Dong X D, Ruse N D
Biomaterials, Faculty of Dentistry, The University of British Columbia, 2199 Wesbrook Mall, JBM Building, Vancouver, BC, Canada V6T 1Z3.
J Biomed Mater Res A. 2003 Jul 1;66(1):103-9. doi: 10.1002/jbm.a.10541.
The human tooth structures should be understood clearly to improve clinically used restorative materials. The dentinoenamel junction (DEJ) plays a key role in resisting crack propagation in teeth. The aim of this study was to determine the fracture toughness of the enamel-DEJ-dentin complex and to investigate the influence of the DEJ on the fatigue crack propagation path across it by characterizing fatigue-fractured enamel-DEJ-dentin complexes using optical and scanning electron microscopy. The results of this study showed that the fracture toughness of the enamel-DEJ-dentin complex was 1.50 +/- 0.28 Mpa x m(1/2). Based on the results of this investigation, it was concluded that the DEJ complex played a critical role in resisting crack propagation from enamel into dentin. The DEJ complex is, approximately, a 100 to 150 microm broad region at the interface between enamel and dentin. The toughening mechanism of the DEJ complex may be explained by the fact that crack paths were deflected as cracks propagated across it. Understanding the mechanism of crack deflection could help in improving dentin-composite as well as ceramic-cement interfacial qualities with the aim to decrease the risk of clinical failure of restorations. Both can be viewed as being composed from a layer of material of high strength and hardness bonded to a softer but tougher substratum (dentin). The bonding agent or the luting cement layer may play the critical role of the DEJ in improving the strength of these restorations in clinical situations.
为改进临床使用的修复材料,应清楚了解人类牙齿结构。牙釉质牙本质界(DEJ)在抵抗牙齿裂纹扩展方面起关键作用。本研究的目的是确定釉质 - DEJ - 牙本质复合体的断裂韧性,并通过光学显微镜和扫描电子显微镜对疲劳断裂的釉质 - DEJ - 牙本质复合体进行表征,研究DEJ对穿过它的疲劳裂纹扩展路径的影响。本研究结果表明,釉质 - DEJ - 牙本质复合体的断裂韧性为1.50±0.28 Mpa×m(1/2)。基于本研究结果,得出结论:DEJ复合体在抵抗裂纹从釉质扩展到牙本质中起关键作用。DEJ复合体大约是牙釉质和牙本质之间界面处100至150微米宽的区域。DEJ复合体的增韧机制可以用裂纹穿过它扩展时裂纹路径发生偏转这一事实来解释。了解裂纹偏转机制有助于改善牙本质 - 复合材料以及陶瓷 - 粘结剂界面质量,以降低修复体临床失败的风险。两者都可视为由一层高强度和硬度的材料粘结到较软但更坚韧的基底(牙本质)组成。粘结剂或粘结水门汀层在临床情况下可能起到DEJ在提高这些修复体强度方面的关键作用。