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具有微/纳米结构表面的3D打印Ti-6Al-4V植入物及其细胞反应。

3D Printed Ti-6Al-4V Implant with a Micro/Nanostructured Surface and Its Cellular Responses.

作者信息

Yu Mingzhi, Wan Yi, Ren Bing, Wang Hongwei, Zhang Xiao, Qiu Cheng, Liu Anqi, Liu Zhanqiang

机构信息

Key Laboratory of High Efficiency and Clean Manufacturing, School of Mechanical Engineering, Shandong University, Jinan 250061, China.

Department of Mechanical and Aerospace Engineering, University of Florida, Gainesville, Florida 32611, United States.

出版信息

ACS Omega. 2020 Dec 4;5(49):31738-31743. doi: 10.1021/acsomega.0c04373. eCollection 2020 Dec 15.

Abstract

Three-dimensional (3D) printing technology has been proved to be a powerful tool for the free-form fabrication of titanium (Ti) implants. However, the surface quality of 3D printed Ti implants is not suitable for clinical application directly. Therefore, surface modification of 3D printed Ti implants is required in order to achieve good biocompatibility and osseointegration. In this study, a novel surface modification method of 3D printed Ti-6Al-4V implants has been proposed, which combined acid etching with hydrothermal treatment to construct micro/nanostructures. Polished TC4 sheets (P), electron beam melting Ti sheets (AE), and micro/nanostructured Ti sheets (AMH) were used in this study to evaluate the effects of different surface morphologies on cellular responses. The surface morphology and 3D topography after treatment were detected via scanning electron microscopy and laser scanning microscopy. The results illustrated that a hierarchical structure comprising micro-valleys and nanowires with a surface roughness of 14.388 μm was successfully constructed. Compared with group P samples, the hydrophilicity of group AMH samples significantly increased with a reduced water contact angle from 54.9° to 4.5°. Cell culture experiments indicated that the micro/nanostructures on the material surface could enhance the cell adhesion and proliferation of MC3T3s. The microstructure could enhance bone-to-implant contact, and the nanostructure could directly interact with some cell membrane receptors. Overall, this study proposes a new strategy to construct micro/nanostructures on the surface of 3D printed Ti-6Al-4V implants and may further serve as a potential modification method for better osteogenesis ability.

摘要

三维(3D)打印技术已被证明是用于自由形式制造钛(Ti)植入物的有力工具。然而,3D打印钛植入物的表面质量并不适合直接临床应用。因此,需要对3D打印钛植入物进行表面改性,以实现良好的生物相容性和骨整合。在本研究中,提出了一种3D打印Ti-6Al-4V植入物的新型表面改性方法,该方法将酸蚀与水热处理相结合以构建微/纳米结构。本研究使用了抛光的TC4板材(P)、电子束熔化钛板材(AE)和微/纳米结构化钛板材(AMH)来评估不同表面形态对细胞反应的影响。通过扫描电子显微镜和激光扫描显微镜检测处理后的表面形态和三维形貌。结果表明,成功构建了一种由微谷和纳米线组成的分级结构,表面粗糙度为14.388μm。与P组样品相比,AMH组样品的亲水性显著增加,水接触角从54.9°降至4.5°。细胞培养实验表明,材料表面的微/纳米结构可以增强MC3T3细胞的黏附和增殖。微观结构可以增强骨与植入物的接触,而纳米结构可以直接与一些细胞膜受体相互作用。总体而言,本研究提出了一种在3D打印Ti-6Al-4V植入物表面构建微/纳米结构的新策略,并可能进一步作为一种具有更好成骨能力的潜在改性方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d581/7745418/b2fc54dd52b5/ao0c04373_0002.jpg

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