Overcoming the biological aging of titanium using a wet storage method after ultraviolet treatment

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作者
Sung-Hwan Choi
Won-Seok Jeong
Jung-Yul Cha
Jae-Hoon Lee
Kee-Joon Lee
Hyung-Seog Yu
Eun-Ha Choi
Kwang-Mahn Kim
Chung-Ju Hwang
机构
[1] College of Dentistry,Department of Orthodontics, Institute of Craniofacial Deformity
[2] Yonsei University,Department and Research Institute of Dental Biomaterials and Bioengineering
[3] BK21 PLUS Project,Department of Prosthodontics
[4] College of Dentistry,Plasma Bioscience Research Center
[5] Yonsei University,undefined
[6] College of Dentistry,undefined
[7] Yonsei University,undefined
[8] Kwangwoon University,undefined
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Scientific Reports | / 7卷
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摘要
We evaluated whether the biological activity of the surface of titanium, when stored in an aqueous solution after ultraviolet (UV) treatment, is comparable to that of the surface immediately after UV treatment. We subjected Grade IV titanium discs with machined surfaces to UV radiation for 15 min and then tested them immediately and after storage for 28 days, with and without distilled H2O (dH2O). We evaluated the surface characteristics using surface profiling, contact angle analysis, X-ray photoelectron spectroscopy, and in terms of the surface zeta-potential. We determined the level of biological activity by analysing albumin adsorption, MC3T3-E1 and human mesenchymal cell adhesion and cytoskeleton development, as well as the production of intracellular reactive oxygen species between groups. The surface characteristics produced by the UV irradiation were maintained in dH2O for 28 days. We found that titanium stored in dH2O for 28 days after UV treatment exhibited enhanced protein adsorption, cell attachment, and cytoskeleton development. Titanium stored in dH2O for 28 days after UV irradiation exhibited a lower level of oxidative stress, comparable to that of the titanium immediately after UV treatment. UV treatment combined with wet storage can be used as a means of overcoming the biological aging of titanium.
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  • [1] Branemark PI(1977)Osseointegrated implants in the treatment of the edentulous jaw. Experience from a 10-year period Scand J Plast Reconstr Surg Suppl 16 1-132
  • [2] Mavrogenis AF(2009)Biology of implant osseointegration J Musculoskelet Neuronal Interact 9 61-71
  • [3] Dimitriou R(2014)A review on the wettability of dental implant surfaces II: Biological and clinical aspects Acta Biomater 10 2907-2918
  • [4] Parvizi J(2009)Discrete calcium phosphate nanocrystalline deposition enhances osteoconduction on titanium-based implant surfaces J Biomed Mater Res A 90 577-585
  • [5] Babis GC(2016)Evaluation of the surface characteristics of anodic oxidized miniscrews and their impact on biomechanical stability: An experimental study in beagle dogs Am J Orthod Dentofacial Orthop 149 31-38
  • [6] Gittens RA(2009)Time-dependent degradation of titanium osteoconductivity: an implication of biological aging of implant materials Biomaterials 30 5352-5363
  • [7] Mendes VC(2015)Biological Effect of Ultraviolet Photocatalysis on Nanoscale Titanium with a Focus on Physicochemical Mechanism Langmuir 31 10037-10046
  • [8] Moineddin R(2016)Time-dependent effects of ultraviolet and nonthermal atmospheric pressure plasma on the biological activity of titanium Sci Rep 6 33421-667
  • [9] Davies JE(2009)Age-dependent Degradation of the Protein Adsorption Capacity of Titanium J Dent Res 88 663-15428
  • [10] Choi SH(2005)Mechanism of photoinduced superhydrophilicity on the TiO2 photocatalyst surface J Phys Chem B 109 15422-432