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采用一步激光烧蚀法在可植入 Co-Cr-Mo 合金上制造用于组织工程的分级微纳结构。

Fabricating hierarchical micro and nano structures on implantable Co-Cr-Mo alloy for tissue engineering by one-step laser ablation.

机构信息

Key Laboratory of Education Ministry for Modern design & Rotary-Bearing System, Xi'an Jiaotong University, Xi'an, 710049, PR China.

Key Laboratory of Education Ministry for Modern design & Rotary-Bearing System, Xi'an Jiaotong University, Xi'an, 710049, PR China.

出版信息

Colloids Surf B Biointerfaces. 2018 Jan 1;161:628-635. doi: 10.1016/j.colsurfb.2017.11.040. Epub 2017 Nov 16.

Abstract

Surface texturing is one of the effective strategies to improve bioactivity of implantable materials. In this study, hierarchical micro and nano structure (HMN) were fabricated on Co-Cr-Mo alloy substrate by a movable picosecond laser irradiation. Respectively, microgrooves with nano ripples and islands were produced on Co-Cr-Mo alloy by low and high laser power density. X-ray diffraction apparatus (XRD) phase analysis illustrated that substrate was in the phase of γ- face-centered cubic structure (FCC) before laser treatment, while it was in ε-hexagonal closest packing structure (HCP) phase dominant after laser treatment. Cell adhesion and proliferation studies showed that the HMN surface exhibits enhanced adhesion of MC3TC-E1 osteoblast and promoted cell activity. Analyzing of the morphology of osteoblast cells indicated cells were in high ratio of elongation on the HMN surface, while they mainly kept in round shape on the polished surface. Results indicated the formation of hierarchical structure on Co-Cr-Mo alloy was able to improve biological performances, suggesting the potential application in cobalt based orthopedic implants.

摘要

表面织构化是提高植入材料生物活性的有效策略之一。本研究采用可移动皮秒激光辐照在 Co-Cr-Mo 合金基底上制备了分级微纳结构(HMN)。分别采用低激光功率密度和高激光功率密度在 Co-Cr-Mo 合金上制备了具有纳米波纹和纳米岛的微沟槽。X 射线衍射仪(XRD)相分析表明,激光处理前基底处于γ-面心立方结构(FCC)相,激光处理后主要为ε-六方最密堆积结构(HCP)相。细胞黏附和增殖研究表明,HMN 表面表现出增强的 MC3TC-E1 成骨细胞黏附力和促进细胞活性。对成骨细胞形态的分析表明,细胞在 HMN 表面呈高比例伸长,而在抛光表面主要保持圆形。结果表明,Co-Cr-Mo 合金上分级结构的形成能够提高生物性能,表明其在钴基骨科植入物中有潜在的应用。

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