Qin Binwei, Zeng Baifang, Shen Danwei, Deng Jiayan, Hu Haigang, Wang Xiangyu, Li Hong, Yang Taicong, Xu Lian, Wu Chao
Department of Orthopedics, Zigong Fourth People's Hospital, Zigong, China.
Department of Orthopedics, Affiliated Hospital of Southwest Medical University, Luzhou, China.
J Biomater Sci Polym Ed. 2025 Jun;36(9):1173-1188. doi: 10.1080/09205063.2024.2438498. Epub 2024 Dec 15.
The aim of this study was to evaluate the biomechanical and osseointegrative properties of 3D printed porous PEEK materials loaded with strontium (Sr) and alendronate (ALN), which prepared porous cylindrical material by a fused deposition molding process, coated with Sr and ALN by hydrothermal reaction and dopamine assistance. According to the different coating materials, it could be divided into the PEEK group, PEEK-ALN group, PEEK-Sr group and PEEK-ALN-Sr group. After completing the mechanical analyses, the materials were implanted into the femoral condyles of New Zealand rabbits and the osteogenic capacity of the bracket materials was assessed by Micro-CT scanning, histology and fluorescence staining. The results showed that ALN and Sr were successfully loaded onto the surface of the material, and the elastic modulus and porosity of the material were not changed significantly after loading. The Micro-CT revealed that the PEEK-ALN-Sr group exhibited differences in bone volume/total Volume (BV/TV), trabecular spacing (TB.Sp),trabecular thickness (TB.Th)and trabeculae number (TB.N) in comparison to the PEEK group and PEEK-ALN group. And more new bone tissues could be observed in the PEEK-ALN-Sr group under 3D reconstruction of the bone proliferation model, toluidine blue and fluorescence staining. Thus, we can conclude that the 3D printed porous PEEK material has stable pore size and porosity, which has an ideal structure for bone growth. The PEEK- ALN-Sr composite material can be used as an emerging bone implant due to its excellent elastic modulus and osseointegration ability and provides a clinically viable treatment for patients with bone defects.
本研究旨在评估通过熔融沉积成型工艺制备多孔圆柱形材料,并经水热反应和多巴胺辅助负载锶(Sr)和阿仑膦酸盐(ALN)的3D打印多孔聚醚醚酮(PEEK)材料的生物力学和骨整合性能。根据涂层材料的不同,可分为PEEK组、PEEK-ALN组、PEEK-Sr组和PEEK-ALN-Sr组。完成力学分析后,将材料植入新西兰兔的股骨髁,通过Micro-CT扫描、组织学和荧光染色评估支架材料的成骨能力。结果表明,ALN和Sr成功负载到材料表面,负载后材料的弹性模量和孔隙率无明显变化。Micro-CT显示,与PEEK组和PEEK-ALN组相比,PEEK-ALN-Sr组在骨体积/总体积(BV/TV)、骨小梁间距(TB.Sp)、骨小梁厚度(TB.Th)和骨小梁数量(TB.N)方面存在差异。在骨增殖模型的三维重建、甲苯胺蓝和荧光染色下,PEEK-ALN-Sr组可观察到更多的新骨组织。因此,我们可以得出结论,3D打印多孔PEEK材料具有稳定的孔径和孔隙率,具有理想的骨生长结构。PEEK-ALN-Sr复合材料因其优异的弹性模量和骨整合能力可作为一种新型骨植入物,为骨缺损患者提供临床上可行的治疗方法。