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牙科氧化锆的光功能化:表面改性以改善生物整合并保持晶体稳定性。

Photofunctionalization of dental zirconia oxide: Surface modification to improve bio-integration preserving crystal stability.

作者信息

Roy Marco, Pompella Alfonso, Kubacki Jerzy, Piosik Adam, Psiuk Bronisław, Klimontko Joanna, Szade Jacek, Roy Robert A, Hedzelek Wieslaw

机构信息

Prosthodontic Department, Poznan University of Medical Science, Ul. Bukowska 70, 60-812 Poznan, Poland.

Dept. of Translational Research and New Technologies in Medicine and Surgery, University of Pisa Medical School, Via Roma 55, 56126 Pisa, Italy.

出版信息

Colloids Surf B Biointerfaces. 2017 Aug 1;156:194-202. doi: 10.1016/j.colsurfb.2017.05.031. Epub 2017 May 12.

Abstract

The use of zirconium oxide in dental implantology is rapidly increasing as it is regarded as being more aesthetical and biologically friendly than titanium oxide. The interaction of titanium oxide with cells and proteins has proven to be significantly affected by the inevitable atmospheric hydrocarbon contamination, defined as biological ageing. The latter has proven to be effectively reversed by UVC irradiation. Crystal structures of both Zr and Ti oxides are very similar, thus also ZrO is prone to contamination by hydrocarbons. In the present study we have characterized the chemical-physical changes occurring to ZrO after UVC irradiation. Firstly a reduction by 3-fold of carbon present on its surface. XRD analysis has indicated that UVC irradiation treatment does not affect the crystalline structure of ZrO, suggesting that it is possible to improve cell attachment on the surface without sacrificing the mechanical strength of the material. In addition a chemical model of interaction of cell surface proteins with the almost carbon free ZrO surface obtainable after UVC irradiation is proposed, pointing to the important role likely played by integrins and RGD sequences originating in soluble proteins adsorbed at the cell/ZrO interface. Hence in clinical practice UVC photofunctionalization could improve the soft tissue seal around dental implants functioning as a valid barrier between implant and peri-implant bone, thereby improving the long-term success of implants.

摘要

氧化锆在牙种植学中的应用正在迅速增加,因为它被认为比氧化钛更美观且对生物更友好。氧化钛与细胞和蛋白质的相互作用已被证明会受到不可避免的大气碳氢化合物污染(即生物老化)的显著影响。事实证明,通过紫外线C(UVC)照射可以有效逆转后者。锆和钛的氧化物的晶体结构非常相似,因此氧化锆也容易受到碳氢化合物的污染。在本研究中,我们对UVC照射后氧化锆发生的物理化学变化进行了表征。首先,其表面的碳含量减少了3倍。X射线衍射(XRD)分析表明,UVC照射处理不会影响氧化锆的晶体结构,这表明在不牺牲材料机械强度的情况下,可以改善细胞在其表面的附着。此外,还提出了细胞表面蛋白质与UVC照射后获得的几乎无碳的氧化锆表面相互作用的化学模型,指出整合素和源自吸附在细胞/氧化锆界面的可溶性蛋白质中的RGD序列可能发挥的重要作用。因此,在临床实践中,UVC光功能化可以改善牙种植体周围的软组织封闭,作为种植体与种植体周围骨之间的有效屏障,从而提高种植体的长期成功率。

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