Synthesis of aligned porous polyethylene glycol/silk fibroin/hydroxyapatite scaffolds for osteoinduction in bone tissue engineering

丝素 间充质干细胞 碱性磷酸酶 骨钙素 化学 组织工程 体内 细胞外基质 骨桥蛋白 聚乙二醇 细胞生物学 干细胞 生物医学工程 材料科学 免疫学 丝绸 生物化学 生物 医学 生物技术 复合材料
作者
Yuchao Yang,Yanting Feng,Rongmei Qu,Qingtao Li,Dongming Rong,Tingyu Fan,Yiting Yang,Bing Sun,Zhenyu Bi,Asmat Ullah Khan,Ting Deng,Jingxing Dai,Jun Ouyang
出处
期刊:Stem Cell Research & Therapy [Springer Nature]
卷期号:11 (1) 被引量:25
标识
DOI:10.1186/s13287-020-02024-8
摘要

Abstract Background The physical factors of the extracellular matrix have a profound influence on the differentiation behavior of mesenchymal stem cells. In this study, the effect of the biophysical microenvironment on rat bone marrow mesenchymal stem cell (BMSC) osteogenesis was studied both in vitro and in vivo. Methods To prepare cell culture scaffolds of varying stiffness, increasing amounts of hydroxyapatite (HAp) were mixed into a polyethylene glycol/silk fibroin (PEG/SF) solution. The amount of HAp ranged from 25 to 100 mg, which provided for different ratios between HAp and the PEG/SF composite. In vitro, the effect of stiffness on the osteogenic differentiation of rat BMSCs was studied. The outcome measures, which were verified in vivo, included the protein expression of runt-related transcription factor 2 and osteocalcin, alkaline phosphatase activity, and the mRNA expression of osteogenesis-related markers. Results Increasing amounts of HAp resulted in an increased elastic modulus of the cell culture scaffolds. The PEG/SF/HAp fabricated with HAp (50 mg) significantly increased cell adhesion and viability ( p < 0.05) as well as the expression of all the osteogenesis-related markers ( p < 0.05). Conclusions We developed a novel cell culture scaffold and demonstrated that substrate stiffness influenced the osteogenic differentiation of rat BMSCs.

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