GTS Research Group, Department of Chemistry, Faculty of Science, Universitat Autònoma de Barcelona, 08193, Bellaterra, Spain.
Odontology. 2022 Jul;110(3):545-556. doi: 10.1007/s10266-022-00688-7. Epub 2022 Feb 11.
This study aims to develop an innovative dental product to remineralize dental enamel by a proper combination of ion-exchange resins as controlled release of mineral ions that form dental enamel, in the presence of amelogenin to guide the appropriate crystal growth. The novel product proposed consists of a combination of ion-exchange resins (weak acid and weak base) individually loaded with the remineralizing ions: Ca, PO and F, also including Zn in a minor amount as antibacterial, together with the protein amelogenin. Such cocktail provides onsite controlled release of the ions necessary for enamel remineralization due to the weak character of the resins and at the same time, a guiding tool for related crystal growth by the indicated protein. Amelogenin protein is involved in the structural development of natural enamel and takes a key role in controlling the crystal growth morphology and alignment at the enamel surface. Bovine teeth were treated by applying the resins and protein together with artificial saliva. Treated teeth were evaluated with nanoindentation, scanning electron microscopy and energy-dispersive X-ray spectroscopy. The innovative material induces the dental remineralization creating a fluorapatite layer with a hardness equivalent to sound enamel, with the appropriate alignment of corresponding nanocrystals, being the fluorapatite more acid resistant than the original mineral. Our results suggest that the new product shows potential for promoting long-term remineralization leading to the inhibition of caries and protection of dental structures.
本研究旨在开发一种创新的牙科产品,通过适当组合离子交换树脂,将其作为形成牙釉质的矿物质离子的受控释放,同时存在釉原蛋白以指导适当的晶体生长,从而使牙釉质再矿化。所提出的新型产品由离子交换树脂(弱酸和弱碱)的组合组成,这些树脂分别负载有再矿化离子:Ca、PO 和 F,并且还包含少量的 Zn 作为抗菌剂,同时还包含釉原蛋白。由于树脂的弱性质,这种混合物提供了原位控制释放牙釉质再矿化所需的离子,同时通过所指示的蛋白质为相关晶体生长提供了指导工具。釉原蛋白参与天然牙釉质的结构发育,并在控制牙釉质表面的晶体生长形态和取向方面起着关键作用。将牛牙用树脂和蛋白质与人工唾液一起处理。用纳米压痕法、扫描电子显微镜和能量色散 X 射线光谱法对处理过的牙齿进行评估。该创新材料诱导牙齿再矿化,形成具有与健康牙釉质相当硬度的氟磷灰石层,相应纳米晶体的排列适当,氟磷灰石比原始矿物质更耐酸。我们的结果表明,该新产品具有促进长期再矿化的潜力,从而抑制龋齿并保护牙齿结构。