Trilayered Biomimetic Hydrogel Scaffolds with Dual-differential Microenvironment for Articular Osteochondral Defect Repair

软骨发生 脚手架 软骨 生物医学工程 关节软骨修复 明胶 化学 材料科学 甲基丙烯酸缩水甘油酯 自愈水凝胶 关节软骨 生物物理学 骨关节炎 解剖 病理 复合材料 聚合物 生物化学 高分子化学 共聚物 医学 生物 替代医学
作者
Hongying Chen,Jinyi Huang,Xiaomeng Li,Weiwei Zhao,Yujie Hua,Zhenfeng Song,Xianwei Wang,Zhikun Guo,Guangdong Zhou,Wenjie Ren,Yongkun Sun
出处
期刊:Materials today bio [Elsevier]
卷期号:26: 101051-101051 被引量:2
标识
DOI:10.1016/j.mtbio.2024.101051
摘要

Commonly, articular osteochondral tissue exists significant differences in physiological architecture, mechanical function, and biological microenvironment. However, the development of biomimetic scaffolds incorporating upper cartilage, middle tidemark-like, and lower subchondral bone layers for precise articular osteochondral repair remains elusive. This study proposed here a novel strategy to construct the trilayered biomimetic hydrogel scaffolds with dual-differential microenvironment of both mechanical and biological factors. The cartilage-specific microenvironment was achieved through the grafting of kartogenin (KGN) into gelatin via p-hydroxyphenylpropionic acid (HPA)-based enzyme crosslinking reaction as the upper cartilage layer. The bone-specific microenvironment was achieved through the grafting of atorvastatin (AT) into gelatin via dual-crosslinked network of both HP-based enzyme crosslinking and glycidyl methacrylate (GMA)-based photo-crosslinking reactions as the lower subchondral bone layer. The introduction of tidemark-like middle layer is conducive to the formation of well-defined cartilage-bone integrated architecture. The in vitro experiments demonstrated the significant mechanical difference of three layers, successful grafting of drugs, good cytocompatibility and tissue-specific induced function. The results of in vivo experiments also confirmed the mechanical difference of the trilayered bionic scaffold and the ability of inducing osteogenesis and chondrogenesis. Furthermore, the articular osteochondral defects were successfully repaired using the trilayered biomimetic hydrogel scaffolds by the activation of endogenous recovery, which offers a promising alternative for future clinical treatment.

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