Extrusion-based 3D printed biodegradable porous iron

被引:68
作者
Putra, N. E. [1 ]
Leeflang, M. A. [1 ]
Minneboo, M. [1 ]
Taheri, P. [2 ]
Fratila-Apachitei, L. E. [1 ]
Mol, J. M. C. [2 ]
Zhou, J. [1 ]
Zadpoor, A. A. [1 ]
机构
[1] Delft Univ Technol, Fac Mech Maritime & Mat Engn, Dept Biomech Engn, Mekelweg 2, NL-2628 CD Delft, Netherlands
[2] Delft Univ Technol, Fac Mech Maritime & Mat Engn, Dept Mat Sci & Engn, Mekelweg 2, NL-2628 CD Delft, Netherlands
关键词
3D printing; Material extrusion; Biodegradable; Iron; Scaffold; Bone substitution;
D O I
10.1016/j.actbio.2020.11.022
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Extrusion-based 3D printing followed by debinding and sintering is a powerful approach that allows for the fabrication of porous scaffolds from materials (or material combinations) that are otherwise very challenging to process using other additive manufacturing techniques. Iron is one of the materials that have been recently shown to be amenable to processing using this approach. Indeed, a fully interconnected porous design has the potential of resolving the fundamental issue regarding bulk iron, namely a very low rate of biodegradation. However, no extensive evaluation of the biodegradation behavior and properties of porous iron scaffolds made by extrusion-based 3D printing has been reported. Therefore, the in vitro biodegradation behavior, electrochemical response, evolution of mechanical properties along with biodegradation, and responses of an osteoblastic cell line to the 3D printed iron scaffolds were studied. An ink formulation, as well as matching 3D printing, debinding and sintering conditions, was developed to create iron scaffolds with a porosity of 67%, a pore interconnectivity of 96%, and a strut density of 89% after sintering. X-ray diffracometry confirmed the presence of the alpha-iron phase in the scaffolds without any residuals from the rest of the ink. Owing to the presence of geometrically designed macropores and random micropores in the struts, the in vitro corrosion rate of the scaffolds was much improved as compared to the bulk counterpart, with 7% mass loss after 28 days. The mechanical properties of the scaffolds remained in the range of those of trabecular bone despite 28 days of in vitro biodegradation. The direct culture of MC3T3-E1 preosteoblasts on the scaffolds led to a substantial reduction in living cell count, caused by a high concentration of iron ions, as revealed by the indirect assays. On the other hand, the ability of the cells to spread and form filopodia indicated the cytocompatibility of the corrosion products. Taken together, this study shows the great potential of extrusion-based 3D printed porous iron to be further developed as a biodegradable bone substituting biomaterial. Statement of significance 3D printing techniques have been used to fabricate porous iron scaffolds for bone substitution. However, no extensive performance evaluation of porous iron made by extrusion-based 3D printing for bone substitution has ever been reported. Therefore, we comprehensively studied the in vitro biodegradation behavior, electrochemical characteristics, time-dependent mechanical properties, and cytocompatibility of porous iron scaffolds made by means of extrusionbased 3D printing. Our results showed that extrusion-based 3D printing could deliver porous iron scaffolds with enhanced biodegradability and bone-mimicking mechanical properties for potential application as biodegradable bone substitutes. (c) 2020 Acta Materialia Inc. Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/)
引用
收藏
页码:741 / 756
页数:16
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