Inzana Jason A, Olvera Diana, Fuller Seth M, Kelly James P, Graeve Olivia A, Schwarz Edward M, Kates Stephen L, Awad Hani A
Center for Musculoskeletal Research, University of Rochester Medical Center, 601 Elmwood Avenue, Box 665, Rochester, NY 14642, United States; Department of Biomedical Engineering, University of Rochester, 207 Robert B. Goergen Hall, Rochester, NY 14642, United States.
Kazuo Inamori School of Engineering, Alfred University, 1 Saxon Drive, Alfred, NY 14802, United States.
Biomaterials. 2014 Apr;35(13):4026-34. doi: 10.1016/j.biomaterials.2014.01.064. Epub 2014 Feb 14.
Low temperature 3D printing of calcium phosphate scaffolds holds great promise for fabricating synthetic bone graft substitutes with enhanced performance over traditional techniques. Many design parameters, such as the binder solution properties, have yet to be optimized to ensure maximal biocompatibility and osteoconductivity with sufficient mechanical properties. This study tailored the phosphoric acid-based binder solution concentration to 8.75 wt% to maximize cytocompatibility and mechanical strength, with a supplementation of Tween 80 to improve printing. To further enhance the formulation, collagen was dissolved into the binder solution to fabricate collagen-calcium phosphate composites. Reducing the viscosity and surface tension through a physiologic heat treatment and Tween 80, respectively, enabled reliable thermal inkjet printing of the collagen solutions. Supplementing the binder solution with 1-2 wt% collagen significantly improved maximum flexural strength and cell viability. To assess the bone healing performance, we implanted 3D printed scaffolds into a critically sized murine femoral defect for 9 weeks. The implants were confirmed to be osteoconductive, with new bone growth incorporating the degrading scaffold materials. In conclusion, this study demonstrates optimization of material parameters for 3D printed calcium phosphate scaffolds and enhancement of material properties by volumetric collagen incorporation via inkjet printing.
低温3D打印磷酸钙支架在制造性能优于传统技术的合成骨移植替代物方面具有巨大潜力。许多设计参数,如粘合剂溶液的性质,尚未得到优化,以确保最大的生物相容性和骨传导性以及足够的机械性能。本研究将基于磷酸的粘合剂溶液浓度调整为8.75 wt%,以最大限度地提高细胞相容性和机械强度,并添加吐温80以改善打印效果。为了进一步优化配方,将胶原蛋白溶解在粘合剂溶液中以制备胶原蛋白-磷酸钙复合材料。分别通过生理热处理和吐温80降低粘度和表面张力,使得胶原蛋白溶液能够可靠地进行热喷墨打印。在粘合剂溶液中添加1-2 wt%的胶原蛋白可显著提高最大抗弯强度和细胞活力。为了评估骨愈合性能,我们将3D打印的支架植入小鼠临界尺寸的股骨缺损处9周。植入物被证实具有骨传导性,新骨生长与降解的支架材料相结合。总之,本研究展示了3D打印磷酸钙支架材料参数的优化以及通过喷墨打印在材料中加入胶原蛋白以增强材料性能。