Biological Organization of Hydroxyapatite Crystallites into a Fibrous Continuum Toughens and Controls Anisotropy in Human Enamel
- 1 January 2001
- journal article
- other
- Published by SAGE Publications in Journal of Dental Research
- Vol. 80 (1) , 321-326
- https://doi.org/10.1177/00220345010800010501
Abstract
Enamel forms the outer surface of teeth, which are of complex shape and are loaded in a multitude of ways during function. Enamel has previously been assumed to be formed from discrete rods and to be markedly aniostropic, but marked anisotropy might be expected to lead to frequent fracture. Since frequent fracture is not observed, we measured enamel organization using histology, imaging, and fracture mechanics modalities, and compared enamel with crystalline hydroxyapatite (Hap), its major component. Enamel was approximately three times tougher than geologic Hap, demonstrating the critical importance of biological manufacturing. Only modest levels of enamel anisotropy were discerned; rather, our measurements suggest that enamel is a composite ceramic with the crystallites oriented in a complex three-dimensional continuum. Geologic apatite crystals are much harder than enamel, suggesting that inclusion of biological contaminants, such as protein, influences the properties of enamel. Based on our findings, we propose a new structural model.Keywords
This publication has 25 references indexed in Scilit:
- Three-dimensional direction and interrelationship of prisms in cuspal and cervical enamel of dog toothThe Anatomical Record, 1998
- Protein-to-Protein Interactions: Criteria Defining the Assembly of the Enamel Organic MatrixJournal of Dental Research, 1998
- Sheathlin: Cloning, cDNA/Polypeptide Sequences, and Immunolocalization of Porcine Enamel Sheath ProteinsJournal of Dental Research, 1997
- Evidence for Amelogenin "Nanospheres" as Functional Components of Secretory-Stage Enamel MatrixJournal of Structural Biology, 1995
- Fracture of Brittle SolidsPublished by Cambridge University Press (CUP) ,1993
- On BiomineralizationPublished by Oxford University Press (OUP) ,1989
- A 3-D Model of Enamel Development At the Scale of One Inch to the MicronAdvances in Dental Research, 1987
- Characterization of putative secretory sites on ameloblasts of the rat incisorJournal of Anatomy, 1984
- Fracture Properties of Human Enamel and DentinJournal of Dental Research, 1976
- Compressive Properties of Enamel, Dental Cements, and GoldJournal of Dental Research, 1961