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骨科中选择性激光熔化制造的 CoCr 多孔支架:表面形貌、力学和生物学特性。

CoCr porous scaffolds manufactured via selective laser melting in orthopedics: Topographical, mechanical, and biological characterization.

机构信息

Movement Analysis Laboratory, IRCCS Istituto Ortopedico Rizzoli, Bologna, Italy.

CIRI-MAM, Bologna University, Bologna, Italy.

出版信息

J Biomed Mater Res B Appl Biomater. 2019 Oct;107(7):2343-2353. doi: 10.1002/jbm.b.34328. Epub 2019 Jan 28.

DOI:10.1002/jbm.b.34328
PMID:30689288
Abstract

Over the last decade, advances in additive manufacturing have allowed to obtain complex 3D porous lattice in materials suitable for orthopedic applications. Whereas 3D-melted titanium alloys have been extensively investigated, little is the current knowledge on the feasibility of bone-replicating CoCr porous scaffolds manufactured via selective laser melting (SLM). Moreover, the effect of topography on bone cells viability and proliferation has not been fully explored yet. Small cylindrical porous lattices were modeled from micro-CT images of human trabecular bone, and from the repetition of spherical-hollow and body-centered cubic unit cells, and manufactured via SLM from CoCr powder. Macro- and microcharacterization of the porous samples were assessed using optical microscope, micro-CT, and SEM. The scaffolds mechanical properties, measured via ISO testing, compared well with those of the human bone. Osteoblast-like cells proliferation and viability were assessed in vitro, and compared to those cultured on a standard nonporous implant-to-bone interface, showing steady increase on all geometries over time. SEM analysis confirmed the quality of cells morphology, spread, and organization on all lattices. The SLM process appeared not to alter the biocompatibility of CoCr; however, 15-100 μm irregularities and macroalterations were observed in the porous scaffolds with respect to the 3D nominal models. © 2019 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater 107B: 2343-2353, 2019.

摘要

在过去的十年中,增材制造的进步使得在适合骨科应用的材料中获得复杂的 3D 多孔晶格成为可能。虽然已经广泛研究了 3D 熔化的钛合金,但对于通过选择性激光熔化 (SLM) 制造的类似于骨骼的 CoCr 多孔支架的可行性,目前的了解甚少。此外,拓扑结构对骨细胞活力和增殖的影响尚未得到充分探索。从小型圆柱形多孔晶格的模型的构建开始,使用人体小梁骨的 micro-CT 图像,以及球形空心和体心立方单元的重复,通过 CoCr 粉末的 SLM 制造。使用光学显微镜、micro-CT 和 SEM 对多孔样品进行宏观和微观表征。通过 ISO 测试测量多孔样品的机械性能,其结果与人体骨骼的机械性能相当。体外评估成骨细胞样细胞的增殖和活力,并与培养在标准非多孔植入物-骨界面上的细胞进行比较,结果表明所有几何形状的细胞活力均随时间的推移而稳定增加。SEM 分析证实了所有晶格上细胞形态、扩散和组织的质量。SLM 工艺似乎没有改变 CoCr 的生物相容性;然而,与 3D 名义模型相比,多孔支架中观察到 15-100μm 的不规则和宏观变化。2019 年 Wiley 期刊公司。J 生物医学材料研究部分 B: 应用生物材料 107B:2343-2353

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