby upregulating the expression of BCL6B and C1orf115. This molecular mechanism of circNEFM effectively inhibits tumor proliferation while sensitizing glioma cells to chemotherapy. However, conventional delivery systems have inherent limitations, including short systemic circulation time and inadequate local drug concentration. To overcome these challenges, in this study, we engineered a multifunctional GelMA hydrogel scaffold system that integrates three key advantages: the innate ability of exosomes to traverse the BBB while protecting their cargo from enzymatic degradation, aptamer-mediated precise tumor targeting, and the sustained release profile of GelMA hydrogels. This composite scaffold exhibited excellent biomechanical properties and enabled the controlled release of engineered exosomes loaded with circNEFM (exo-circNEFM). Notably, aptamer-functionalized exosomes exhibited enhanced specificity to glioma cells, leading to significant inhibition of cell proliferation through circNEFM-mediated pathways and effective reversal of chemoresistance. This innovative therapeutic platform represents a novel technological solution with considerable translational potential for glioma treatment.
Insights
Engineered exosomes carrying circNEFM, delivered via a hydrogel scaffold, effectively target glioma cells. This novel therapy inhibits tumor growth and overcomes chemotherapy resistance by navigating the blood-brain barrier.
Area of Science:
- Neuro-oncology
- Biomaterials Science
- Molecular Biology
Background:
- Glioma presents significant therapeutic challenges due to its malignancy, invasiveness, and drug resistance.
- The blood-brain barrier (BBB) limits effective drug delivery to brain tumors.
- Circular RNAs (circRNAs) show potential as therapeutic agents for glioma.
Purpose of the Study:
- To develop an advanced delivery system for circNEFM to treat glioma.
- To overcome limitations of conventional drug delivery for brain tumors.
- To investigate the therapeutic efficacy of engineered exosomes loaded with circNEFM.
Main Methods:
- Engineered a multifunctional GelMA hydrogel scaffold system.
- Utilized exosomes for blood-brain barrier (BBB) penetration and cargo protection.
- Incorporated aptamers for precise glioma cell targeting.
- Loaded engineered exosomes with circNEFM (exo-circNEFM).
Main Results:
- The composite scaffold demonstrated excellent biomechanical properties and sustained release of exo-circNEFM.
- Aptamer-functionalized exosomes showed enhanced specificity for glioma cells.
- Therapeutic intervention significantly inhibited glioma cell proliferation via circNEFM pathways.
- Chemoresistance in glioma cells was effectively reversed.
Conclusions:
- The engineered GelMA hydrogel/exosome system provides a promising platform for glioma treatment.
- This novel approach enhances circNEFM delivery, targeting, and therapeutic efficacy.
- The technology holds significant translational potential for managing malignant brain tumors.

