Dental Biomaterials Department, Faculty of Dentistry, Ain Shams University, Cairo, Egypt.
J Dent. 2009 Dec;37(12):963-9. doi: 10.1016/j.jdent.2009.08.005. Epub 2009 Aug 20.
The aim of this study was to investigate the effect of dentin dryness on the variation in the probed nano-scale adhesion force between an AFM silicon nitride tip and demineralized intertubular dentin collagen fibrils network surface.
Dentin specimens were etched with 37% phosphoric acid for 15s and then divided into three groups. Specimens of the first two groups were air-dried for 5 or 10s (DH5s and DH10s), respectively, whereas specimens of the third group were left in the hydrated condition (H). For each group, Force curves were characterized by contact-mode AFM and the adhesion force (Fad) was calculated. The structure of the demineralized collagen fibrils network was characterized by tapping mode AFM. The tensile bond strength (TBS) to dentin was evaluated using one alcohol-based dentin self-priming adhesive. The dentin/resin interface was investigated by SEM.
Dentin specimens in the wet-hydrated condition (H) showed significantly higher adhesion force and TBS values than dry-dehydrated specimens (DH5s and DH10s). AFM images showed open collagen fibrils network structure in wet-hydrated specimens (H), while the dry-dehydrated specimens (DH5s and DH10s) showed a collapsed appearance to varying degrees. SEM images revealed minimum resin infiltration in dry-dehydrated specimens.
The nano-scale adhesion force between the AFM probe and demineralized intertubular dentin surface was shown to be sensitive to surface air-drying. The decrease in the nano-scale adhesion force with the increase in the time of air-dryness is related to dehydration of the demineralized collagen fibrils network surface.
本研究旨在探讨牙本质干燥度对原子力显微镜(AFM)硅氮探针与脱矿管间胶原纤维网络表面探测纳米级粘附力变化的影响。
将牙本质标本用 37%磷酸酸蚀 15s,然后分为三组。前两组标本分别风干 5s(DH5s)和 10s(DH10s),第三组标本保持湿润(H)。对每组标本进行接触模式 AFM 特征描述,计算粘附力(Fad)。采用轻敲模式 AFM 对脱矿胶原纤维网络结构进行特征描述。采用一种基于酒精的牙本质自酸蚀粘结剂评估牙本质的拉伸粘结强度(TBS)。通过 SEM 观察牙本质/树脂界面。
湿润状态下的牙本质标本(H)显示出明显高于干燥脱水标本(DH5s 和 DH10s)的粘附力和 TBS 值。AFM 图像显示湿润状态下的标本呈现开放的胶原纤维网络结构,而干燥脱水的标本(DH5s 和 DH10s)则呈现出不同程度的塌陷外观。SEM 图像显示干燥脱水标本中树脂渗透最少。
AFM 探针与脱矿管间牙本质表面的纳米级粘附力对表面风干非常敏感。随着风干时间的增加,纳米级粘附力的下降与脱矿胶原纤维网络表面的脱水有关。