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Peptide-functionalized zirconia and new zirconia/titanium biocermets for dental applications

机译:肽官能化的氧化锆和新型氧化锆/钛生物陶瓷在牙科领域的应用

摘要

[Objective]: Titanium materials have been functionalized with biomolecules as a modern strategy to incorporate bioactive motifs that will expand and improve their biomedical applications. Here, we have biofunctionalized biomaterials based on zirconia of much interest for dentistry: the widely used bioceramic 3Y-TZP and a newly developed 3Y-TZP/Ti biocermet. [Methods]: The biosurfaces were activated, silanized, and functionalized with coatings made of oligopeptides. Surface activation by plasma or alkaline-etching was optimized. The surfaces were coated by tethering a purposely-designed RGD-containing peptide. We selected this oligopeptide as a model peptide to validate the effectiveness of the biofunctionalization process. Successful treatments after each step of the process were assessed by surface physical and chemical characterization with water contact angles and XPS, respectively. Coatings' stability was evaluated after 2 h sonication in water. Pre-osteoblasts adhesion on the functionalized surfaces was also studied. [Results]: 10-min air-plasma treatment effectively activated all types of materials with no detrimental effects on the material structure and hardness. Nitrogen XPS-peak confirmed that RGD-peptides were chemically-attached on the silanized samples. This was further confirmed by visualizing the functionalized surfaces with flourescence-labelled RGD-peptides before and after ultrasonication. Furthermore, RGD-functionalized surfaces significantly enhanced osteoblast adhesion on all types of substrates, which demonstrated their successful bioactivation. [Conclusions]: We successfully developed stable functional biocoatings on zirconia and biocermets made of oligopeptides. Surface bioactivation of zirconia-containing components for dental implant applications will enable their improved clinical performance by incorporating signalling oligopeptides to accelerate osseointegration, improving permucosal sealing, and/or incorporating antimicrobial properties to prevent peri-implant infections.
机译:[目的]:钛材料已通过生物分子功能化,作为一种现代策略,可纳入生物活性基序,从而扩大并改善其生物医学应用。在这里,我们拥有基于牙科的氧化锆的生物功能化生物材料:广泛使用的生物陶瓷3Y-TZP和新开发的3Y-TZP / Ti生物金属陶瓷。 [方法]:用寡肽涂层对生物表面进行活化,硅烷化和功能化。通过等离子体或碱蚀刻的表面活化得到优化。通过束缚特意设计的含RGD的肽对表面进行涂层。我们选择该寡肽作为模型肽,以验证生物功能化过程的有效性。通过水接触角和XPS分别对表面的物理和化学特性进行评估,评估了该过程每个步骤之后的成功处理方法。在水中超声处理2小时后,评估涂层的稳定性。还研究了成骨前细胞在功能化表面上的粘附。 [结果]:10分钟的空气等离子体处理有效地激活了所有类型的材料,而对材料的结构和硬度没有不利影响。氮气XPS峰证实了RGD肽化学附着在硅烷化的样品上。通过在超声处理之前和之后用荧光标记的RGD肽可视化功能化表面,进一步证实了这一点。此外,RGD功能化的表面显着增强了成骨细胞在所有类型底物上的附着力,这表明它们具有成功的生物活化作用。 [结论]:我们成功地在氧化锆和由寡肽制成的生物金属陶瓷上开发了稳定的功能性生物涂层。用于牙种植体应用的含氧化锆成分的表面生物活化将通过结合信号寡肽来加速骨整合,改善粘膜密封和/或结合抗菌特性以防止种植体周围感染,从而改善其临床性能。

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