生物相容性
组织工程
骨愈合
材料科学
生物医学工程
骨组织
纳米技术
再生(生物学)
医学
外科
冶金
生物
细胞生物学
作者
Jiaxin Wu,Xinting Cheng,Jicenyuan Wu,Junyu Chen,Xibo Pei
摘要
Abstract Bone regeneration is a vital clinical challenge in massive or complicated bone defects. Recently, bone tissue engineering has come to the fore to meet the demand for bone repair with various innovative materials. However, the reported materials usually cannot satisfy the requirements, such as ideal mechanical and osteogenic properties, as well as biocompatibility at the same time. Mg‐based biomaterials have considerable potential in bone tissue engineering owing to their excellent mechanical strength and biosafety. Moreover, the biocompatibility and osteogenic activity of Mg‐based biomaterials have been the research focuses in recent years. The main limitation faced in the applications of Mg‐based biomaterials is rapid degradation, which can produce excessive Mg 2+ and hydrogen, affecting the healing of the bone defect. In order to overcome the limitations, researchers have explored several ways to improve the properties of Mg‐based biomaterials, including alloying, surface modification with coatings, and synthesizing other composite materials to control the degradation rate upon implantation. This article reviewed the osteogenic mechanism and requirement for appropriate degradation rate and focused on current progress in the biomedical use of Mg‐based biomaterials to inspire more clinical applications of Mg in bone regeneration in the future.
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