材料科学
脚手架
骨愈合
成骨细胞
纳米技术
骨组织
生物医学工程
化学
体外
遗传学
生物化学
医学
生物
作者
Pei‐Chun Wong,Darwin Kurniawan,Jialin Wu,Wei-Ru Wang,Kuan‐Hao Chen,Chieh‐Ying Chen,Yingchun Chen,Loganathan Veeramuthu,Chi‐Ching Kuo,Kostya Ostrikov,Wei‐Hung Chiang
标识
DOI:10.1021/acsami.3c05297
摘要
Bioactive and mechanically stable metal-based scaffolds are commonly used for bone defect repair. However, conventional metal-based scaffolds induce nonuniform cell growth, limiting damaged tissue restoration. Here, we develop a plasma nanotechnology-enhanced graphene quantum dot (GQD) hydrogel–magnesium (Mg) composite scaffold for functional bone defect repair by integrating a bioresource-derived nitrogen-doped GQD (NGQD) hydrogel into the Mg ZK60 alloy. Each scaffold component brings major synergistic advantages over the current alloy-based state of the art, including (1) mechanical support of the cortical bone and calcium deposition by the released Mg2+ during degradation; (2) enhanced uptake, migration, and distribution of osteoblasts by the porous hydrogel; and (3) improved osteoblast adhesion and proliferation, osteogenesis, and mineralization by the NGQDs in the hydrogel. Through an in vivo study, the hybrid scaffold with the much enhanced osteogenic ability induced by the above synergy promotes a more rapid, uniform, and directional bone growth across the hydrogel channel, compared with the control Mg-based scaffold. This work provides insights into the design of multifunctional hybrid scaffolds, which can be applied in other areas well beyond the demonstrated bone defect repair.
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