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A surface-engineered multifunctional TiO 2 based nano-layer simultaneously elevates the corrosion resistance, osteoconductivity and antimicrobial property of a magnesium alloy.
- Source :
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Acta biomaterialia [Acta Biomater] 2019 Nov; Vol. 99, pp. 495-513. Date of Electronic Publication: 2019 Sep 10. - Publication Year :
- 2019
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Abstract
- Magnesium biometals exhibit great potentials for orthopeadic applications owing to their biodegradability, bioactive effects and satisfactory mechanical properties. However, rapid corrosion of Mg implants in vivo combined with large amount of hydrogen gas evolution is harmful to bone healing process which seriously confines their clinical applications. Enlightened by the superior biocompatibility and corrosion resistance of passive titanium oxide layer automatically formed on titanium alloy, we employ the Ti and O dual plasma ion immersion implantation (PIII) technique to construct a multifunctional TiO <subscript>2</subscript> based nano-layer on ZK60 magnesium substrates for enhanced corrosion resistance, osteoconductivity and antimicrobial activity. The constructed nano-layer (TiO <subscript>2</subscript> /MgO) can effectively suppress degradation rate of ZK60 substrates in vitro and still maintain 94% implant volume after post-surgery eight weeks. In animal study, a large amount of bony tissue with increased bone mineral density and trabecular thickness is formed around the PIII treated group in post-operation eight weeks. Moreover, the newly formed bone in the PIII treated group is well mineralized and its mechanical property almost restores to the level of that of surrounding mature bone. Surprisingly, a remarkable killing ratio of 99.31% against S. aureus can be found on the PIII treated sample under ultra-violet (UV) irradiation which mainly attributes to the oxidative stress induced by the reactive oxygen species (ROS). We believe that this multifunctional TiO <subscript>2</subscript> based nano-layer not only controls the degradation of magnesium implant, but also regulates its implant-to-bone integration effectively. STATEMENT OF SIGNIFICANCE: Rapid corrosion of magnesium implants is the major issue for orthopaedic applications. Inspired by the biocompatibility and corrosion resistance of passive titanium oxide layer automatically formed on titanium alloy, we construct a multifunctional TiO <subscript>2</subscript> /MgO nanolayer on magnesium substrates to simultaneously achieve superior corrosion resistance, satisfactory osteoconductivity in rat intramedullary bone defect model and excellent antimicrobial activity against S. aureus under UV irradiation. The current findings suggest that the specific TiO <subscript>2</subscript> /MgO nano-layer on magnesium surface can achieve the three objectives aforementioned and we believe this study can demonstrate the potential of biodegradable metals for future clinical applications.<br /> (Copyright © 2019 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.)
- Subjects :
- 3T3 Cells
Absorbable Implants
Animals
Bone Diseases microbiology
Bone Diseases surgery
Cell Proliferation
Corrosion
Electrochemistry
Female
Materials Testing
Metals
Mice
Nanotechnology
Osteoblasts metabolism
Rats
Rats, Sprague-Dawley
Reactive Oxygen Species metabolism
Staphylococcus aureus
Surgical Wound Infection prevention & control
Ultraviolet Rays
X-Ray Microtomography
Alloys chemistry
Anti-Infective Agents administration & dosage
Bone Regeneration drug effects
Magnesium chemistry
Surface Properties
Titanium chemistry
Subjects
Details
- Language :
- English
- ISSN :
- 1878-7568
- Volume :
- 99
- Database :
- MEDLINE
- Journal :
- Acta biomaterialia
- Publication Type :
- Academic Journal
- Accession number :
- 31518705
- Full Text :
- https://doi.org/10.1016/j.actbio.2019.09.008