Laser bioengineering of glass-titanium implants surface

F. Lusquiños, F. Arias-González, J. Penide, J. del Val, R. Comesaña, F. Quintero, A. Riveiro, M. Boutinguiza, M. Pascual, A. Durán, J. Pou
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引用次数: 1

Abstract

Osseointegration is the mean challenge when surgical treatments fight against load-bearing bone diseases. Absolute bone replacement by a synthetic implant has to be completed not only from the mechanics point of view, but also from a biological approach. Suitable strength, resilience and stress distribution of titanium alloy implants are spoiled by the lack of optimal biological characteristics. The inert quality of extra low interstitial titanium alloy, which make it the most attractive metallic alloy for biomedical applications, oppose to an ideal surface with bone cell affinity, and capable to stimulate bone attachment bone growth. Diverse laser treatments have been proven as effective tools to modify surface properties, such as wettability in contact to physiological fluids, or osteoblast guided and slightly enhanced attachment. The laser surface cladding can go beyond by providing titanium alloy surfaces with osteoconduction and osteoinduction properties. In this research work, the laser radiation is used to produce bioactive glass coatings on Ti6Al4V alloy substrates. Specific silicate bioactive glass compositions has been investigated to achieve suitable surface tension and viscosity temperature behavior during processing, and to provide with the required release of bone growth gene up regulation agents in the course of resorption mediated by physiological fluids. The produced coatings and interfaces, the surface osteoconduction properties, and the chemical species release in simulated physiological fluid were characterized by scanning electron microscopy (SEM), hot stage microscopy (HSM), X-ray diffraction (XRD), X ray fluorescence (XRF), and Fourier transform infrared spectroscopy (FTIR).
玻璃钛植入物表面的激光生物工程
骨整合是外科治疗对抗负重骨疾病的主要挑战。人工合成假体的绝对骨置换不仅要从力学角度出发,而且要从生物学角度出发。由于缺乏理想的生物学特性,影响了钛合金种植体的强度、回弹性和应力分布。超低间隙钛合金的惰性特性使其成为生物医学应用中最具吸引力的金属合金,而不是具有骨细胞亲和力的理想表面,能够刺激骨附着骨生长。各种激光治疗已被证明是改变表面特性的有效工具,例如与生理液体接触时的润湿性,或成骨细胞引导和轻微增强的附着。激光表面熔覆可以超越为钛合金表面提供骨传导和骨诱导性能。在本研究中,利用激光辐射在Ti6Al4V合金基底上制备生物活性玻璃涂层。研究了特定的硅酸盐生物活性玻璃成分,在加工过程中获得合适的表面张力和粘度温度行为,并在生理液体介导的吸收过程中提供所需的骨生长基因向上调节剂的释放。采用扫描电镜(SEM)、热台显微镜(HSM)、X射线衍射(XRD)、X射线荧光(XRF)和傅里叶变换红外光谱(FTIR)对制备的涂层和界面、表面骨传导性能以及化学物质在模拟生理液中的释放进行了表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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