激光宏观结构和氧化钛合金的生物反应:体外和体内研究。

María Dolores Paz, J Iñaki Álava, Leire Goikoetxea, Stefano Chiussi, Idoia Díaz-Güemes, Jesus Usón, Francisco Sánchez, Betty León
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引用次数: 11

摘要

目的:综合评价激光修饰表面的体内外生物学反应。一种结合创新的方法将激光应用于钛合金植入物的宏观结构以及氧化表面。材料和方法:采用A - Nd:YAG标记和ArF准分子激光分别对Ti6Al4V片表面进行宏观组织和紫外氧化。采用人胎成骨细胞培养和羊胫骨模型,研究了激光加工表面、激光宏观结构表面和激光宏观结构氧化表面对细胞反应和成骨能力的影响。结果:体外:单独激光宏观结构对细胞反应无促进作用。附加紫外激光氧化可增强细胞增殖。在体内:尽管宏观结构样品的细胞反应较低,但在植入后三个月,激光处理的两种表面与机器转动的对照样品相比,骨植入物接触的比例更大。由于所有样本的骨整合水平较高,使用绵羊模型6个月似乎不太适合进行比较。尽管经常报道钛氧化对触发更快的骨整合的积极作用,但在本实验中,额外的紫外激光氧化并没有导致显著的体内改善。结论:激光对钛合金表面进行宏观结构修饰可以促进骨的附着,因此可能是一种很有前途的表面修饰策略。在动物模型中,由于生理流体,钛表面氧化的自然过程改变了体外细胞观察到的特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biological response of laser macrostructured and oxidized titanium alloy: an in vitro and in vivo study.

Purpose: To assess both the in vitro and in vivo biological response of a laser modified surface in an integrated manner. A combined innovative approach applies lasers to macrostructure as well as to oxidize the surface of titanium alloy implants.

Materials and methods: A Nd:YAG marking and ArF excimer lasers were used for macrostructuring and UV-oxidizing the surface of Ti6Al4V discs, respectively. Human fetal osteoblastic cell culture and a sheep tibia model were used to assess the cell response and the osseogeneration capability of as-machined, laser macrostructured and laser macrostructured and oxidized surfaces.

Results: In vitro: Laser macrostructuration alone did not promote cell response. Cellular proliferation was enhanced by the additional UV laser oxidation. In vivo: A greater significant percentage of bone-implant contact was obtained for both laser treated surfaces compared to machine-turned control samples, three months after implantation, in spite of the low cellular response for macrostructured samples. The use of sheep model for six months appears to be less adequate for a comparison because of the high level of bone integration in all samples. In spite of the often reported positive effect of titanium oxidation on the triggering of faster osseointegration, in this experiment the additional UV laser oxidation did not lead to a significant in vivo improvement.

Conclusions: Laser macrostructuration of titanium alloy surfaces appears to promote bone apposition and may therefore constitute a promising surface modification strategy. In animal models, the natural process of titanium surface oxidation, because of physiologic fluids, alters properties observed in vitro with cells.

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来源期刊
Journal of Applied Biomaterials & Biomechanics
Journal of Applied Biomaterials & Biomechanics 生物-材料科学:生物材料
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