4.7 Article

Polydopamine and Magnesium Ions Loaded 3D-Printed Ti-6Al-4V Implants Coating with Enhanced Osteogenesis and Antibacterial Abilities

期刊

ADVANCED MATERIALS TECHNOLOGIES
卷 7, 期 12, 页码 -

出版社

WILEY
DOI: 10.1002/admt.202200598

关键词

3D-printed Ti-6Al-4V implants; biocompatibility; magnesium ions; multi-scale composite structures; polydopamine

资金

  1. National Natural Science Foundation of China [51975336, 52172282]
  2. Key Research and Development Program of Shandong Province [2020JMRH0202]
  3. China Postdoctoral Science Foundation [2021M690106]
  4. Major Industrial Research Projects in Shandong Province for the Conversion of Old and New Kinetic Energy [2021-13]
  5. Key Research and Development Project of Jining City [2021DZP005]

向作者/读者索取更多资源

This paper aims to improve the biocompatibility of 3D-printed Ti-6Al-4V implants through multi-scale composite structure and bioactive coating. The modified implants showed improved surface wettability and corrosion resistance, as well as excellent osteogenic induction performance and antibacterial properties.
3D printing has been applied in the fabrication of Ti-6Al-4V implants due to its high processing efficiency and flexibility. However, the biological inertness of 3D-printed Ti-6Al-4V implant surface limits its further clinical application. This paper aims to improve the biocompatibility of 3D-printed Ti-6Al-4V implants through multi-scale composite structure and bioactive coating. The samples are prepared by selective laser melting (SLM). The multi-scale composite structure is constructed by acid etching and anodic oxidation, and then the bioactive coating is added by hydrothermal treatment. The results indicate that acid etching removes the residuals on the surface and builds micron-/sub-micron structures. Anodic oxidation superimposes TiO2 nanotube arrays with a diameter of approximate to 80 nm, forming the multi-scale composite structure. The polydopamine-magnesium ion coating is added by hydrothermal treatment on the basis of retaining the multi-scale composite structure. After modification, the surface wettability and corrosion resistance are improved, and the roughness is slightly reduced. Regarding the biocompatibility of the modified 3D-printed Ti-6Al-4V implant, its admirable osteogenic induction performance is verified on osteoblasts (MC3T3-E1). Also, the addition of magnesium ions achieves better antibacterial properties. The results provide new target points for the surface modification of 3D-printed Ti-6Al-4V implant to attain better clinical performance.

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