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首页> 外文期刊>Coatings >In Vivo Assessment of Bone Enhancement in the Case of 3D-Printed Implants Functionalized with Lithium-Doped Biological-Derived Hydroxyapatite Coatings: A Preliminary Study on Rabbits
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In Vivo Assessment of Bone Enhancement in the Case of 3D-Printed Implants Functionalized with Lithium-Doped Biological-Derived Hydroxyapatite Coatings: A Preliminary Study on Rabbits

机译:在用锂掺杂的生物衍生的羟基磷灰石涂料官能化的3D印刷植入物的情况下,对骨增强的体内评估:兔初步研究

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We report on biological-derived hydroxyapatite (HA, of animal bone origin) doped with lithium carbonate (Li-C) and phosphate (Li-P) coatings synthesized by pulsed laser deposition (PLD) onto Ti6Al4V implants, fabricated by the additive manufacturing (AM) technique. After being previously validated by in vitro cytotoxicity tests, the Li-C and Li-P coatings synthesized onto 3D Ti implants were preliminarily investigated in vivo, by insertion into rabbits’ femoral condyles. The in vivo experimental model for testing the extraction force of 3D metallic implants was used for this study. After four and nine weeks of implantation, all structures were mechanically removed from bones, by tensile pull-out tests, and coatings’ surfaces were investigated by scanning electron microscopy. The inferred values of the extraction force corresponding to functionalized 3D implants were compared with controls. The obtained results demonstrated significant and highly significant improvement of functionalized implants’ attachment to bone (p-values ≤0.05 and ≤0.00001), with respect to controls. The correct placement and a good integration of all 3D-printed Ti implants into the surrounding bone was demonstrated by performing computed tomography scans. This is the first report in the dedicated literature on the in vivo assessment of Li-C and Li-P coatings synthesized by PLD onto Ti implants fabricated by the AM technique. Their improved mechanical characteristics, along with a low fabrication cost from natural, sustainable resources, should recommend lithium-doped biological-derived materials as viable substitutes of synthetic HA for the fabrication of a new generation of metallic implant coatings.
机译:我们向碳酸锂(Li-C)和通过脉冲激光沉积(PLD)合成的碳酸锂(Li-P)涂层掺杂的生物衍生的羟基磷灰石(HA,动物骨头)和由脉冲激光沉积(PLD)合成的磷酸盐(Li-P)涂层,由添加剂制造制造( AM)技术。在先前通过体外细胞毒性试验验证后,通过插入兔股髁的体内预先在体内预先研究3D TI植入物中的Li-C和Li-P涂层。用于测试3D金属植入物的提取力的体内实验模型用于本研究。经过四个和九个周的植入后,通过扫描电子显微镜通过拉伸拉出试验机械地从骨骼上从骨骼上取出所有结构。将对应于官能化3D植入物的提取力的推断值与对照进行比较。所获得的结果表明,对于对照,官能化植入物对骨(p值≤0.05和≤0.00001)的显着且显着改善。通过执行计算机断层扫描,证明了所有3D印刷TI植入物到周围骨中的正确放置和良好的整合。这是专用文献中的第一个关于通过PLD合成的LI-C和LI-P涂层的体内评估,并通过PLD在AM技术制造的Ti植入物上进行。它们改进的机械特性以及自然,可持续资源的较低的制造成本,应推荐锂掺杂的生物衍生材料作为合成HA的可行替代品,用于制造新一代金属植入物涂料。

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