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Improved accumulation of TGF-β by photopolymerized chitosan/silk protein bio-hydrogel matrix to improve differentiations of mesenchymal stem cells in articular cartilage tissue regeneration

丝素 壳聚糖 间充质干细胞 再生(生物学) 化学 软骨 组织工程 丝绸 生物医学工程 甲基丙烯酸酯 材料科学 聚合物 生物物理学 高分子化学 生物化学 解剖 细胞生物学 复合材料 有机化学 生物 聚合 医学
作者
Jiahua Shao,Zheru Ding,Lexiang Li,Yi Chen,Jun Zhu,Qirong Qian
出处
期刊:Journal of Photochemistry and Photobiology B-biology [Elsevier]
卷期号:203: 111744-111744 被引量:22
标识
DOI:10.1016/j.jphotobiol.2019.111744
摘要

Articular cartilage regeneration is a challenging process due to its inadequate ability of self-recovering biological mechanisms. The progresses of cartilage tissue engineering is supported to overwhelmed the repairing difficulties and degenerative diseases. The main goal of the present study is to design biomaterials with suitable physico-chemical, mechanical and biological properties for the carrier of growth factor and improving differentiation of mesenchymal stem cell into damaged cartilage tissues. Herein, TGF-β loaded hydrogel network was prepared through the chemical interactions between vinyl group of natural polymers. Fourier-transform infrared spectroscopy results show the characteristic peaks at 3074 cm−1, 1713 cm−1, and 810 cm−1, which confirm the existence of the vinyl group and successful formation of maleoyl functionalized Chitosan (MCh). The obtained MCh was freely dissolved in the distilled water up to 8% (w/v). X-ray photoelectron spectroscopy survey spectral results show a peak at 289.0 eV which revealed that the OCO and DS were 1.2% and also evidenced the methacryl substitution of Silk fibroin (SF) nanoformulations. The weight loss and mechanical test were analyzed and the results showed that MSF acts as a foremost crosslinking point with MCh through the reaction between the methacrylate groups of MSF and maleoyl groups of MCh which led to enhancing the density and improved the compressive strength. The maximum drug release activity was recorded in the TGF-β loaded [email protected] hydrogel compared to bare MCh hydrogel. Further, the TGF-β loaded [email protected] MSF hydrogel exhibited the cell viability percentage nearly at 79–102% for MC3T3-E1 and 88–104% for BMDSCs. Similarly, the TGF-β loaded [email protected] exhibited the highest inhibitory activity against E. coli (83%) than S. aureus (67%). Overall, this study concluded the TGF-β loaded [email protected] showed better biocompatibility and could be utilized in the field of cartilage tissue engineering.
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