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Surface conditioning of additively manufactured titanium implants and its influence on materials properties and in vitro biocompatibility

机译:含钛植入物的表面调理及其对材料性质和体外生物相容性的影响

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Customized osteosynthesis materials of titanium alloy can be generated by additive manufacturing replacing the complex adaptation to the patient individual anatomy, especially to the lower jaw bone which shows a highly individual surface area. After printing further conditioning is necessary to adjust surface roughness. The aim of the present study was to analyse the effect of different grinding and polishing procedures on sample surface and composition and in vitro biocompatibility. Ti-6Al-4V ELI samples printed by laser powder bed fusion (LPBF) were post-treated by multi-level procedures to adjust surface roughness using the surface conditioning technologies sandblasting, vibratory finishing, electro polishing or plasma polishing. Topography and chemical composition of the surfaces was analysed. Furthermore, the release of metal ions in contact to cell culture medium was quantified. Human osteoblasts as well as primary human gingiva cells (fibroblasts and epithelial cells) were cultivated in extracts or directly on the surfaces to analyse cytotoxicity, cell adhesion and cell proliferation.Surface roughness of the different materials after final polishing was in between 0.2 and 0.5 mu m, which is in the same range as usually found for conventional titanium materials used in maxillofacial surgery. Furthermore, the wettability was comparable for all post-processing techniques. The chemical compositions of the finished surfaces showed a remarkable impact by the applied finishing technique. Extracts of the samples showed low cytotoxicity with exception of the plasma polished samples, which were shown to release significantly higher amounts of vanadium ions. Accordingly, cells showed good adhesion and proliferation on all samples except plasma polished specimens.Customized devices for midline osseodistraction were exemplarily printed with LPBF starting with patient's 3D data. Those devices can be considered for clinical use, since the printed and finished material meets the requirements of ISO 10993-5 for medical devices.
机译:定制钛合金的骨合作材料可以通过添加剂制造产生替代患者个体解剖学的复杂调整,尤其是显示出高度个体表面积的下颌骨。在印刷进一步调节后,需要调节表面粗糙度。本研究的目的是分析不同研磨和抛光程序对样品表面和组成以及体外生物相容性的影响。通过激光粉末融合(LPBF)印刷的TI-6AL-4V ELI样品通过多级程序进行后处理,以使用表面调理技术喷砂,振动精加工,电抛光​​或等离子体抛光来调节表面粗糙度。分析了表面的地形和化学成分。此外,量化了与细胞培养基接触的金属离子的释放。在提取物中或直接在表面上培养人骨细胞以及原发性人的牙龈细胞(成纤维细胞和上皮细胞),以分析细胞毒性,细胞粘附和细胞增殖。在最终抛光后的不同材料的表面粗糙度在0.2和0.5μm M,其与通常为颌面外科使用的常规钛材料的范围相同的范围。此外,对所有后处理技术的润湿性相当。成品表面的化学组成通过所施加的精加工技术表现出显着的影响。样品的提取物显示出低细胞毒性,但血浆抛光样品除外,其显示出释放较高量的钒离子。因此,除了血浆抛光标本外,细胞对所有样品上的粘附性和增殖均显示出良好的粘附性和增殖。用于中线渗透性的委托器件用LPBF以与患者的3D数据开始印刷。这些装置可以考虑用于临床使用,因为印刷和成品符合医疗设备的ISO 10993-5的要求。

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