Bioactive Glass-Reinforced Hybrid Microfibrous Spheres Promote Bone Defect Repair via Stem Cell Delivery

Renjie Chen, Yuanfei Wang, Chenghao Yu, Xiaopei Zhang, Yawen Wang, Tengbo Yu, Tong Wu

Advanced Fiber Materials ›› 2024

Advanced Fiber Materials ›› 2024 DOI: 10.1007/s42765-024-00481-x
Research Article

Bioactive Glass-Reinforced Hybrid Microfibrous Spheres Promote Bone Defect Repair via Stem Cell Delivery

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Abstract

The development of biomimetic scaffolds that can promote osteogenic induction and vascularization is of great importance for the repair of large bone defects. In the present study, inorganic bioactive glass (BG) and organic polycaprolactone (PCL) are effectively combined by electrospinning and electrospray techniques to construct three-dimensional (3D) BG/PCL microfibrous spheres for the repair of bulk bone defects. The hybrid fibers, as well as the as-obtained 3D structure, can mimic the composition and architecture of native bone tissues. Furthermore, the BG/PCL microfibrous spheres show excellent biocompatibility and provide sufficient space and attachment sites for cell growth. The osteogenic differentiation of bone mesenchymal stem cells is also effectively facilitated when cultured on such hybrid microfibrous spheres. In vivo investigation utilizing rat femoral condyle bone defect models demonstrates that the BG/PCL microfibrous spheres loaded with bone mesenchymal stem cells can induce angiogenesis and promote the upregulation of bone-related protein expression, thus effectively facilitating bone regeneration at the defect site. The collective findings indicate that such BG/PCL hybrid microfibrous spheres have the potential to be effective carriers of stem cells. The microfibrous spheres loaded with stem cells have promising potential to be utilized as implantable biomaterials for the repair of bone defects.

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Renjie Chen, Yuanfei Wang, Chenghao Yu, Xiaopei Zhang, Yawen Wang, Tengbo Yu, Tong Wu. Bioactive Glass-Reinforced Hybrid Microfibrous Spheres Promote Bone Defect Repair via Stem Cell Delivery. Advanced Fiber Materials, 2024 https://doi.org/10.1007/s42765-024-00481-x
Funding
Special Funds for Taishan Scholars Project of Shandong Province(No. tsqn202211125); Natural Science Foundation of Shandong Province(ZR2021YQ17); National Natural Science Foundation of China(82001970); Young Elite Scientists Sponsorship Program by CAST(No. YESS20200097); Shandong Province key research and development support project(2021SFGC0502); Qingdao Key Health Discipline Development Fund(2022-2024); Qingdao Clinical Research Center for Oral Diseases(22-3-7-lczx-7-nsh); Shandong Provincial Key Medical and Health Discipline of Oral Medicine(2024-2026)

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