On the structure-property relationship of sound and hypomineralized enamel.

Developmental defects in dental enamel pose significant clinical challenges which have highlighted our limited understanding of the structure and properties of this tissue. In this study, we first investigated the contact-size dependence of the physical properties of sound and hypomineralized enamel, and then examined the microstructure to establish a structural basis for their differing properties. Depth-sensing indentation tests were carried out over a wide range of peak loads in a direction perpendicular to the enamel prisms. Hypomineralized enamel demonstrated stronger penetration dependence for measured hardness and elastic modulus than sound enamel. The microstructure of sound and hypomineralized enamel was observed using field emission scanning electron microscopy and transmission electron microscopy with support of a focused ion beam milling system. Images of sound enamel showed barely distinguishable sheath regions with minimal organic presence. In contrast, hypomineralized enamel showed thicker sheath structures surrounding the prisms and higher levels of organic content within both the prisms and the sheath regions. It is argued that the higher organic content within prism structure was responsible for an initial lower hardness and elastic modulus of hypomineralized enamel under low-load indentation. As the indentation depth increased, the thicker organic-rich sheath regions played a more important role in reducing the mechanical properties of the hypomineralized enamel. On the basis of Spears finite element model [Spears IR. A three-dimensional finite element model of prismatic enamel: a re-appraisal of the data on the Young's modulus of enamel. J Dental Res 1997; 76(10):1690-97], elastic moduli of sound and hypomineralized enamel were predicted, which matched experimental results.

[1]  A Holt,et al.  The hardness and modulus of elasticity of primary molar teeth: an ultra-micro-indentation study. , 2000, Journal of dentistry.

[2]  P. Lukinmaa,et al.  Nonfluoride Hypomineralizations in the Permanent First Molars and Their Impact on the Treatment Need , 2000, Caries Research.

[3]  I. Spears,et al.  A Three-dimensional Finite Element Model of Prismatic Enamel: A Re-appraisal of the Data on the Young's Modulus of Enamel , 1997, Journal of dental research.

[4]  D. J. Haines Physical properties of human tooth enamel and enamel sheath material under load. , 1968, Journal of biomechanics.

[5]  T. P. Weihs,et al.  Nanoindentation mapping of the mechanical properties of human molar tooth enamel. , 2002, Archives of oral biology.

[6]  M V Swain,et al.  Mechanical properties and microstructure of hypomineralised enamel of permanent teeth. , 2004, Biomaterials.

[7]  P. Anderson,et al.  3D X-ray microscopic study of the extent of variations in enamel density in first permanent molars with idiopathic enamel hypomineralisation , 2004, British Dental Journal.

[8]  J. Norén,et al.  Scanning electron micrograph analysis of hypomineralized enamel in permanent first molars. , 2005, International journal of paediatric dentistry.

[9]  I. Mejàre,et al.  Hypomineralized molars and incisors of unknown origin: treatment outcome at age 18 years. , 2005, International journal of paediatric dentistry.

[10]  Naoki Fujisawa,et al.  Elastic modulus and stress-strain response of human enamel by nano-indentation. , 2006, Biomaterials.

[11]  K. Weerheijm Molar incisor hypomineralisation (MIH). , 2003, European journal of paediatric dentistry.

[12]  G. Suckling Developmental Defects of Enamel - Historical and Present-Day Perspectives of Their Pathogenesis , 1989, Advances in dental research.

[13]  G. Pharr,et al.  An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments , 1992 .

[14]  G W Marshall,et al.  Mechanical properties of human dental enamel on the nanometre scale. , 2001, Archives of oral biology.

[15]  M. Swain,et al.  Mechanical properties across hypomineralized/hypoplastic enamel of first permanent molar teeth. , 2004, European journal of oral sciences.

[16]  Yi-bing Cheng,et al.  Subsurface Indentation Damage and Mechanical Characterization of α-Sialon Ceramics , 2005 .