Biofunctional magnesium coating of implant materials by physical vapour deposition.

Qingchuan Wang, Weidan Wang, Yanfang Li, Weirong Li, Lili Tan, Ke Yang, Qw, Lt, Ky, Qw, Ww, Qw, Ww, Yl, Wl, Ky
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引用次数: 9

Abstract

The lack of bioactivity of conventional medical materials leads to low osseointegration ability that may result in the occurrence of aseptic loosening in the clinic. To achieve high osseointegration, surface modifications with multiple biofunctions including degradability, osteogenesis, angiogenesis and antibacterial properties are required. However, the functions of conventional bioactive coatings are limited. Thus novel biofunctional magnesium (Mg) coatings are believed to be promising candidates for surface modification of implant materials for use in bone tissue repair. By physical vapour deposition, many previous researchers have deposited Mg coatings with high purity and granular microstructure on titanium alloys, polyetheretherketone, steels, Mg alloys and silicon. It was found that the Mg coatings with high-purity could considerably control the degradation rate in the initial stage of Mg alloy implantation, which is the most important problem for the application of Mg alloy implants. In addition, Mg coating on titanium (Ti) implant materials has been extensively studied both in vitro and in vivo, and the results indicated that their corrosion behaviour and biocompatibility are promising. Mg coatings continuously release Mg ions during the degradation process, and the alkaline environment caused by Mg degradation has obvious antibacterial effects. Meanwhile, the Mg coating has beneficial effects on osteogenesis and osseointegration, and increases the new bone-regenerating ability. Mg coatings also exhibit favourable osteogenic and angiogenic properties in vitro and increased long-term bone formation and early vascularization in vivo. Inhibitory effects of Mg coatings on osteoclasts have also been proven, which play a great role in osteoporotic patients. In addition, in order to obtain more biofunctions, other alloying elements such as copper have been added to the Mg coatings. Thus, Mg-coated Ti acquired biofunctions including degradability, osteogenesis, angiogenesis and antibacterial properties. These novel multi-functional Mg coatings are expected to significantly enhance the long-term safety of bone implants for the benefit of patients. This paper gives a brief review of studies of the microstructure, degradation behaviours and biofunctions of Mg coatings, and directions for future research are also proposed.

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物理气相沉积法制备生物功能镁涂层。
常规医用材料缺乏生物活性,导致骨整合能力低,在临床中可能发生无菌性松动。为了实现高骨整合,需要具有多种生物功能的表面修饰,包括可降解性,成骨性,血管生成和抗菌性。然而,传统的生物活性涂层的功能是有限的。因此,新型生物功能镁(Mg)涂层被认为是骨组织修复中植入材料表面改性的有希望的候选材料。通过物理气相沉积,许多先前的研究人员已经在钛合金、聚醚酮、钢、镁合金和硅上沉积了高纯度和颗粒状微观结构的Mg涂层。研究发现,高纯度Mg涂层能够有效控制镁合金植入初期的降解速率,这是镁合金植入应用的关键问题。此外,在体外和体内对钛(Ti)植入材料的Mg涂层进行了广泛的研究,结果表明其腐蚀行为和生物相容性是有希望的。Mg涂层在降解过程中不断释放Mg离子,Mg降解引起的碱性环境具有明显的抗菌作用。同时,镁包覆层具有促进骨形成和骨整合的作用,增强了新生骨再生能力。镁涂层也表现出良好的体外成骨和血管生成特性,并增加体内长期骨形成和早期血管形成。镁包被对破骨细胞的抑制作用也已被证实,在骨质疏松症患者中发挥了很大的作用。此外,为了获得更多的生物功能,在Mg涂层中加入了铜等其他合金元素。因此,镁包被的钛获得了生物功能,包括可降解性、成骨性、血管生成和抗菌性。这些新型多功能镁涂层有望显著提高骨种植体的长期安全性,造福患者。本文综述了镁合金涂层的微观结构、降解行为和生物功能等方面的研究进展,并对今后的研究方向进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
6.70
自引率
0.00%
发文量
9
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