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Three-dimensional electrospun nanofibrous scaffolds displaying bone morphogenetic protein-2-derived peptides for the promotion of osteogenic differentiation of stem cells and bone regeneration

明胶 静电纺丝 纳米纤维 骨形态发生蛋白2 化学 生物医学工程 再生医学 再生(生物学) 组织工程 碱性磷酸酶 生物相容性 体内 间充质干细胞 材料科学 纳米技术 体外 细胞生物学 细胞 生物化学 聚合物 生物技术 有机化学 医学 生物
作者
Kaiqiang Ye,Dinghua Liu,Haizhu Kuang,Jiangyu Cai,Weiming Chen,Binbin Sun,Lunguo Xia,Bing Fang,Yosry Morsi,Xiumei Mo
出处
期刊:Journal of Colloid and Interface Science [Elsevier BV]
卷期号:534: 625-636 被引量:124
标识
DOI:10.1016/j.jcis.2018.09.071
摘要

Tissue scaffolds with three-dimensional (3D) nanofibrous biomimetic structures have attracted attention in the field of bone regeneration. In recent years, emerging strategies based on electrospinning technologies have facilitated the preparation of 3D nanofibrous scaffolds. Based on these developments, in this study, 3D scaffolds possessing both nanofibrous morphologies and interconnected pores were fabricated for their potential in bone tissue engineering. By combining homogenizing, freeze-drying, and thermal crosslinking techniques, nano-hydroxyapatite/PLLA/gelatin (nHA/PLA/GEL) 3D nanofibrous scaffolds were prepared using pre-fabricated electrospun nanofibers. Then, utilizing a polydopamine (pDA)-assisted coating strategy, bone morphogenetic protein-2 (BMP-2)-derived peptides were further immobilized onto the 3D scaffolds to obtain the resulting nano-hydroxyapatite/PLLA/gelatin-peptide (nHA/PLA/GEL-PEP) 3D nanofibrous scaffolds capable of sustained release. Bone mesenchymal stem cells (BMSCs) were cultured on the 3D nanofibrous scaffolds, then relative cell viability, alkaline phosphatase (ALP) activity, and gene expression assays were performed to study the effects of the scaffolds on cell growth and osteogenic differentiation in vitro. Furthermore, the ability of bone formation in vivo was evaluated using a rat cranial bone defect model. In vitro and in vivo results demonstrated that the 3D nanofibrous scaffolds incorporated with nHA and BMP-2 peptides exhibited favorable biocompatibility and osteoinductivity. Therefore, these nanofibrous scaffolds have excellent potential in bone regenerative medicine.

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