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Characterization and evaluation of femtosecond laser-induced sub-micron periodic structures generated on titanium to improve osseointegration of implants

机译:飞秒激光诱导钛上产生的亚微米周期性结构的特性和评估,以改善植入物的骨整合

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Reproducible and controllable methods of modifying titanium surfaces for dental and orthopaedic applications are of interest to prevent poor implant outcomes by improving osseointegration. This study made use of a femtosecond laser to generate laser-induced periodic surface structures with periodicities of 300, 620 and 760 nm on titanium substrates. The reproducible rippled patterns showed consistent submicron scale roughness and relatively hydrophobic surfaces as measured by atomic force microscopy and contact angle, respectively. Transmission electron microscopy and Auger electron spectroscopy identified a thicker oxide layer on ablated surfaces compared to controls. In vitro testing was conducted using osteosarcoma Saos-2 cells. Cell metabolism on the laser-ablated surfaces was comparable to controls and alkaline phosphatase activity was notably increased at late time points for the 620 and 760 nm surfaces compared to controls. Cells showed a more elongated shape on laser-ablated surfaces compared to controls and showed perpendicular alignment to the periodic structures. This work has demonstrated the feasibility of generating submicron features on an implant material with the ability to influence cell response and improve implant outcomes. (C) 2018 Elsevier B.V. All rights reserved.
机译:对于牙科和整形外科应用而言,可再生和可控制的钛表面改性方法是可取的,可以通过改善骨整合来防止植入物不良。这项研究利用飞秒激光在钛基板上产生激光诱导的周期性表面结构,其周期性为300、620和760 nm。通过原子力显微镜和接触角分别测量,可再现的波纹图案显示出一致的亚微米级粗糙度和相对疏水的表面。与对照相比,透射电子显微镜和俄歇电子能谱仪在烧蚀表面上发现了较厚的氧化层。使用骨肉瘤Saos-2细胞进行了体外测试。与对照相比,在激光烧蚀的表面上的细胞代谢与对照相当,并且在较晚的时间点,620和760 nm表面的碱性磷酸酶活性显着提高。与对照相比,细胞在激光烧蚀的表面上显示出更细长的形状,并且与周期结构垂直对齐。这项工作证明了在植入物材料上产生亚微米特征并具有影响细胞反应和改善植入物结果的能力的可行性。 (C)2018 Elsevier B.V.保留所有权利。

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