脚手架
材料科学
镁合金
生物医学工程
骨愈合
骨形成
再生(生物学)
骨生长
合金
涂层
骨组织
镁
骨形态发生蛋白2
成骨细胞
骨细胞
腐蚀
纳米技术
生长因子
作者
Yao Wang,Yuanyuan Wang,Leiting Yu,Ye Hua,Ning Wang,Enhong Shi,Changyi Li,Minfang Chen,Jianmin Han
标识
DOI:10.1021/acsami.5c16661
摘要
High Resolution Image Download MS PowerPoint Slide Critical-sized bone defects pose a significant clinical challenge due to the limitations of existing repair strategies. An ideal bone scaffold is expected to provide mechanical support while promoting osteogenesis and angiogenesis. However, biodegradable magnesium (Mg) alloys face challenges in controlling rapid degradation, leading to detrimental local Mg 2+ concentrations and premature mechanical failure. To address this, a collagen-coated 3D-printed magnesium alloy scaffold (COL/Mg) was developed via electrostatic adsorption. The 3D-printed Mg scaffold provides initial structural support matching bone mechanics, while the collagen coating acts as a physical barrier that controls Mg 2+ release. This strategy successfully maintains the local Mg 2+ concentration within the optimal “therapeutic window”, thereby optimizing biological activity and avoiding toxicity. In vitro results showed that COL/Mg enhanced corrosion resistance, biocompatibility, and cell proliferation and promoted angiogenic and osteogenic potential. Transcriptomic analysis further revealed the osteogenic differentiation mechanism. In vivo studies using a rat calvarial defect model confirmed that the COL/Mg scaffold significantly promoted vascularized bone regeneration and achieved good bone integration compared to uncoated Mg scaffolds, without adverse systemic effects. In conclusion, this collagen-coating strategy provides a simple and effective approach to harness the advantages of Mg alloys for bone repair by dynamically regulating the ionic microenvironment, offering a promising solution for treating critical-sized bone defects.
科研通智能强力驱动
Strongly Powered by AbleSci AI