Research Institute, SJ TOOLS, Daegu, Korea.
Fischell Department of Bioengineering, University of Maryland, College Park, Maryland.
Biotechnol Bioeng. 2018 Apr;115(4):989-999. doi: 10.1002/bit.26514. Epub 2018 Jan 8.
Fused deposition modeling (FDM) is a promising 3D printing and manufacturing step to create well interconnected porous scaffold designs from the computer-aided design (CAD) models for the next generation of bone scaffolds. The purpose of this study was to fabricate and evaluate a new biphasic calcium phosphate (BCP) scaffold reinforced with zirconia (ZrO ) by a FDM system for bone tissue engineering. The 3D slurry foams with blending agents were successfully fabricated by a FDM system. Blending materials were then removed after the sintering process at high temperature to obtain a targeted BCP/ZrO scaffold with the desired pore characteristics, porosity, and dimension. Morphology of the sintered scaffold was investigated with SEM/EDS mapping. A cell proliferation test was carried out and evaluated with osteosarcoma MG-63 cells. Mechanical testing and cell proliferation evaluation demonstrated that 90% BCP and 10% ZrO scaffold had a significant effect on the mechanical properties maintaining a structure compared that of only 100% BCP with no ZrO . Additionally, differentiation studies of human mesenchymal stem cells (hMSCs) on BCP/ZrO scaffolds in static and dynamic culture conditions showed increased expression of bone morphogenic protein-2 (BMP-2) when cultured on BCP/ZrO scaffolds under dynamic conditions compared to on BCP control scaffolds. The manufacturing of BCP/ZrO scaffolds through this innovative technique of a FDM may provide applications for various types of tissue regeneration, including bone and cartilage.
熔融沉积成型(FDM)是一种很有前途的 3D 打印和制造工艺,可以从计算机辅助设计(CAD)模型中创建具有良好连通性的多孔支架设计,用于下一代骨支架。本研究的目的是通过 FDM 系统制造和评估一种新型双相磷酸钙(BCP)支架,该支架由氧化锆(ZrO )增强,用于骨组织工程。通过 FDM 系统成功制造了具有混合剂的 3D 浆料泡沫。然后在高温下进行烧结处理后去除混合材料,以获得具有所需孔特征、孔隙率和尺寸的目标 BCP/ZrO 支架。用 SEM/EDS 映射研究了烧结支架的形态。进行了细胞增殖试验,并通过骨肉瘤 MG-63 细胞进行了评估。机械测试和细胞增殖评估表明,90%的 BCP 和 10%的 ZrO 支架对机械性能有显著影响,与没有 ZrO 的 100%BCP 相比,保持了结构。此外,在静态和动态培养条件下,人骨髓间充质干细胞(hMSCs)在 BCP/ZrO 支架上的分化研究表明,在动态条件下培养在 BCP/ZrO 支架上时,骨形态发生蛋白-2(BMP-2)的表达增加,与在 BCP 对照支架上培养时相比。通过 FDM 的这种创新技术制造 BCP/ZrO 支架可能为各种类型的组织再生提供应用,包括骨骼和软骨。