Cell-free chitosan/silk fibroin/bioactive glass scaffolds with radial pore for in situ inductive regeneration of critical-size bone defects

丝素 脚手架 再生(生物学) 生物活性玻璃 细胞外基质 丝绸 壳聚糖 生物医学工程 材料科学 骨愈合 组织工程 化学 生物物理学 复合材料 解剖 细胞生物学 生物 生物化学 医学
作者
Xinsong Zhang,Yijing Xia,Jie Xu,Jie Kang,Xiujuan Li,Yuanjiao Li,Wenpeng Yan,Tian Feng,Bin Zhao,Bing Li,Chunfang Wang,Lu Wang
出处
期刊:Carbohydrate Polymers [Elsevier BV]
卷期号:332: 121945-121945 被引量:14
标识
DOI:10.1016/j.carbpol.2024.121945
摘要

Tissue-engineered is an effective method for repairing critical-size bone defects. The application of bioactive scaffold provides artificial matrix and suitable microenvironment for cell recruitment and extracellular matrix deposition, which can effectively accelerate the process of tissue regeneration. Among various scaffold properties, appropriate pore structure and distribution have been proven to play a crucial role in inducing cell infiltration differentiation and in-situ tissue regeneration. In this study, a chitosan (CS)/silk fibroin (SF)/bioactive glass (BG) composite scaffold with distinctive radially oriented pore structure was constructed. The composite scaffolds had stable physical and chemical properties, a unique pore structure of radial arrangement from the center to the periphery and excellent mechanical properties. In vitro biological studies indicated that the CS/ SF/ BG scaffold could promote osteogenic differentiation of bone marrow mesenchymal stem cells (BMSCs) and the expression of related genes due to the wide range of connected pore structures and released active elements. Furthermore, in vivo study showed CS/ SF/ BG scaffold with radial pores was more conducive to the repair of skull defects in rats with accelerated healing speed during the bone tissue remodeling process. These results demonstrated the developed CS/SF/BG scaffold would be a promising therapeutic strategy for the repair of bone defects regeneration.

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