Journal of Bionic Engineering ›› 2021, Vol. 18 ›› Issue (2): 361-374.doi: 10.1007/s42235-021-0019-x

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Screening the Optimal Patterned Surfaces Consisting of Cell Morphology Mimicking Micro-pillars and Nanotube Arrays for the #br# Design of Titanium Implants#br#

Ping Zhou1, Hongjiao Li1, Feifei Mao2, Hongxin Huang1, Siqi Long1, Fei He1, Jing Chen3*, Shicheng Wei2*   

  1. 1. School and Hospital of Stomatology, Lanzhou University, Lanzhou 730000, China
    2. Central Laboratory, Peking University School and Hospital of Stomatology, Beijing 100081,  China
    3. Institute of Microelectronics, Peking University, Beijing 100871, China
  • 收稿日期:2020-07-17 修回日期:2021-01-16 接受日期:2021-01-23 出版日期:2021-03-10 发布日期:2021-03-28
  • 通讯作者: Shicheng Wei, Jing Chen E-mail:sc-wei@pku.edu.cn, j.chen@pku.edu.cn
  • 作者简介:Ping Zhou1, Hongjiao Li1, Feifei Mao2, Hongxin Huang1, Siqi Long1, Fei He1, Jing Chen3*, Shicheng Wei2*

Screening the Optimal Patterned Surfaces Consisting of Cell Morphology Mimicking Micro-pillars and Nanotube Arrays for the #br# Design of Titanium Implants#br#

Ping Zhou1, Hongjiao Li1, Feifei Mao2, Hongxin Huang1, Siqi Long1, Fei He1, Jing Chen3*, Shicheng Wei2*   

  1. 1. School and Hospital of Stomatology, Lanzhou University, Lanzhou 730000, China
    2. Central Laboratory, Peking University School and Hospital of Stomatology, Beijing 100081,  China
    3. Institute of Microelectronics, Peking University, Beijing 100871, China
  • Received:2020-07-17 Revised:2021-01-16 Accepted:2021-01-23 Online:2021-03-10 Published:2021-03-28
  • Contact: Shicheng Wei, Jing Chen E-mail:sc-wei@pku.edu.cn, j.chen@pku.edu.cn
  • About author:Ping Zhou1, Hongjiao Li1, Feifei Mao2, Hongxin Huang1, Siqi Long1, Fei He1, Jing Chen3*, Shicheng Wei2*

摘要: Micron/nano scale topographic modification has been a significant focus of interest in current titanium (Ti) surface design. However, the influence of micron/nano structured surface on cell or bacterium behavior on the Ti implant has rarely been systematically evaluated. Moreover, except for popular microgrooves, little work has been carried out on the reaction of cells to the bionic structure. In this study, several micro-pillars mimicking cell morphology were prepared on Ti surfaces by lithography and contact printing (ICP) method, and they were further decorated with nanotube arrays by anodization technology. These surface modifications remarkablly increased the surface roughness of pristine Ti surface from 91.17 nm ± 5.57 nm to be more than 1000 nm, and reduced their water contact angles from 68.3? ± 0.7? to be 16.9? ± 2.4?. Then, the effects of these hierarchical micron/nano scale patterns on the behaviors of MG63 osteoblasts, L929 fibroblasts, SCC epithelial cells and P. gingivalis were studied, aiming to evaluate their performance in osseointegration, gingival epithelial sealing and antibacterial ability. Through an innovative scoring strategy, our findings showed that square micro-pillars with 6 μm width and 2 μm height combined with 85 nm diameter nanotubes was suitable for implant neck design, while square micro-pillars with 3 μm width and 3.6 μm height combined with 55 nm diameter nanotubes was the best for implant body design. Our study reveals the synergistic effect of the hierarchical micron/nano scale patterns on MG63 osteoblasts, L929 fibroblasts, SCC epithelial cells and P. gingivalis functions. It provides insight into the design of biomedical implant surfaces.

关键词: hierarchical micron/nano design, cell-like patterns, nanotube arrays, titanium implants, implant osseointegration

Abstract: Micron/nano scale topographic modification has been a significant focus of interest in current titanium (Ti) surface design. However, the influence of micron/nano structured surface on cell or bacterium behavior on the Ti implant has rarely been systematically evaluated. Moreover, except for popular microgrooves, little work has been carried out on the reaction of cells to the bionic structure. In this study, several micro-pillars mimicking cell morphology were prepared on Ti surfaces by lithography and contact printing (ICP) method, and they were further decorated with nanotube arrays by anodization technology. These surface modifications remarkablly increased the surface roughness of pristine Ti surface from 91.17 nm ± 5.57 nm to be more than 1000 nm, and reduced their water contact angles from 68.3? ± 0.7? to be 16.9? ± 2.4?. Then, the effects of these hierarchical micron/nano scale patterns on the behaviors of MG63 osteoblasts, L929 fibroblasts, SCC epithelial cells and P. gingivalis were studied, aiming to evaluate their performance in osseointegration, gingival epithelial sealing and antibacterial ability. Through an innovative scoring strategy, our findings showed that square micro-pillars with 6 μm width and 2 μm height combined with 85 nm diameter nanotubes was suitable for implant neck design, while square micro-pillars with 3 μm width and 3.6 μm height combined with 55 nm diameter nanotubes was the best for implant body design. Our study reveals the synergistic effect of the hierarchical micron/nano scale patterns on MG63 osteoblasts, L929 fibroblasts, SCC epithelial cells and P. gingivalis functions. It provides insight into the design of biomedical implant surfaces.

中图分类号: 

  • hierarchical micron/nano design