September 2026 in “Biomedicine & Pharmacotherapy” This study found that a newly developed ultrasound-responsive hydrogel, incorporating ADSC-derived exosome nanobubbles, substantially improved wound healing in rats by enhancing skin closure, re-epithelialization, and hair follicle regeneration, while potentially reducing scar formation.
May 2025 in “International Journal of Molecular Sciences” This study found that exosomes and secretome derived from rat hair follicle stem cells show promising potential for wound healing and tissue repair, demonstrating significant wound closure and suggesting their broader applicability in regenerative medicine.
22 citations
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November 2024 in “Bioactive Materials” This study found that 3D-printed polyamine-modified hydrogels facilitate M2 macrophage polarization and exosome secretion, enhancing skin cell compatibility and promoting wound healing and hair follicle induction in an animal model through specific signaling pathways, suggesting potential for skin disorder therapies.
This study suggests that bio-nanovesicles, such as exosomes and microvesicles, may enhance skin and hair follicle regeneration by modulating key signaling pathways, potentially overcoming the limitations of conventional treatments for alopecia and chronic skin diseases.
4 citations
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January 2025 in “Frontiers in Pharmacology” This review discusses the role of multiomics in understanding skin repair and regeneration mechanisms and reports no new results; the authors suggest it may lead to personalized medicine advancements and improved treatments.