Reviewing the literature of 3D printing of bones and cartilage: Evidence and practice

Q3 Medicine
Arunkumar Subramanian , Jaishree Mohanbabu , Trisha Srinivasan , Tamilanban T , Vetriselvan Subramaniyan , Manimaran V , Mahendran Sekar , Ling Shing Wong
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引用次数: 0

Abstract

The cutting-edge innovations offer diverse opportunities in medicine; one such inductive approach is 3D bio-printing, in which cells and desired biomaterials cohesively synthesize living macro tissues. The rapidly increasing demand for reconstruction and restoration of highly intricate and responsive bone implants has encouraged bone tissue engineering to yield implants that substitute the native bone, both physically and biologically. As this technology is still in its infancy, different limitations can be encountered, such as the lack of in-depth characterization of scaffolds and limited visualization of a general framework, which can be overcome with further explorative studies. With computerized bio-fabrication, 3D printing aims to perfectly adapt implants, individually analyzing data at the level of cells, tissues, organs, and organic systems, ending this entire process under pre-bioprinting. The locus and susceptibility to bare load are primary considerations in selecting among widely available biomaterial options and printing techniques, including bio-ceramics, metals, bioinks, selective laser melting, directed energy deposition (laser or e-beam), and drop-on-powder printing. The addition of growth factors and mesenchymal stem cells allows the maintenance of the balance between osteoclasts and osteoblasts, the cartilage tissue formation, and contributes to the overall bone remodeling and regeneration processes. This review address and highlights relevant aspects on pre-bioprinting procedures, bio-materials selection, bio-printers, bone remodeling mechanism, and in-vivo responses of fibrin scaffold.
回顾有关骨骼和软骨 3D 打印的文献:证据与实践
最前沿的创新为医学提供了各种机会;其中一种归纳方法是三维生物打印,细胞和所需的生物材料在其中凝聚合成活的宏观组织。人们对重建和修复高度复杂、反应灵敏的骨植入物的需求迅速增加,这促使骨组织工程产生了能在物理和生物两方面替代原生骨的植入物。由于这项技术仍处于起步阶段,可能会遇到不同的限制,如缺乏对支架的深入表征和总体框架的有限可视化,这些限制可以通过进一步的探索研究来克服。通过计算机化生物制造技术,3D 打印技术旨在完美调整植入物,单独分析细胞、组织、器官和有机系统层面的数据,在预生物打印下结束整个过程。在从生物陶瓷、金属、生物墨水、选择性激光熔化、定向能沉积(激光或电子束)和粉末滴注打印等广泛可用的生物材料选项和打印技术中进行选择时,首要考虑的是位置和对裸负载的敏感性。生长因子和间充质干细胞的加入可维持破骨细胞和成骨细胞之间的平衡,促进软骨组织的形成,并有助于整个骨重塑和再生过程。这篇综述探讨并强调了生物打印前程序、生物材料选择、生物打印机、骨重塑机制以及纤维蛋白支架的体内反应等相关方面。
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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来源期刊
Annals of 3D printed medicine
Annals of 3D printed medicine Medicine and Dentistry (General), Materials Science (General)
CiteScore
4.70
自引率
0.00%
发文量
0
审稿时长
131 days
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