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Microwave-assisted fabrication of titanium implants with controlled surface topography for rapid bone healing

机译:微波辅助制备具有受控表面形貌的钛植入物,以快速修复骨

摘要

Morphological surface modifications have been reported to enhance the performance of biomedical implants. However, current methods of introducing graded porosity involves postprocessing techniques that lead to formation of microcracks, delamination, loss of fatigue strength, and, overall, poor mechanical properties. To address these issues, we developed a microwave sintering procedure whereby pure titanium powder can be readily densified into implants with graded porosity in a single step. Using this approach, surface topography of implants can be closely controlled to have a distinctive combination of surface area, pore size, and surface roughness. In this study, the effect of various surface topographies on in vitro response of neonatal rat calvarial osteoblast in terms of attachment and proliferation is studied. Certain graded surfaces nearly double the chance of cell viability in early stages (similar to one month) and are therefore expected to improve the rate of healing. On the other hand, while the osteoblast morphology significantly differs in each sample at different periods, there is no straightforward correlation between early proliferation and quantitative surface parameters such as average roughness or surface area. This indicates that the nature of cell-surface interactions likely depends on other factors, including spatial parameters.
机译:据报道,表面形态改性可增强生物医学植入物的性能。然而,当前引入分级孔隙率的方法涉及后处理技术,其导致微裂纹的形成,分层,疲劳强度的损失以及总体上较差的机械性能。为了解决这些问题,我们开发了一种微波烧结程序,可在一个步骤中将纯钛粉末轻松地压实成具有渐变孔隙率的植入物。使用这种方法,可以严密控制植入物的表面形貌,使其具有表面积,孔径和表面粗糙度的独特组合。在这项研究中,研究了各种表面形貌对新生大鼠颅盖成骨细胞体外附着和增殖反应的影响。某些渐变表面在早期阶段(类似于一个月)几乎使细胞存活的机会增加了一倍,因此有望提高治愈率。另一方面,虽然每个样品在不同时期的成骨细胞形态显着不同,但早期增殖与定量表面参数(例如平均粗糙度或表面积)之间没有直接相关性。这表明细胞表面相互作用的性质可能取决于其他因素,包括空间参数。

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