Wang Zhengzhi, Wang Kun, Xu Wanyin, Gong Xiaoyu, Zhang Feiyu
Department of Engineering Mechanics, School of Civil Engineering, Wuhan University, Wuhan, Hubei 430072, China.
Department of Engineering Mechanics, School of Civil Engineering, Wuhan University, Wuhan, Hubei 430072, China.
Dent Mater. 2018 Mar;34(3):376-388. doi: 10.1016/j.dental.2017.11.001. Epub 2017 Nov 12.
The local structures and mechanical properties within tooth dentin-enamel-junction (DEJ) regions have been focused for numerous studies. The reported results, however, remain inconsistent particularly on the functional width and gradient architecture of the DEJ. The current study aims at systematically determining the mechanical gradient of the DEJ at different intratooth locations such that a clearer understanding on the tooth properties and the potential correlations with the tooth function could be obtained.
We re-examined how mechanical properties such as elastic modulus and hardness transitioned from those of dentin to those of enamel using combined static and dynamic nanoindentation mapping techniques. A new mapping method and associated image processing procedures were developed to improve the measurement accuracy and resolution.
A thin, sigmoidally-transitioned interphase layer of the DEJ was identified with an accurate functional width of 2-3μm. The DEJ width and gradient architecture were found intratooth location-dependent, with the DEJ at the occlusal sites being wider and transitioning smoother than that at the cervical sites. Such different widths and architectures of the interphase layer at sites subjected to different types and magnitudes of loadings during mastication could promote more efficient stress transferring between enamel and dentin without compromising the overall stiffness of the tooth.
The presented study not only adds our understanding in the local mechanical properties within tooth DEJ regions, it could also further advance the development of DEJ-mimetic, functional gradient interphase for strong and ultra-durable jointing between dissimilar materials.
牙本质 - 釉质交界(DEJ)区域内的局部结构和力学性能已成为众多研究的焦点。然而,报道的结果仍不一致,特别是在DEJ的功能宽度和梯度结构方面。本研究旨在系统地确定不同牙内位置处DEJ的力学梯度,以便更清楚地了解牙齿特性以及与牙齿功能的潜在相关性。
我们使用静态和动态纳米压痕映射技术相结合的方法,重新研究了弹性模量和硬度等力学性能如何从牙本质转变为釉质。开发了一种新的映射方法和相关的图像处理程序,以提高测量精度和分辨率。
确定了DEJ的一个薄的、呈S形转变的中间相层,其准确的功能宽度为2 - 3μm。发现DEJ的宽度和梯度结构与牙内位置有关,咬合部位的DEJ比颈部部位的更宽且转变更平滑。在咀嚼过程中,承受不同类型和大小载荷的部位,中间相层的这种不同宽度和结构可以促进釉质和牙本质之间更有效的应力传递,而不会损害牙齿的整体刚度。
本研究不仅增加了我们对牙齿DEJ区域局部力学性能的理解,还可以进一步推动用于不同材料之间强而超耐用连接的DEJ模拟功能梯度中间相的开发。