Tay F R, Pashley D H
Department of Endodontics, School of Dentistry, Medical College of Georgia, Augusta, GA 30912-1129, USA.
J Dent Res. 2009 Aug;88(8):719-24. doi: 10.1177/0022034509341826.
Degradation of denuded collagen within adhesive resin-infiltrated dentin is a pertinent problem in dentin bonding. A biomimetic remineralization scheme that incorporates non-classic crystallization pathways of fluidic amorphous nanoprecursors and mesoscopic transformation has been successful in remineralizing resin-free, acid-etched dentin, with evidence of intrafibrillar and interfibrillar remineralization. This study tested the hypothesis that biomimetic remineralization provides a means for remineralizing incompletely infiltrated resin-dentin interfaces created by etch-and-rinse adhesives. The remineralization medium consists of a Portland cement/simulated body fluid that includes polyacrylic acid and polyvinylphosphonic acid biomimetic analogs for amorphous calcium phosphate dimension regulation and collagen targeting. Both interfibrillar and intrafibrillar apatites became readily discernible within the hybrid layers after 2-4 months. In addition, intra-resin apatite clusters were deposited within the porosities of the adhesive resin matrices. The biomimetic remineralization scheme provides a proof-of-concept for the adoption of nanotechnology as an alternative strategy to extend the longevity of resin-dentin bonds.
在牙本质粘结中,粘结树脂渗入的牙本质中裸露胶原蛋白的降解是一个相关问题。一种仿生再矿化方案,该方案结合了流体无定形纳米前驱体的非经典结晶途径和介观转变,已成功地对无树脂、酸蚀牙本质进行了再矿化,有纤维内和纤维间再矿化的证据。本研究检验了以下假设:仿生再矿化提供了一种对由酸蚀冲洗粘结剂产生的不完全渗入的树脂-牙本质界面进行再矿化的方法。再矿化介质由波特兰水泥/模拟体液组成,其中包括用于无定形磷酸钙尺寸调节和胶原靶向的聚丙烯酸和聚乙烯膦酸仿生类似物。2-4个月后,在混合层内纤维间和纤维内的磷灰石都变得易于辨别。此外,树脂内磷灰石簇沉积在粘结树脂基质的孔隙内。仿生再矿化方案为采用纳米技术作为延长树脂-牙本质粘结寿命的替代策略提供了概念验证。