In Vivo Assessment of High-Strength and Corrosion-Controlled Magnesium-Based Bone Implants

生物相容性 腐蚀 材料科学 镁合金 涂层 合金 制作 冶金 模拟体液 陶瓷 生物医学工程 复合材料 扫描电子显微镜 医学 替代医学 病理
作者
Hamdy Ibrahim,Caroline Billings,Moataz Abdalla,Ahmed Korra,David E. Anderson
出处
期刊:Bioengineering [Multidisciplinary Digital Publishing Institute]
卷期号:10 (7): 877-877 被引量:7
标识
DOI:10.3390/bioengineering10070877
摘要

The biodegradable nature of magnesium in aqueous mediums makes it an attractive material for various biomedical applications when it is not recommended that the material stay permanently in the body. Some of the main challenges that hinder the use of magnesium for bone fracture repair are its limited mechanical strength and fast corrosion rates. To this end, we developed a novel Mg-Zn-Ca-Mn-based alloy and post-fabrication methods that can deliver high-strength and corrosion-controlled implant materials to address these challenges. This study is focused on assessing the in vitro corrosion and in vivo biocompatibility of the developed magnesium-based alloy and post-fabrication processes. The developed heat treatment process resulted in an increase in the microhardness from 71.9 ± 5.4 HV for the as-cast Mg alloy to as high as 98.1 ± 6.5 HV for the heat-treated Mg alloy, and the ceramic coating resulted in a significant reduction in the corrosion rate from 10.37 mm/yr for the uncoated alloy to 0.03 mm/yr after coating. The in vivo assessments showed positive levels of biocompatibility in terms of degradation rates and integration of the implants in a rabbit model. In the rabbit studies, the implants became integrated into the bone defect and showed minimal evidence of an immune response. The results of this study show that it is possible to produce biocompatible Mg-based implants with stronger and more corrosion-controlled properties based on the developed Mg-Zn-Ca-Mn-based alloy and post-fabrication methods.
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