Seidenstuecker Michael, Kerr Laura, Bernstein Anke, Mayr Hermann O, Suedkamp Norbert P, Gadow Rainer, Krieg Peter, Hernandez Latorre Sergio, Thomann Ralf, Syrowatka Frank, Esslinger Steffen
Department of Orthopedics and Trauma Surgery, Medical Center-Albert-Ludwigs-University of Freiburg, Faculty of Medicine, Albert-Ludwigs-University of Freiburg, Hugstetter Str. 55, 79106 Freiburg, Germany.
School of Engineering, James Watt South Building, University of Glasgow, Glasgow G12 8QQ, UK.
Materials (Basel). 2017 Dec 22;11(1):13. doi: 10.3390/ma11010013.
The use of both bioglass (BG) and β tricalcium phosphate (β-TCP) for bone replacement applications has been studied extensively due to the materials' high biocompatibility and ability to resorb when implanted in the body. 3D printing has been explored as a fast and versatile technique for the fabrication of porous bone scaffolds. This project investigates the effects of using different combinations of a composite BG and β-TCP powder for 3D printing of porous bone scaffolds. Porous 3D powder printed bone scaffolds of BG, β-TCP, 50/50 BG/β-TCP and 70/30 BG/β-TCP compositions were subject to a variety of characterization and biocompatibility tests. The porosity characteristics, surface roughness, mechanical strength, viability for cell proliferation, material cytotoxicity and in vitro bioactivity were assessed. The results show that the scaffolds can support osteoblast-like MG-63 cells growth both on the surface of and within the scaffold material and do not show alarming cytotoxicity; the porosity and surface characteristics of the scaffolds are appropriate. Of the two tested composite materials, the 70/30 BG/β-TCP scaffold proved to be superior in terms of biocompatibility and mechanical strength. The mechanical strength of the scaffolds makes them unsuitable for load bearing applications. However, they can be useful for other applications such as bone fillers.
由于生物玻璃(BG)和β - 磷酸三钙(β-TCP)具有高生物相容性以及植入体内后可吸收的特性,它们在骨替代应用方面已得到广泛研究。3D打印作为一种快速且通用的技术,已被用于制造多孔骨支架。本项目研究了使用复合BG和β-TCP粉末的不同组合进行3D打印多孔骨支架的效果。对BG、β-TCP、50/50 BG/β-TCP和70/30 BG/β-TCP组成的多孔3D粉末打印骨支架进行了各种表征和生物相容性测试。评估了孔隙率特征、表面粗糙度、机械强度、细胞增殖活力、材料细胞毒性和体外生物活性。结果表明,支架能够支持成骨样MG-63细胞在支架材料表面及内部生长,且未表现出令人担忧的细胞毒性;支架的孔隙率和表面特性合适。在两种测试的复合材料中,70/30 BG/β-TCP支架在生物相容性和机械强度方面表现更优。支架的机械强度使其不适用于承重应用。然而,它们可用于其他应用,如骨填充剂。