首页> 外文期刊>Journal of biomedical materials research, Part A >A low elastic modulus Ti-Nb-Hf alloy bioactivated with an elastin-like protein-based polymer enhances osteoblast cell adhesion and spreading.
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A low elastic modulus Ti-Nb-Hf alloy bioactivated with an elastin-like protein-based polymer enhances osteoblast cell adhesion and spreading.

机译:用弹性蛋白样蛋白质基聚合物生物激活的低弹性模量Ti-Nb-Hf合金可增强成骨细胞粘附和扩散。

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摘要

β-type titanium alloys with low Young's modulus are desirable to reduce stress shielding effect and enhance bone remodeling for implants used to substitute failed hard tissue. For biomaterials application, the surface bioactivity is necessary to achieve optimal osseointegration. In the previous work, the low elastic modulus (43 GPa) Ti-25Nb-16Hf (wt %) alloy was mechanically and microstructurally characterized. In the present work, the biological behavior of Ti-25Nb-16Hf was studied. The biological response was improved by surface modification. The metal surface was modified by oxygen plasma and subsequently silanized with 3-chloropropyl(triethoxy)silane for covalent immobilization of the elastin-like polymer. The elastin-like polymer employed exhibits RGD bioactive motives inspired to the extracellular matrix in order to improve cell adhesion and spreading. Upon modification, the achieved surface presented different physical and chemical properties, such as surface energy and chemical composition. Subsequently, osteoblast adhesion, cell numbers, and differentiation studies were performed to correlate surface properties and cell response. The general tendency was that the higher surface energy the higher cell adhesion. Furthermore, cell culture and immunofluorescence microscopy images demonstrated that RGD-modified surfaces improved adhesion and spreading of the osteoblast cell type.
机译:具有低杨氏模量的β型钛合金对于降低应力屏蔽效果并增强用于替代失效的硬组织的植入物的骨重塑是理想的。对于生物材料的应用,表面生物活性是实现最佳骨整合所必需的。在以前的工作中,对低弹性模量(43 GPa)Ti-25Nb-16Hf(wt%)合金进行了机械和微观结构表征。在目前的工作中,研究了Ti-25Nb-16Hf的生物学行为。通过表面改性改善了生物学反应。通过氧等离子体修饰金属表面,然后用3-氯丙基(三乙氧基)硅烷硅烷化以共价固定弹性蛋白样聚合物。所用的弹性蛋白样聚合物表现出RGD生物活性动机,以激发细胞外基质,从而改善细胞粘附和扩散。改性后,获得的表面呈现出不同的物理和化学特性,例如表面能和化学组成。随后,进行了成骨细胞粘附,细胞数量和分化研究,以关联表面性质和细胞反应。一般趋势是,表面能越高,细胞粘附性越高。此外,细胞培养和免疫荧光显微镜图像表明,RGD修饰的表面改善了成骨细胞类型的粘附和扩散。

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