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Biodegradable Magnesium Bone Implants Coated with a Novel Bioceramic Nanocomposite

机译:新型生物陶瓷纳米复合材料涂层的可生物降解的镁骨植入物。

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摘要

Magnesium (Mg) alloys are being investigated as a biodegradable metallic biomaterial because of their mechanical property profile, which is similar to the human bone. However, implants based on Mg alloys are corroded quickly in the body before the bone fracture is fully healed. Therefore, we aimed to reduce the corrosion rate of Mg using a double protective layer. We used a magnesium-aluminum-zinc alloy (AZ91) and treated its surface with micro-arc oxidation (MAO) technique to first form an intermediate layer. Next, a bioceramic nanocomposite composed of diopside, bredigite, and fluoridated hydroxyapatite (FHA) was coated on the surface of MAO treated AZ91 using the electrophoretic deposition (EPD) technique. Our in vivo results showed a significant enhancement in the bioactivity of the nanocomposite coated AZ91 implant compared to the uncoated control implant. Implantation of the uncoated AZ91 caused a significant release of hydrogen bubbles around the implant, which was reduced when the nanocomposite coated implants were used. Using histology, this reduction in the corrosion rate of the coated implants resulted in an improved new bone formation and reduced inflammation in the interface of the implants and the surrounding tissue. Hence, our strategy using a MAO/EPD of a bioceramic nanocomposite coating (i.e., diopside-bredigite-FHA) can significantly reduce the corrosion rate and improve the bioactivity of the biodegradable AZ91 Mg implant.
机译:镁(Mg)合金由于其机械特性与人类骨骼相似而被研究为可生物降解的金属生物材料。但是,在骨折完全愈合之前,基于镁合金的植入物会在体内迅速腐蚀。因此,我们旨在使用双重保护层降低Mg的腐蚀速率。我们使用镁铝锌合金(AZ91),并通过微弧氧化(MAO)技术对其表面进行处理,以首先形成中间层。接下来,使用电泳沉积(EPD)技术将由透辉石,石和氟化羟基磷灰石(FHA)组成的生物陶瓷纳米复合材料涂覆在经过MAO处理的AZ91的表面上。我们的体内结果显示,与未涂覆的对照植入物相比,纳米复合材料涂覆的AZ91植入物的生物活性显着增强。未涂覆的AZ91的注入导致植入物周围大量氢气泡的释放,当使用纳米复合材料涂覆的注入物时,氢气泡的释放减少。使用组织学,涂覆的植入物的腐蚀速率的这种降低导致改善的新骨形成并减少了植入物与周围组织的界面中的炎症。因此,我们使用生物陶瓷纳米复合材料涂层(即透辉石-bre指-FHA)的MAO / EPD的策略可以显着降低腐蚀速率并提高可生物降解的AZ91 Mg植入物的生物活性。

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