脚手架
纳米纤维
骨愈合
材料科学
丝素
明胶
松质骨
生物医学工程
化学
组织工程
骨组织
壳聚糖
骨细胞
降级(电信)
多孔性
生物物理学
生物材料
活力测定
自愈水凝胶
间充质干细胞
锌
再生医学
再生(生物学)
纳米技术
骨生长
组织修复
细胞外
纤维素
作者
Junqin Wang,Maoli Wang,Chuanxin Zhong,Jianfeng Yan,Jian He,Xiaoyin Huang,Ju Fang,Fuzeng Ren
标识
DOI:10.1002/adhm.202505864
摘要
ABSTRACT Biodegradable metal scaffolds hold great promise for bone repair, yet their clinical translation is hindered by uncontrolled corrosion, rapid ion release, and adverse immune responses, particularly in porous architectures. Here, we report a hybrid scaffold that integrates a cancellous bone–mimicking porous zinc framework with an interpenetrating poly(vinyl alcohol)/TEMPO‐oxidized cellulose nanofiber (PVA/TOCN) hydrogel. This design exploits hydroxyl‐ and carboxyl‐mediated chelation of Zn 2 + to regulate corrosion kinetics and stabilize ion release, while simultaneously reinforcing the hydrogel through secondary ionically crosslinked networks that provide extracellular matrix‐like bioactivity. In vitro, the hybrid scaffold maintained >80% cell viability for 14 days, promoted osteogenic differentiation, and polarized macrophages toward a pro‐regenerative phenotype. In a rabbit bone defect model, it accelerated bone regeneration, reduced inflammation, and improved scaffold–bone integration. By synchronizing degradation with tissue repair, this strategy establishes a class of immuno‐instructive, biodegradable implants with potential for orthopedic translation.
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