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Improved bioactivity of selective laser melting titanium: Surface modification with micro-ano-textured hierarchical topography and bone regeneration performance evaluation

机译:选择性激光熔化钛的生物活性得到改善:具有微/纳米纹理化的分层形貌的表面改性和骨再生性能评估

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Selective laser melting (SLM) titanium requires surface modification to improve its bioactivity. The microrough surface of it can be utilized as the micro primary substrate to create a micro-ano-textured topography for improved bone regeneration. In this study, the microrough SLM titanium substrate was optimized by sandblasting, and nano-porous features of orderly arranged nanotubes and disorderly arranged nanonet were produced by anodization (SAN) and alkali-heat treatment (SAH), respectively. The results were compared with the control group of an untreated surface (native-SLM) and a microtopography only surface treated by acid etching (SLA). The effects of the different topographies on cell functions and bone formation performance were evaluated in vitro and in vivo. It was found that micro-ano-textured topographies of SAN and SAH showed enhanced cell behaviour relative to the microtopography of SLA with significantly higher proliferation on the 1st, 3rd, 5th and 7th day (P < 0.05) and higher total protein contents on the 14th day (P < 0.05). In vivo, SAN and SAH formed more successively regenerated bone, which resulted in higher bone-implant contact (BIC%) and bone-bonding force than native-SLM and SLA. In addition, the three-dimensional nanonet of SAH was expected to be more similar to native extracellular matrix (ECM) and thus led to better bone formation. The alkaline phosphatase activity of SAH was significantly higher than the other three groups at an earlier stage of the 7th day (P < 0.05) and the BIC% was nearly double that of native-SLM and SLA in the 8th week. In conclusion, the addition of nano-porous features on the microrough SLM titanium surface is effective in improving the bioactivity and bone regeneration performance, in which the ECM-like nanonet with a disorderly arranged biomimetic feature is suggested to be more efficient than nanotubes. (C) 2016 Elsevier B.V. All rights reserved.
机译:选择性激光熔化(SLM)钛需要表面改性以提高其生物活性。它的微粗糙表面可以用作微主要基底,以产生微/纳米纹理的形貌,从而改善骨骼的再生。在这项研究中,通过喷砂优化了微粗糙的SLM钛基底,并分别通过阳极氧化(SAN)和碱热处理(SAH)产生了有序排列的纳米管和无序排列的纳米网的纳米孔特征。将结果与未处理表面(天然SLM)和仅微形貌表面经酸蚀刻(SLA)处理的对照组进行比较。在体外和体内评估了不同地形对细胞功能和骨形成性能的影响。已发现,SAN和SAH的微/纳米织构形貌相对于SLA的微形貌表现出增强的细胞行为,在第1、3、5和7天的增殖显着更高(P <0.05),而SLA的总蛋白含量更高。第14天(P <0.05)。在体内,SAN和SAH形成了更多依次再生的骨骼,与天然SLM和SLA相比,导致更高的骨-植入物接触(BIC%)和骨结合力。此外,预计SAH的三维纳米网与天然细胞外基质(ECM)更加相似,从而导致更好的骨骼形成。在第7天的早期,SAH的碱性磷酸酶活性显着高于其他三组(P <0.05),并且在第8周的BIC%几乎是天然SLM和SLA的两倍。总之,在微粗糙的SLM钛表面上添加纳米孔特征可有效改善生物活性和骨骼再生性能,其中建议将具有无序排列的仿生特征的ECM状纳米网比纳米管更有效。 (C)2016 Elsevier B.V.保留所有权利。

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