用于骨科应用的生物可降解金属3D打印的最新进展。

IF 5.7 3区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Wenqing Liang, Chao Zhou, Hongwei Zhang, Juqin Bai, Bo Jiang, Chanyi Jiang, Wenyi Ming, Hengjian Zhang, Hengguo Long, Xiaogang Huang, Jiayi Zhao
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引用次数: 1

摘要

利用生物可降解聚合物治疗骨相关疾病已成为生物医学领域的研究热点。最近材料技术的进步扩大了适用于骨科植入物的材料范围。三维(3D)打印技术在医疗保健领域已经变得普遍,虽然器官打印仍处于早期阶段,面临道德和技术障碍,但3D打印能够创建支持和可控的3D结构。该技术在组织工程和再生医学等领域显示出前景,细胞和生物打印以及打印材料的新创新扩大了其可能性。在临床环境中,生物可降解金属的3D打印主要用于骨科和口腔医学。3d打印的患者专用截骨器械、骨科植入物和牙科植入物已被美国FDA批准用于临床。金属通常用于为硬组织提供支撑并防止并发症。目前,临床上使用的种植体有70-80%由铌、钽、镍钛诺、钛合金、钴铬合金和不锈钢制成。然而,人们对诸如镁、钙、锌和铁等可生物降解金属的兴趣越来越大,最近有了许多发现。3D打印具有制造成本低、几何形状复杂、制造周期短等优点,在学术界和工业界得到了广泛的应用。具有可控结构的金属3D打印代表了开发生物医学应用金属植入物的尖端技术。本文综述了3D打印骨科中使用的现有生物材料以及生物可降解金属及其在开发金属医疗植入物和设备中的应用。讨论了该技术面临的挑战和未来的发展方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent advances in 3D printing of biodegradable metals for orthopaedic applications.

Recent advances in 3D printing of biodegradable metals for orthopaedic applications.

Recent advances in 3D printing of biodegradable metals for orthopaedic applications.

Recent advances in 3D printing of biodegradable metals for orthopaedic applications.

The use of biodegradable polymers for treating bone-related diseases has become a focal point in the field of biomedicine. Recent advancements in material technology have expanded the range of materials suitable for orthopaedic implants. Three-dimensional (3D) printing technology has become prevalent in healthcare, and while organ printing is still in its early stages and faces ethical and technical hurdles, 3D printing is capable of creating 3D structures that are supportive and controllable. The technique has shown promise in fields such as tissue engineering and regenerative medicine, and new innovations in cell and bio-printing and printing materials have expanded its possibilities. In clinical settings, 3D printing of biodegradable metals is mainly used in orthopedics and stomatology. 3D-printed patient-specific osteotomy instruments, orthopedic implants, and dental implants have been approved by the US FDA for clinical use. Metals are often used to provide support for hard tissue and prevent complications. Currently, 70-80% of clinically used implants are made from niobium, tantalum, nitinol, titanium alloys, cobalt-chromium alloys, and stainless steels. However, there has been increasing interest in biodegradable metals such as magnesium, calcium, zinc, and iron, with numerous recent findings. The advantages of 3D printing, such as low manufacturing costs, complex geometry capabilities, and short fabrication periods, have led to widespread adoption in academia and industry. 3D printing of metals with controllable structures represents a cutting-edge technology for developing metallic implants for biomedical applications. This review explores existing biomaterials used in 3D printing-based orthopedics as well as biodegradable metals and their applications in developing metallic medical implants and devices. The challenges and future directions of this technology are also discussed.

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来源期刊
Journal of Biological Engineering
Journal of Biological Engineering BIOCHEMICAL RESEARCH METHODS-BIOTECHNOLOGY & APPLIED MICROBIOLOGY
CiteScore
7.10
自引率
1.80%
发文量
32
审稿时长
17 weeks
期刊介绍: Biological engineering is an emerging discipline that encompasses engineering theory and practice connected to and derived from the science of biology, just as mechanical engineering and electrical engineering are rooted in physics and chemical engineering in chemistry. Topical areas include, but are not limited to: Synthetic biology and cellular design Biomolecular, cellular and tissue engineering Bioproduction and metabolic engineering Biosensors Ecological and environmental engineering Biological engineering education and the biodesign process As the official journal of the Institute of Biological Engineering, Journal of Biological Engineering provides a home for the continuum from biological information science, molecules and cells, product formation, wastes and remediation, and educational advances in curriculum content and pedagogy at the undergraduate and graduate-levels. Manuscripts should explore commonalities with other fields of application by providing some discussion of the broader context of the work and how it connects to other areas within the field.
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