A Cell‐Free Silk Fibroin Biomaterial Strategy Promotes In Situ Cartilage Regeneration Via Programmed Releases of Bioactive Molecules

丝素 软骨 软骨发生 脚手架 再生(生物学) 透明质酸 组织工程 间充质干细胞 生物材料 材料科学 生物医学工程 纳米纤维 化学 细胞生物学 生物物理学 丝绸 纳米技术 解剖 生物 复合材料 医学
作者
Zhinan Mao,Xuewei Bi,Chengai Wu,Yufeng Zheng,Shunbin Xiong,Su Jun Wu,Juan Guan,Robert O. Ritchie
出处
期刊:Advanced Healthcare Materials [Wiley]
卷期号:12 (1) 被引量:6
标识
DOI:10.1002/adhm.202201588
摘要

Abstract In situ tissue regeneration using cell‐free biofunctional scaffolds has been extensively studied as a promising alternative strategy to promote cartilage repair. In this study, a cartilage‐biomimetic silk fibroin (SF)‐based scaffold with controlled sequential release of two bioactive molecules is developed. Transforming growth factor‐ β 1 (TGF‐ β 1) is initially loaded onto the SF scaffolds by physical absorption, which are then successively functionalized with bone marrow mesenchymal stem cells (BMSCs)‐specific‐affinity peptide (E7) via gradient degradation coating of Silk fibroin Methacryloyl (SilMA)/Hyaluronic acid Methacryloyl (HAMA). Such SF‐based scaffolds exhibit excellent structural stability and catilage‐like mechanical properties, thus providing a desirable 3D microenvironment for cartilage reconstruction. Furthermore, rapid initial release of E7 during the first few days, followed by slow and sustained release of TGF‐ β 1 for as long as few weeks, synergistically induced the recruitment of BMSCs and chondrogenic differentiation of them in vitro. Finally, in vivo studies indicate that the implantation of the biofunctional scaffold markedly promote in situ cartilage regeneration in a rabbit cartilage defect model. It is believed that this cartilage‐biomimetic biofunctional SF‐based scaffold with sequential controlled release of E7 and TGF‐ β 1 may have a promising potential for improved cartilage tissue engineering.
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