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3D 打印多孔钽人工骨支架:制备、性能与应用。

3D-printed porous tantalum artificial bone scaffolds: fabrication, properties, and applications.

机构信息

Department of Orthopaedics, Affiliated Zhongshan Hospital of Dalian University, No. 6 Jiefang St, Dalian, Liaoning 116001, People's Republic of China.

出版信息

Biomed Mater. 2024 May 15;19(4). doi: 10.1088/1748-605X/ad46d2.

Abstract

Porous tantalum scaffolds offer a high degree of biocompatibility and have a low friction coefficient. In addition, their biomimetic porous structure and mechanical properties, which closely resemble human bone tissue, make them a popular area of research in the field of bone defect repair. With the rapid advancement of additive manufacturing, 3D-printed porous tantalum scaffolds have increasingly emerged in recent years, offering exceptional design flexibility, as well as facilitating the fabrication of intricate geometries and complex pore structures that similar to human anatomy. This review provides a comprehensive description of the techniques, procedures, and specific parameters involved in the 3D printing of porous tantalum scaffolds. Concurrently, the review provides a summary of the mechanical properties, osteogenesis and antibacterial properties of porous tantalum scaffolds. The use of surface modification techniques and the drug carriers can enhance the characteristics of porous tantalum scaffolds. Accordingly, the review discusses the application of these porous tantalum materials in clinical settings. Multiple studies have demonstrated that 3D-printed porous tantalum scaffolds exhibit exceptional corrosion resistance, biocompatibility, and osteogenic properties. As a result, they are considered highly suitable biomaterials for repairing bone defects. Despite the rapid development of 3D-printed porous tantalum scaffolds, they still encounter challenges and issues when used as bone defect implants in clinical applications. Ultimately, a concise overview of the primary challenges faced by 3D-printed porous tantalum scaffolds is offered, and corresponding insights to promote further exploration and advancement in this domain are presented.

摘要

多孔钽支架具有高度的生物相容性,摩擦系数低。此外,它们仿生的多孔结构和机械性能与人体骨骼组织非常相似,这使得它们成为骨缺损修复领域的一个热门研究领域。随着增材制造技术的快速发展,近年来 3D 打印多孔钽支架越来越多地出现,提供了出色的设计灵活性,并有助于制造类似于人体解剖结构的复杂几何形状和复杂的孔隙结构。本综述全面描述了 3D 打印多孔钽支架的技术、程序和具体参数。同时,综述总结了多孔钽支架的机械性能、成骨和抗菌性能。表面改性技术和药物载体的使用可以增强多孔钽支架的特性。因此,综述讨论了这些多孔钽材料在临床中的应用。多项研究表明,3D 打印多孔钽支架具有优异的耐腐蚀性、生物相容性和成骨性能。因此,它们被认为是修复骨缺损的理想生物材料。尽管 3D 打印多孔钽支架发展迅速,但在临床应用中作为骨缺损植入物仍面临挑战和问题。最终,本文简要概述了 3D 打印多孔钽支架面临的主要挑战,并提出了相应的见解,以促进该领域的进一步探索和发展。

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