Seredin Pavel, Goloshchapov Dmitry, Peshkov Yaroslav, Potapov Andrey, Gribanova Yana, Shikhaliev Khidmet, Ippolitov Yury, Freitas Raul O, Mahdy Iman A, Mahdy Manal A, Chae Boknam
Voronezh State University, University sq.1, Voronezh, 394018, Russia.
Voronezh State Medical University, Studentcheskaya st. 11, Voronezh, 394006, Russia.
Biomater Sci. 2025 Apr 29;13(9):2444-2461. doi: 10.1039/d5bm00070j.
The paper proposes a strategy for the accelerated deposition of biomimetic organomineral layers on the surface of dental enamel, utilizing di/tetrahydroquinolinediol (hydroxyquinoline) polymerized in the presence of nanocrystalline hydroxyapatite (nano-cHAp). The mechanisms underlying the formation of dental coatings were elucidated through a combination of structural, microstructural, and spectroscopic analytical methods, including synchrotron infrared nanoimaging. Additionally, the antimicrobial effects of these coatings were investigated. It has been demonstrated that the deposition of an organomineral layer, based on polymerized dihydroxyquinoline, on the surface of natural enamel leads to the agglomeration and orientation of hydroxyapatite nanocrystals within the coating. This process enables the layer to replicate the mechanical properties of natural enamel, resulting in a microhardness value that closely resembles that of natural enamel. Using synchrotron s-SNOM, it has been established that the biomimetic organomineral layer possesses the morphological structure of a poly(2,2,4-trimethyl-1,2-dihydroquinoline-6,7-diol (TMDHQ))/nano-cHAp composite film, which is homogeneously distributed and tightly packed on the enamel surface. Furthermore, it has been demonstrated that the dental coating formed from polydihydroxyquinoline and nanocrystalline hydroxyapatite exhibits inhibitory activity against colonies of spp. The developed technology for the formation of dental biomimetic layers, which exhibit simultaneous antibacterial and mineralizing effects, holds significant potential for future clinical applications.
该论文提出了一种在牙釉质表面加速沉积仿生有机矿物质层的策略,利用在纳米晶羟基磷灰石(纳米cHAp)存在下聚合的二/四氢喹啉二醇(羟基喹啉)。通过结构、微观结构和光谱分析方法(包括同步加速器红外纳米成像)的结合,阐明了牙科涂层形成的潜在机制。此外,还研究了这些涂层的抗菌效果。结果表明,基于聚合二羟基喹啉的有机矿物质层在天然牙釉质表面的沉积导致涂层内羟基磷灰石纳米晶体的团聚和取向。这一过程使该层能够复制天然牙釉质的机械性能,从而产生与天然牙釉质非常相似的显微硬度值。利用同步加速器s-SNOM已经确定,仿生有机矿物质层具有聚(2,2,4-三甲基-1,2-二氢喹啉-6,7-二醇(TMDHQ))/纳米cHAp复合膜的形态结构,该复合膜均匀分布并紧密堆积在牙釉质表面。此外,已经证明由聚二羟基喹啉和纳米晶羟基磷灰石形成的牙科涂层对 菌的菌落具有抑制活性。所开发的用于形成具有同时抗菌和矿化作用的牙科仿生层的技术在未来临床应用中具有巨大潜力。