Research Institute of Advanced Manufacturing Technology, Korea Institute of Industrial Technology, Incheon 21999, Republic of Korea.
Biofabrication. 2019 Aug 22;11(4):045014. doi: 10.1088/1758-5090/ab376b.
Polyetheretherketone (PEEK), one of the potential alternatives to metallic materials for implants, necessarily involves high temperature process conditions to be three-dimensionally (3D) printed. We developed a 3D printing setup equipped with thermally stabilized modules of the printing nozzle and building chamber, by which the PEEK implants could be successfully manufactured. Under optimized printing conditions, the maximal mechanical strength of the 3D printed sample attained over 80% of the original bulk property of PEEK. To enhance the interfacial biocompatibility, the as-printed implants were postprocessed with titanium (Ti) sputtering. The Ti-coated surfaces were evaluated through characterization studies of x-ray diffraction spectra, microscopic topographies, and wetting properties. For the in vitro tests, preosteoblasts were cultured on the developed PEEK-Ti structures and evaluated in terms of cell adhesion, proliferation, and osteogenic differentiation. In addition, the bone regeneration capability of the PEEK-Ti implants was confirmed by animal experiments using a rabbit tibia defect model for a period of 12 weeks. In the overall in vitro and in vivo tests, we confirmed the superior bioactivities of the Ti-modified and 3D printed interface by comparisons between the samples of machined and printed samples with or without Ti coating. Taken together, the comprehensive manufacturing approaches that involve 3D printing and biocompatible postprocessing are expected to have universal applicability in a wide range of bone tissue engineering.
聚醚醚酮(PEEK)是植入物金属材料的潜在替代品之一,其三维(3D)打印需要高温工艺条件。我们开发了一种 3D 打印设备,配备了打印喷嘴和构建腔的热稳定模块,通过该设备可以成功制造 PEEK 植入物。在优化的打印条件下,3D 打印样品的最大机械强度达到 PEEK 原始整体性能的 80%以上。为了提高界面生物相容性,对所打印的植入物进行了钛(Ti)溅射后处理。通过 X 射线衍射光谱、微观形貌和润湿性的特性研究对 Ti 涂层表面进行了评估。对于体外测试,将前成骨细胞培养在开发的 PEEK-Ti 结构上,并根据细胞黏附、增殖和成骨分化进行评估。此外,通过使用兔胫骨缺损模型进行 12 周的动物实验,证实了 PEEK-Ti 植入物的骨再生能力。在整体体外和体内测试中,通过对具有或不具有 Ti 涂层的机加工和打印样品进行比较,证实了 Ti 改性和 3D 打印界面的优越生物活性。综上所述,涉及 3D 打印和生物相容性后处理的综合制造方法有望在广泛的骨组织工程中具有普遍适用性。