Biomaterials Science Research Unit, Faculty of Dentistry, University of Sydney, United Dental Hospital, NSW, Australia.
Acta Biomater. 2012 Jul;8(7):2419-33. doi: 10.1016/j.actbio.2012.02.022. Epub 2012 Mar 10.
The prevention and treatment of dental caries are major challenges occurring in dentistry. The foundations for modern management of this dental disease, estimated to affect 90% of adults in Western countries, rest upon the dependence of ultrafine interactions between synthetic polymeric biomaterials and nanostructured supramolecular assemblies that compose the tooth organic substrate. Research has shown, however, that this interaction imposes less than desirable long-term prospects for current resin-based dental restorations. Here we review progress in the identification of the nanostructural organization of the organic matrix of dentin, the largest component of the tooth structure, and highlight aspects relevant to understating the interaction of restorative biomaterials with the dentin substrate. We offer novel insights into the influence of the hierarchically assembled supramolecular structure of dentin collagen fibrils and their structural dependence on water molecules. Secondly, we review recent evidence for the participation of proteoglycans in composing the dentin organic network. Finally, we discuss the relation of these complexly assembled nanostructures with the protease degradative processes driving the low durability of current resin-based dental restorations. We argue in favour of the structural limitations that these complexly organized and inherently hydrated organic structures may impose on the clinical prospects of current hydrophobic and hydrolyzable dental polymers that establish ultrafine contact with the tooth substrate.
龋齿的预防和治疗是牙科领域面临的主要挑战。对于这种在西方国家估计影响 90%成年人的牙科疾病的现代管理,其基础是依赖于合成聚合物生物材料与构成牙齿有机基质的纳米结构超分子组装之间的超微相互作用。然而,研究表明,这种相互作用对当前基于树脂的牙科修复体的长期前景带来的益处不大。在这里,我们回顾了牙本质有机基质的纳米结构组织的鉴定进展,牙本质是牙齿结构的最大组成部分,并强调了理解修复生物材料与牙本质基质相互作用的相关方面。我们提供了对牙本质胶原原纤维的分级组装的超分子结构及其对水分子结构依赖性的影响的新见解。其次,我们综述了最近关于参与构成牙本质有机网络的蛋白聚糖的证据。最后,我们讨论了这些复杂组装的纳米结构与蛋白酶降解过程之间的关系,蛋白酶降解过程驱动了当前基于树脂的牙科修复体的低耐用性。我们认为,这些复杂组织和固有水合的有机结构可能对当前与牙齿基质建立超微接触的疏水性和可水解性牙科聚合物的临床前景造成结构限制。