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High Throughput Characterization of Adult Stem Cells Engineered for Delivery of Therapeutic Factors for Neuroprotective Strategies
Published on: January 4, 2015
Engineered extracellular vesicles for targeted FGF20 delivery enhance neuroplasticity and functional recovery in
Shufei Guo1, Zhengyi Wang2, Ruiqing Shi3
1Oujiang Laboratory (Zhejiang Lab for Regenerative Medicine, Vision, and Brain Health), State Key Laboratory of Macromolecular Drugs and Large-scale Preparation, School of Pharmaceutical Sciences, Wenzhou Medical University, Wenzhou 325035, China; Pingyang Affiliated Hospital of Wenzhou Medical University, Wenzhou 325400, China.
Abstract:
Stroke is the second leading cause of death and the primary cause of disability worldwide, yet effective treatments to restore neurological function remain limited. Fibroblast growth factor 20 (FGF20), a promising neurotrophic factor with demonstrated efficacy in neurological disorders, faces a critical translational barrier due to its poor blood-brain barrier (BBB) permeability. To address this limitation, we developed genetically engineered rabies virus glycoprotein (RVG)-modified extracellular vesicles loaded with FGF20 (RVG-FGF20-EVs) for targeted ischemic brain delivery. Systemic administration of RVG-FGF20-EVs in a mouse middle cerebral artery occlusion (MCAO) model significantly reduced infarct volume, enhanced neuroplasticity, and improved long-term functional recovery. Mechanistic investigations revealed that RVG-FGF20-EVs exhibit a distinct miRNA cargo profile, characterized by significant upregulation of miR-181b-5p. Dual-luciferase reporter assays confirmed phosphatase and tensin homolog (PTEN) as a direct target of miR-181b-5p. Our findings demonstrate that RVG-FGF20-EVs promote neuroplasticity and functional recovery post-stroke, mediated at least partially through the miR-181b-5p/PTEN pathway. This study represents the first application of engineered RVG-EVs for efficient FGF20 brain delivery for efficient FGF20 delivery, establishing their unique efficacy in treating ischemic stroke and providing a multifunctional platform for treating neurological disorders. Further optimization and standardization are needed to translate this promising platform into clinical applications. In conclusion, RVG-FGF20-EVs constitute a promising novel therapeutic strategy for ischemic stroke.

