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首页> 外文期刊>Materials & design >Calcium phosphate coated 3D printed porous titanium with nanoscale surface modification for orthopedic and dental applications
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Calcium phosphate coated 3D printed porous titanium with nanoscale surface modification for orthopedic and dental applications

机译:磷酸钙涂层的3D打印的多孔钛具有纳米级表面改性,可用于整形外科和牙科应用

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摘要

This study aims to improve the interfacial bonding between the osseous host tissue and the implant surface through the application of doped calcium phosphate (CaP) coating on 3D printed porous titanium. Porous titanium (Ti) cylinders with 25% volume porosity were fabricated using Laser Engineered Net Shaping (LENST (TM)), a commercial 3D printing technique. The surface of these 3D printed cylinders was modified by growing TiO2 nanotubes first, followed by a coating with Sr2+ and Si4+ doped bioactive CaP ceramic in simulated body fluid (SBF). Doped CaP coated implants were hypothesized to show enhanced early stage bone tissue integration. Biological properties of these implants were investigated in vivo using a rat distal femur model after 4 and 10 weeks. CaP coated porous Ti implants have enhanced tissue ingrowth as was evident from the CT scan analysis, push out test results, and the histological analysis compared to porous implants with or without surface modification via titania nanotubes. Increased osteoid-like new bone formation and accelerated mineralization were revealed inside the CaP coated porous implants. It is envisioned that such an approach of adding a bioactive doped CaP layer on porous Ti surface can reduce healing time by enhancing early stage osseointegration in vivo. (C) 2018 Elsevier Ltd. All rights reserved.
机译:这项研究旨在通过在3D打印的多孔钛上施加掺杂的磷酸钙(CaP)涂层来改善骨宿主组织与植入物表面之间的界面结合。使用商业3D打印技术Laser Engineered Net Shaping(LENST(TM))制造了具有25%体积孔隙率的多孔钛(Ti)圆柱。通过首先生长TiO2纳米管,然后在模拟体液(SBF)中涂覆Sr2 +和Si4 +掺杂的生物活性CaP陶瓷,可以对这些3D打印圆柱体的表面进行改性。假设掺杂CaP涂层的植入物显示出增强的早期骨组织整合。在4和10周后,使用大鼠股骨远端模型在体内研究了这些植入物的生物学特性。从CT扫描分析,推出测试结果以及组织学分析来看,CaP涂层多孔Ti植入物与通过或不通过二氧化钛纳米管进行表面改性的多孔植入物相比具有增强的组织向内生长。 CaP涂层多孔植入物内部发现类骨样新骨形成增加,矿化加速。可以预见,在多孔Ti表面上添加生物活性掺杂CaP层的这种方法可以通过增强体内早期骨整合来减少愈合时间。 (C)2018 Elsevier Ltd.保留所有权利。

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