Department of Conservative Dentistry, School of Dentistry, Kyung Hee University, Seou, South Korea.
Acta Biomater. 2010 Jul;6(7):2740-50. doi: 10.1016/j.actbio.2009.12.052. Epub 2010 Jan 4.
Natural biominerals are formed through metastable amorphous precursor phases via a bottom-up, nanoparticle-mediated mineralization mechanism. Using an acid-etched human dentin model to create a layer of completely demineralized collagen matrix, a bio-inspired mineralization scheme has been developed based on the use of dual biomimetic analogs. These analogs help to sequester fluidic amorphous calcium phosphate nanoprecursors and function as templates for guiding homogeneous apatite nucleation within the collagen fibrils. By adopting this scheme for remineralizing adhesive resin-bonded, completely demineralized dentin, we have been able to redeposit intrafibrillar and extrafibrillar apatites in completely demineralized collagen matrices that are imperfectly infiltrated by resins. This study utilizes a spectrum of completely and partially demineralized dentin collagen matrices to further validate the necessity for using a biomimetic analog-containing medium for remineralizing resin-infiltrated partially demineralized collagen matrices in which remnant seed crystallites are present. In control specimens in which biomimetic analogs are absent from the remineralization medium, remineralization could only be seen in partially demineralized collagen matrices, probably by epitaxial growth via a top-down crystallization approach. Conversely, in the presence of biomimetic analogs in the remineralization medium, intrafibrillar remineralization of completely demineralized collagen matrices via a bottom-up crystallization mechanism can additionally be identified. The latter is characterized by the transition of intrafibrillar minerals from an inchoate state of continuously braided microfibrillar electron-dense amorphous strands to discrete nanocrystals, and ultimately into larger crystalline platelets within the collagen fibrils. Biomimetic remineralization via dual biomimetic analogs has the potential to be translated into a functional delivery system for salvaging failing resin-dentin bonds.
天然生物矿化是通过亚稳非晶前驱体相通过自下而上、纳米颗粒介导的矿化机制形成的。本研究采用酸蚀人牙本质模型来制备完全脱矿的胶原基质层,基于使用双仿生模拟物开发了一种仿生矿化方案。这些模拟物有助于隔离流体非晶态磷酸钙纳米前体,并作为引导胶原原纤维内同质磷灰石成核的模板。通过采用该方案对黏结树脂完全脱矿的牙本质进行再矿化,我们已经能够在树脂不完全渗透的完全脱矿胶原基质中重新沉积纤维内和纤维外的磷灰石。本研究利用一系列完全和部分脱矿牙本质胶原基质进一步验证了使用含有仿生模拟物的介质对再矿化部分脱矿胶原基质的必要性,其中存在残留的晶种。在对照标本中,再矿化介质中不存在仿生模拟物,只能在部分脱矿的胶原基质中观察到再矿化,可能是通过自上而下的结晶方法通过外延生长。相反,在再矿化介质中存在仿生模拟物的情况下,还可以通过自下而上的结晶机制鉴定完全脱矿胶原基质的纤维内再矿化。后者的特征是纤维内矿物质从连续编织的微纤维电子致密无定形链的初始状态过渡到离散的纳米晶体,并最终在胶原纤维内形成更大的结晶小板。通过双仿生模拟物进行仿生再矿化有可能转化为一种功能性输送系统,用于挽救失败的树脂-牙本质结合。