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用于骨科应用的多孔增材制造镁基合金的生物功能化:综述

Biofunctionalisation of porous additively manufactured magnesium-based alloys for Orthopaedic applications: A review.

作者信息

Sadat Hashemi Tina, Jaiswal Satish, McCarthy Helen O, Levingstone Tanya J, Dunne Nicholas J

机构信息

School of Mechanical and Manufacturing Engineering, Dublin City University, D09 NA55 Dublin, Ireland; Centre for Medical Engineering Research, Dublin City University, D09 NA55 Dublin, Ireland; Advanced Manufacturing Research Centre (I-Form), School of Mechanical and Manufacturing Engineering, Dublin City University, D09 NA55 Dublin, Ireland.

School of Mechanical and Manufacturing Engineering, Dublin City University, D09 NA55 Dublin, Ireland; Centre for Medical Engineering Research, Dublin City University, D09 NA55 Dublin, Ireland.

出版信息

Biomater Adv. 2025 Apr;169:214170. doi: 10.1016/j.bioadv.2024.214170. Epub 2025 Jan 2.

Abstract

Magnesium (Mg) alloys have gained significant attention as a desirable choice of biodegradable implant for use in bone repair applications, largely owing to their unique material properties. More recently, Mg and Mg-based alloys have been used as load-bearing metallic scaffolds for bone tissue engineering applications, offering promising opportunities in the field. The mechanical properties and relative density of Mg-based alloys closely approximate those of natural human bone tissue, thereby mitigating the risk of stress-shielding effects. Furthermore, the inherent biodegradability of Mg-based alloys eliminates the necessity for a second surgical procedure for the removal of the implant, a frequent requirement with conventional non-degradable implants. However, a notable challenge remains in managing the high corrosion rate of Mg and Mg-based alloys within physiological environments to ensure that they meet the necessary functional requirements. Consequently, a comprehensive analysis and understanding of the corrosion behaviour of Mg and Mg-based alloys, coupled with optimisation of their surface properties, assume pivotal significance to ensure successful clinical application. The personalized 3D printing of Mg and Mg-based alloy implants represents a paradigm shift, offering a plethora of advantages, foremost among them being the enhancement of the bone healing process facilitated by the degradable porous structure conducive to bone ingrowth. Also, the emergence of surface functionalisation techniques for Mg-based implants amalgamates the mechanical and degradation properties inherent to metals with the enhanced biofunctionality offered by these coatings. This synergy presents a highly promising avenue for using Mg-based implants as temporary orthopaedic and dental solutions. This comprehensive review provides a detailed analysis of recent advancements encompassing alloying elements, additive manufacturing processes, lattice structures and biofunctionalised coatings to tailor the corrosion resistance, mechanical properties and biocompatibility of Mg-based orthopaedic implants.

摘要

镁(Mg)合金作为用于骨修复应用的理想可生物降解植入物选择,已受到广泛关注,这主要归功于其独特的材料特性。最近,镁及镁基合金已被用作骨组织工程应用中的承重金属支架,为该领域提供了广阔的前景。镁基合金的机械性能和相对密度与天然人体骨组织非常接近,从而降低了应力屏蔽效应的风险。此外,镁基合金固有的生物可降解性消除了传统不可降解植入物常见的二次手术取出植入物的必要性。然而,在生理环境中控制镁及镁基合金的高腐蚀速率以确保其满足必要的功能要求仍然是一个显著的挑战。因此,全面分析和了解镁及镁基合金的腐蚀行为,并优化其表面性能,对于确保成功的临床应用具有至关重要的意义。镁及镁基合金植入物的个性化3D打印代表了一种范式转变,具有众多优势,其中最主要的是可降解多孔结构有利于骨长入,从而促进骨愈合过程。此外,镁基金属植入物表面功能化技术的出现,将金属固有的机械和降解性能与这些涂层提供的增强生物功能相结合。这种协同作用为将镁基金属植入物用作临时骨科和牙科解决方案提供了一条非常有前景的途径。这篇综述详细分析了近期在合金元素、增材制造工艺、晶格结构和生物功能化涂层等方面的进展,以定制镁基骨科植入物的耐腐蚀性、机械性能和生物相容性。

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