Ahlfeld Tilman, Köhler Tino, Czichy Charis, Lode Anja, Gelinsky Michael
Centre for Translational Bone, Joint and Soft Tissue Research, University Hospital Carl Gustav Carus and Faculty of Medicine, Technische Universität Dresden, 01307 Dresden, Germany.
Institute of Fluid Mechanics, Chair of Magnetofluiddynamics, Measuring and Automation Technology, Technische Universität Dresden, 01069 Dresden, Germany.
Gels. 2018 Aug 11;4(3):68. doi: 10.3390/gels4030068.
3D plotting is an additive manufacturing technology enabling biofabrication, thus the integration of cells or biologically sensitive proteins or growth factors into the manufacturing process. However, most (bio-)inks developed for 3D plotting were not shown to be processed into clinically relevant geometries comprising critical overhangs and cavities, which would collapse without a sufficient support material. Herein, we have developed a support hydrogel ink based on methylcellulose (mc), which is able to act as support as long as the co-plotted main structure is not stable. Therefore, 6 / %, 8 / % and 10 / % mc were allowed to swell in water, resulting in viscous inks, which were characterized for their rheological and extrusion properties. The successful usage of 10 / % mc as support ink was proven by multichannel plotting of the support together with a plottable calcium phosphate cement (CPC) acting as main structure. CPC scaffolds displaying critical overhangs or a large central cavity could be plotted accurately with the newly developed mc support ink. The dissolution properties of mc allowed complete removal of the gel without residuals, once CPC setting was finished. Finally, we fabricated a scaphoid bone model by computed tomography data acquisition and co-extrusion of CPC and the mc support hydrogel.
3D打印是一种能够实现生物制造的增材制造技术,从而将细胞、生物敏感蛋白或生长因子整合到制造过程中。然而,大多数为3D打印开发的(生物)墨水尚未被证明能够加工成包含关键悬垂和腔体的临床相关几何形状,若无足够的支撑材料,这些结构将会坍塌。在此,我们开发了一种基于甲基纤维素(mc)的支撑水凝胶墨水,只要共打印的主要结构不稳定,它就能起到支撑作用。因此,将6/%、8/%和10/%的mc置于水中溶胀,得到粘性墨水,并对其流变学和挤出性能进行了表征。通过将支撑材料与可打印的磷酸钙骨水泥(CPC)作为主要结构进行多通道打印,证明了10/%的mc作为支撑墨水的成功应用。使用新开发的mc支撑墨水,可以精确打印出具有关键悬垂或大中心腔的CPC支架。一旦CPC凝固完成,mc的溶解特性使得凝胶能够完全去除且无残留。最后,我们通过计算机断层扫描数据采集以及CPC和mc支撑水凝胶的共挤出制造了一个舟骨模型。