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A Newly Created Meso- Micro- and Nano-Scale Rough Titanium Surface Promotes Bone-Implant Integration

机译:新近创建的中微和纳米级粗糙钛表面促进了骨植入物的整合

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摘要

Titanium implants are the standard therapeutic option when restoring missing teeth and reconstructing fractured and/or diseased bone. However, in the 30 years since the advent of micro-rough surfaces, titanium’s ability to integrate with bone has not improved significantly. We developed a method to create a unique titanium surface with distinct roughness features at meso-, micro-, and nano-scales. We sought to determine the biological ability of the surface and optimize it for better osseointegration. Commercially pure titanium was acid-etched with sulfuric acid at different temperatures (120, 130, 140, and 150 °C). Although only the typical micro-scale compartmental structure was formed during acid-etching at 120 and 130 °C, meso-scale spikes (20–50 μm wide) and nano-scale polymorphic structures as well as micro-scale compartmental structures formed exclusively at 140 and 150 °C. The average surface roughness (Ra) of the three-scale rough surface was 6–12 times greater than that with micro-roughness only, and did not compromise the initial attachment and spreading of osteoblasts despite its considerably increased surface roughness. The new surface promoted osteoblast differentiation and in vivo osseointegration significantly; regression analysis between osteoconductivity and surface variables revealed these effects were highly correlated with the size and density of meso-scale spikes. The overall strength of osseointegration was the greatest when the acid-etching was performed at 140 °C. Thus, we demonstrated that our meso-, micro-, and nano-scale rough titanium surface generates substantially increased osteoconductive and osseointegrative ability over the well-established micro-rough titanium surface. This novel surface is expected to be utilized in dental and various types of orthopedic surgical implants, as well as titanium-based bone engineering scaffolds.
机译:当修复缺失的牙齿并重建骨折和/或患病的骨头时,钛植入物是标准的治疗选择。但是,自从微观粗糙表面问世以来的30年中,钛与骨骼整合的能力并未显着提高。我们开发了一种方法来创建具有独特的钛表面,该表面在中,微米和纳米尺度上具有明显的粗糙度特征。我们试图确定表面的生物能力并对其进行优化以实现更好的骨整合。商业纯钛在不同温度(120、130、140和150°C)下用硫酸酸蚀刻。尽管在120和130°C的酸腐蚀过程中仅形成了典型的微尺度隔室结构,但中尺度的尖峰(宽20–50μm)和纳米级多晶型结构以及仅在60℃形成的微尺度隔室结构140和150°C。三级粗糙表面的平均表面粗糙度(Ra)比仅具有微观粗糙度的平均表面粗糙度(Ra)大6至12倍,尽管其表面粗糙度大大增加,但并未损害成骨细胞的初始附着和扩散。新的表面显着促进了成骨细胞的分化和体内骨整合。骨电导率和表面变量之间的回归分析表明,这些影响与中尺度尖峰的大小和密度高度相关。当在140℃下进行酸蚀刻时,骨整合的总强度最大。因此,我们证明了我们的介孔,微米和纳米级的粗糙钛表面在成熟的微观粗糙钛表面上产生了显着增强的骨传导和骨整合能力。这种新颖的表面有望用于牙科和各种类型的整形外科植入物中,以及钛基骨工程支架中。

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