Overview of porous magnesium-based scaffolds: development, properties and biomedical applications.

Materials futures Pub Date : 2025-03-01 Epub Date: 2025-01-02 DOI:10.1088/2752-5724/ad9493
Amir Motaharinia, Jaroslaw W Drelich, Safian Sharif, Ahmad Fauzi Ismail, Farid Naeimi, Alexandra Glover, Mahshid Ebrahiminejad, Hamid Reza Bakhsheshi-Rad
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Abstract

Magnesium (Mg) and its alloys are revolutionizing the field of interventional surgeries in the medical industry. Their high biocompatibility, biodegradability, and a similar elastic modulus to natural bone make porous Mg-based structures potential candidates for orthopedic implants and tissue engineering scaffolding. However, fabricating and machining porous Mg-based structures is challenging due to their complexity and difficulties in achieving uniform or gradient porosity. This review aims to thoroughly explore various fabrication procedures used to create metallic scaffolds, with a specific focus on those made from Mg-based alloys. Both traditional manufacturing techniques, including the directional solidification of metal-gas eutectic technique, pattern casting, methods using space holders, and modern fabrication methods, which are based on additive manufacturing, are covered in this review article. Furthermore, the paper highlights the most important findings of recent studies on Mg-based scaffolds in terms of their microstructure specifications, mechanical properties, degradation and corrosion behavior, antibacterial activity, and biocompatibility (both in vivo and in vitro). While extensive research has been conducted to optimize manufacturing parameters and qualities of Mg-based scaffolds for use in biomedical applications, specifically for bone tissue engineering applications, further investigation is needed to fabricate these scaffolds with specific properties, such as high resistance to corrosion, good antibacterial properties, osteoconductivity, osteoinductivity, and the ability to elicit a favorable response from osteoblast-like cell lines. The review concludes with recommendations for future research in the field of medical applications.

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多孔镁基支架综述:发展、性能和生物医学应用。
镁(Mg)及其合金正在革新医疗行业的介入手术领域。其高生物相容性、可生物降解性和与天然骨相似的弹性模量使多孔镁基结构成为骨科植入物和组织工程支架的潜在候选材料。然而,由于其复杂性和实现均匀或梯度孔隙率的困难,制造和加工多孔镁基结构具有挑战性。本综述旨在全面探讨用于制造金属支架的各种制造工艺,特别关注那些由镁基合金制成的金属支架。本文综述了传统的制造技术,包括金属-气体共晶定向凝固技术、模式铸造、使用空间支架的方法和基于增材制造的现代制造方法。此外,本文重点介绍了镁基支架在微观结构规格、机械性能、降解和腐蚀行为、抗菌活性和生物相容性(体内和体外)方面的最新研究成果。虽然已经进行了广泛的研究以优化用于生物医学应用的镁基支架的制造参数和质量,特别是骨组织工程应用,但需要进一步研究以制造具有特定性能的支架,例如高耐腐蚀性,良好的抗菌性能,骨导电性,骨诱导性以及能够引起成骨细胞样细胞系的良好反应。最后,对今后在医学应用领域的研究提出了建议。
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