ArticleJournal of nanobiotechnology2025
Exosome-shuttled miR-5121 from A2 astrocytes promotes BSCB repair after traumatic SCI by activating autophagy in vascular endothelial cells.
Article in Journal of nanobiotechnology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers, 1 of them a synthesis that pooled it.
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Who cites it
7 citing papers in PubMed, 1 synthesis or guideline pooled it.
- Emerging regenerative strategies for spinal cord injury: exosome-derived mechanisms and therapeutic insights.Frontiers in neuroscience · 2025Pooled it
- Glia cell-derived extracellular vesicles as modulators in spinal cord injury repair.Spinal cord · 2026Review
- Dysregulation of exosomal miRNAs in A2 astrocytes under oxygen-glucose deprivation is associated with neuronal pyroptosis: a role for miR-139-5p in targeting NLRP3.Journal of orthopaedic surgery and research · 2026Article
- Exosomes as regenerative therapeutics for spinal cord injury: mechanisms and clinical prospects.Frontiers in medicine · 2026Review
- Roles and regulatory mechanisms of autophagy in the pathology of spinal cord injury.Burns & trauma · 2026Review
- Extracellular vesicle-based therapeutic strategies for spinal tumors and associated nerve damage: advances, challenges, and future directions.Frontiers in cell and developmental biology · 2026Review
- The protective role of nuclear Heme oxygenase-1 in blood-spinal cord barrier after hypoxia in vitro.Scientific reports · 2025Article
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Authors and funding
16 authors.
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Abstract
Spinal cord injury (SCI) is a severe neurological disorder that significantly impacts patients' quality of life. Following SCI, the blood-spinal cord barrier (BSCB) is destroyed, leading to ischemia and hypoxia, which further exacerbates the imbalance in the spinal cord microenvironment. A2-type astrocytes, which arise under ischemic and hypoxic conditions, have been reported to promote SCI repair. However, the roles of exosomes derived from A2 astrocytes (A2-Exos) in SCI have not been explored. This study aims to investigate the role of A2-Exos in SCI repair, particularly in BSCB restoration, and to elucidate its potential mechanisms. GEO database analysis, western blotting, and immunofluorescence were used to detect A2 astrocyte polarization after SCI in mice. In vitro, A2 astrocytes were obtained through hypoxia induction, and A2-Exos were extracted via ultracentrifugation. An in vivo SCI model and a series of in vitro experiments demonstrated the reparative effects of A2-Exos on BSCB following SCI. Furthermore, miRNA sequencing analysis and rescue experiments confirmed the role of miRNAs in A2-Exos-mediated BSCB repair. Finally, luciferase assays and western blotting were performed to investigate the underlying mechanisms. The results showed that A2-Exos promote motor function recovery and BSCB repair in mice following SCI. In vitro, A2-Exos facilitated BSCB reconstruction and endothelial cell autophagy. miRNA sequencing identified miR-5121 as the most significantly enriched miRNA in A2-Exos, suggesting its involvement in BSCB repair and autophagy regulation. AKT2 was identified as a potential downstream target of miR-5121. Functional gain- and loss-of-function experiments further validated the miR-5121/AKT2 axis. Finally, we demonstrated that the AKT2/mTOR/p70S6K pathway may mediate the effects of miR-5121 in A2-Exos on BSCB repair.
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