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Updated: May 13, 2026

Use of Human Perivascular Stem Cells for Bone Regeneration
Published on: May 25, 2012
Hierarchical periosteum-bone composite scaffold with staged release of dexamethasone and endothelial cell derivatives
Chenghao Yu1,2, Yuanfei Wang3, Lei Xie2
1Medical Research Center, The Affiliated Hospital of Qingdao University, Qingdao University, Qingdao, 266000, China.
Abstract:
Bone tissue engineering represents a promising approach for developing multifunctional biomaterials to facilitate bone regeneration. In this study, we designed a hierarchically composite scaffold that mimics both the periosteum and bone to investigate its effectiveness in repairing critical-sized bone defects. The periosteal layer of the bionic bilayered scaffold was created using a nonwoven mat of core-shell structured nanofibers. The fiber core consisted of a methylpropionylated gelatin (GelMA) hydrogel that encapsulated endothelial cell derivatives (ECd), while the shell was composed of a blend of poly(L-lactide-co-ε-caprolactone), bioactive glass (BG), and dexamethasone (DEX), enabling the staged release of the payloads. Then, a bulk of GelMA/BG/DEX hydrogel was integrated with the periosteal layer to construct a hierarchical periosteum-bone composite scaffold. Such a scaffold facilitated revascularization, anti-inflammation, and the promotion of mature bone formation through the biomimetic properties of organic-inorganic hybrid components and a three-dimensional porous structure, as well as the dual effects of staged release of DEX and ECd. In vivo, the scaffold significantly promoted repair of a 6-mm rat calvarial defect, accompanied by up-regulated expression of CD31, OPN, and type I collagen. Transcriptome sequencing analysis also revealed that the repair process is closely associated with the JAK2-STAT signaling pathway. Collectively, this bionic hierarchical scaffold enhanced critical-sized bone defect repair through synergistic multifunctional regulation, including enhanced angiogenesis, modulation of inflammation, and efficient osteogenic differentiation, demonstrating broad and promising clinical translation potential.
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