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Comparison of Selective Laser Melted Titanium and Magnesium Implants Coated with PCL

机译:PCL涂层选择性激光熔化钛和镁植入物的比较

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Degradable implant material for bone remodeling that corresponds to the physiological stability of bone has still not been developed. Promising degradable materials with good mechanical properties are magnesium and magnesium alloys. However, excessive gas production due to corrosion can lower the biocompatibility. In the present study we used the polymer coating polycaprolactone (PCL), intended to lower the corrosion rate of magnesium. Additionally, improvement of implant geometry can increase bone remodeling. Porous structures are known to support vessel ingrowth and thus increase osseointegration. With the selective laser melting (SLM) process, defined open porous structures can be created. Recently, highly reactive magnesium has also been processed by SLM. We performed studies with a flat magnesium layer and with porous magnesium implants coated with polymers. The SLM produced magnesium was compared with the titanium alloy TiAl6V4, as titanium is already established for the SLM-process. For testing the biocompatibility, we used primary murine osteoblasts. Results showed a reduced corrosion rate and good biocompatibility of the SLM produced magnesium with PCL coating.
机译:与骨骼的生理稳定性相对应的用于骨骼重塑的可降解植入物材料尚未开发。具有良好机械性能的可降解材料是镁和镁合金。但是,由于腐蚀而产生的过量气体会降低生物相容性。在本研究中,我们使用了聚合物涂层聚己内酯(PCL),旨在降低镁的腐蚀速率。另外,改善植入物的几何形状可以增加骨骼的重塑。已知多孔结构可支持血管向内生长,从而增加骨整合。通过选择性激光熔化(SLM)工艺,可以创建定义的开放式多孔结构。最近,SLM还加工了高反应性镁。我们用平坦的镁层和涂有聚合物的多孔镁植入物进行了研究。将SLM生产的镁与钛合金TiAl6V4进行比较,因为已经为SLM工艺建立了钛。为了测试生物相容性,我们使用了原代鼠成骨细胞。结果表明,SLM生产的PCL涂层镁的腐蚀速率降低且具有良好的生物相容性。

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