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Superior Pre-Osteoblast Cell Response of Etched Ultrafine-Grained Titanium with a Controlled Crystallographic Orientation

机译:可控晶体学取向的刻蚀超细晶粒钛的优异的成骨前细胞反应

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摘要

Ultrafine-grained (UFG) Ti for improved mechanical performance as well as its surface modification enhancing biofunctions has attracted much attention in medical industries. Most of the studies on the surface etching of metallic biomaterials have focused on surface topography and wettability but not crystallographic orientation, i.e., texture, which influences the chemical as well as the physical properties. In this paper, the influences of texture and grain size on roughness, wettability, and pre-osteoblast cell response were investigated in vitro after HF etching treatment. The surface characteristics and cell behaviors of ultrafine, fine, and coarse-grained Ti were examined after the HF etching. The surface roughness during the etching treatment was significantly increased as the orientation angle from the basal pole was increased. The cell adhesion tendency of the rough surface was promoted. The UFG Ti substrate exhibited a higher texture energy state, rougher surface, enhanced hydrophilic wettability, and better cell adhesion and proliferation behaviors after etching than those of the coarse- and fine-grained Ti substrates. These results provide a new route for enhancing both mechanical and biological performances using etching after grain refinement of Ti.
机译:改善机械性能以及增强生物功能的表面改性的超细晶粒(UFG)Ti在医疗行业引起了广泛关注。关于金属生物材料的表面蚀刻的大多数研究都集中在表面形貌和润湿性上,而不是晶体学取向即质地上,这影响了化学和物理性质。在本文中,在高频蚀刻处理后,在体外研究了质地和晶粒尺寸对粗糙度,润湿性和成骨细胞反应的影响。 HF蚀刻后,检查了超细,细晶粒和粗晶粒Ti的表面特性和晶胞行为。随着与基极的定向角增加,蚀刻处理期间的表面粗糙度显着增加。促进了粗糙表面的细胞粘附趋势。 UFG Ti衬底比粗和细晶粒的Ti衬底具有更高的织构能态,更粗糙的表面,增强的亲水性润湿性以及蚀刻后的更好的细胞粘附和增殖行为。这些结果提供了一种在钛晶粒细化后使用蚀刻增强机械和生物学性能的新途径。

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