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Updated: Oct 6, 2026

Integrated Bone Formation Through In Vivo Endochondral Ossification Using Mesenchymal Stem Cells
Published on: July 14, 2023
Hypoxia-programmed apoptotic-mimetic M2 macrophage-derived small extracellular vesicles for hydrogel-mediated
Hao Pan1,2, Jiefeng Huang3, Haoze Zhu1
1Department of Orthopaedic Surgery, Department of Wound Healing, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, Zhejiang, 325000, China.
Abstract:
Effective regeneration of critical-sized bone defects requires the coordinated reconstruction of immune homeostasis, vascular networks, and osteogenic matrix formation. However, conventional bone-regenerative materials frequently provide structural support or single-pathway osteoinduction, while failing to actively orchestrate the multicellular repair microenvironment. Here, we develop a hydrogel-assisted immunoregenerative strategy based on hypoxia-programmed apoptotic-mimetic small extracellular vesicles derived from M2-like macrophages. Interleukin-4-polarized macrophages were subjected to hypoxic preconditioning to generate M2-HP-Apo-sEVs with increased phosphatidylserine exposure, enhanced cellular internalization, and amplified immunomodulatory potency. Compared with normoxic M2-sEVs, M2-HP-Apo-sEVs more effectively reprogrammed inflammatory macrophages toward a pro-resolving phenotype, suppressed inflammatory cytokine production, and enhanced reparative cytokine secretion. The vesicles further promoted osteogenic differentiation of bone marrow mesenchymal stem cells and stimulated endothelial migration and capillary-like network formation, demonstrating coordinated osteo-immuno-angiogenic activity. To enable sustained local delivery, M2-HP-Apo-sEVs were incorporated into photocrosslinkable GelMA hydrogels and implanted into critical-sized calvarial defects. The GelMA-M2-HP-Apo-sEV system substantially enhanced bone regeneration, vascularization, and osteogenic matrix deposition while attenuating local inflammation. This work establishes a cell-free vesicle-hydrogel platform that integrates donor-cell hypoxic programming, apoptotic-mimetic membrane signaling, and local biomaterial delivery for immunoregenerative bone repair.