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Effect of Fluoride in the Apatitic Lattice on Adsorption of Enamel Proteins onto Calcium Apatites
T. Tanabe
Tsurumi University, School of Dental Medicine, Tsurumi, Yokohama, Japan
T. Aoba
Forsyth Dental Center, 140 Fenway, Boston, Massachusetts 02115
E.C. Moreno
Forsyth Dental Center, 140 Fenway, Boston, Massachusetts 02115
M. Fukae
Tsurumi University, School of Dental Medicine, Tsurumi, Yokohama, Japan
The selective adsorption of enamel proteins onto crystalline calcium apatites having different specific surface areas and various degrees of fluoride substitution was investigated. The proteins were obtained from the outer (close to the ameloblast) layer of secretory enamel of porcine permanent incisors. The adsorption of the enamel proteins was not affected markedly by the variation of specific surface area of the hydroxyapatites used as adsorbents, but it was enhanced substantially with increasing fluoride content in the crystalline lattice. Through the use of SDS- and two-dimensional polyacrylamide gel electrophoresis, it was shown that the originally secreted amelogenin (25 kd) as well as 60-90-kd and 5-6-kd molecules adsorbed most selectively onto the hydroxyapatites and that additional moieties having 21-23-kd and 14-18-kd molecular masses commenced to adsorb onto the apatitic surfaces with increasing degrees of fluoride substitution in the lattice. In contrast, the 20-kd amelogenin, a product partially degraded from the 25-kd amelogenin, showed no significant adsorption, even onto the fluoridated apatites. These results suggest that the retention of proteinaceous matrix in the developing enamel might be affected by the nature of the forming crystals.
REFERENCES
- Aoba, T.; Fukae, M.; Tanabe, T.; Shimizu, M.; and Moreno, E.C. (1987a): Selective Adsorption of Porcine-amelogenins onto Hydroxyapatite and their Inhibitory Activity on Hydroxyapatite Growth in Supersaturated Solutions, Calcif Tissue Int 41:281-289.[Medline]
[Order article via Infotrieve]
- Aoba, T. and Moreno, E.C. (1984): Hydroxyapatite Preparation and Crystal Growth on Hydroxyapatite Seeds, J Dent Res 63:874-880.[Abstract/Free Full Text]
- Aoba, T.; Tanabe, T.; and Moreno, E.C. (1987b): Proteins in the Enamel Fluid of Immature Porcine Teeth, J Dent Res 66:1721-1726.[Abstract/Free Full Text]
- Aoba, T.; Tanabe, T.; and Moreno, E.C. (1987c): Function of Amelogenins in Porcine Enamel Mineralization during the Secretory Stage of Amelogenesis, Adv Dent Res 1:252-260.[Abstract/Free Full Text]
- Argos, P.; Rao, J.K.M.; and Hargrave, P.A. (1982): Structural Prediction of Membrane-bound Proteins, Eur J Biochem 128:565-575.[Medline]
[Order article via Infotrieve]
- Bai, P. and Warshawsky, H. (1985): Morphological Studies on the Distribution of Enamel Matrix Proteins Using Routine Electron Microscopy and Freeze-fracture Replicas in the Rat Incisor, Anat Rec 212:1-16.[Medline]
[Order article via Infotrieve]
- Bradford, M.M. (1976): A Rapid and Sensitive Method for the Quantitation of Microgram Quantities of Protein Utilizing the Principle of Protein-dye Binding, Anal Chem 72:248-254.
- DenBesten, P.K. and Crenshaw, M.A. (1984): The Effects of Chronic High Fluoride Levels on Forming Enamel in the Rat, Arch Oral Biol 29:675-679.[CrossRef][Medline]
[Order article via Infotrieve]
- Drinkard, C.R.; Crenshaw, M.A.; and Bawden, J.W. (1983): The Effect of Fluoride on the Electrophoretic Patterns of Developing Rat Molar Enamel, Arch Oral Biol 28:1131-1134.[Medline]
[Order article via Infotrieve]
- Fejerskov, 0.; Thylstrup, A.; and Larsen, M.J. (1977): Clinical and Structural Features and Possible Pathogenic Mechanisms of Dental Fluorosis, Scand J Dent Res 85:510-534.[Medline]
[Order article via Infotrieve]
- Fukae, M. and Shimizu, M. (1985): Amino Acid Sequence of a Protein from Developing Porcine Enamel, Jpn J Oral Biol 25(Suppl):29.
- Fukae, M. and Tanabe, T. (1987): Nonamelogenin Components of Porcine Enamel in the Protein Fraction Free from the Enamel Crystals, Calcif Tissue Int 40:286-293.[Medline]
[Order article via Infotrieve]
- Fukae, M.; Tanabe, T.; Uiri, H.; and Shimizu, M. (1980): Studies on Porcine Enamel Protein: A Possible Original Enamel Protein, Tsurumi Univ Dent J 6:87-94.
- Glimcher, M.J.; Brickley-Parsons, D.; and Levine, P.T. (1977): Studies of Enamel Proteins during Maturation, Calcif Tissue Res 24:259-270.[CrossRef][Medline]
[Order article via Infotrieve]
- Hopp, T.P. and Woods, K.R. (1981): Prediction of Protein Antigenic Determinants from Amino Acid Sequences, Proc Natl Acad Sci USA 78:3824-3828.[Abstract/Free Full Text]
- Laemmli, U.K. (1970): Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4, Nature 227:680-685.[CrossRef][Medline]
[Order article via Infotrieve]
- Moreno, E.C.; Kresak, M.; and Hay, D.I. (1978): Adsorption of Two Human Parotid Salivary Macromolecules on Hydroxy-, Fluorhydroxy- and Fluorapatites, Arch Oral Biol 23:525-533.[CrossRef][Medline]
[Order article via Infotrieve]
- Moreno, E.C.; Kresak, M.; and Hay, D.I. (1982): Adsorption Thermodynamics of Acidic Proline-rich Human Salivary Proteins onto Calcium Apatites, J Biol Chem 257:2981-2989.[Abstract/Free Full Text]
- Moreno, E.C.; Kresak, M.; and Hay, D.I. (1984): Adsorption of Molecules of Biological Interest onto Hydroxyapatite, Calcif Tissue lnt 36:48-59.
- Moreno, E.C.; Kresak, M.; and Zahradnik, R.T. (1977): Physicochemical Aspects of Fluoride-apatite Systems Relevant to the Study of Dental Caries, Caries Res (Suppl 1) 11:142-171.[Medline]
[Order article via Infotrieve]
- Nylen, M.U. (1979): Matrix-mineral Relationships - A Morphologist's Viewpoint, J Dent Res 58:922-926.[Abstract/Free Full Text]
- O'Farrell, P.H. (1975): High Resolution Two-dimensional Electrophoresis of Proteins, J Biol Chem 250:4007-4021.[Abstract/Free Full Text]
- Renugopalakrishnan, V.; Strawich, E.S.; Horowitz, P.M.; and Glimcher, M.J. (1986): Studies of the Secondary Structures of Amelogenin from Bovine Tooth Enamel, Biochemistry 25:4879-4887.[CrossRef][Medline]
[Order article via Infotrieve]
- Robinson, C. and Kirkham, J. (1984): Enamel Matrix Components, Alterations during Development and Possible Interactions with the Mineral Phase. In: Tooth Enamel IV, R.W. Feamhead and S. Suga, Eds., Amsterdam: Elsevier Science Publishers B.V., pp. 261-265.
- Shimizu, M. and Fukae, M. (1983): Enamel Proteins. In: Mechanisms of Tooth Enamel Formation, S. Suga, Ed., Tokyo: Quintessence Pub. Co., Inc., pp. 125-141.
- Shimokawa, H.; Sobel, M.E.; Sasaki, M.; Termine, J.D.; and Young, M.F. (1987): Heterogeneity of Amelogenin mRNA in the Bovine Tooth Germ, J Biol Chem 262:4042-4047.[Abstract/Free Full Text]
- Shinoda, H. (1983): Effects of Long-term Administration of Fluoride on the Enamel Formation in Rats. In: Mechanisms of Tooth Enamel Formation, S. Suga, Ed., Tokyo: Quintessence Pub. Co., Inc., pp. 273-284.
- Snead, M.L.; Lau, E.C.; Zeichner-David, M.; Fincham, A.G.; Woo, S.L.C.; and Slavkin, H.C. (1985): DNA Sequence for Cloned cDNA Murine Amelogenin Reveals the Amino Acid Sequence for Enamel-specific Protein, Biochem Biophys Res Cammun 129:812-818.
- Speirs, R.L. (1978): Incorporation of a Dietary Fluoride Supplement into Bone and Developing Teeth of the Domestic Pig, Arch Oral Biol 23:1013-1017.[CrossRef][Medline]
[Order article via Infotrieve]
- Takagi, T.; Suzuki, M.; Baba, T.; Minegishi, K.; and Sasaki, S. (1984): Complete Amino Acid Sequence of Amelogenin in Developing Bovine Enamel, Biochem Biophys Res Commun 121:592-597.[CrossRef][Medline]
[Order article via Infotrieve]
- Tanabe, T. (1984): Purification and Characterization of Proteolytic Enzyme in Porcine Immature Enamel, Tsurumi Univ Dent J 10:443-452.
- Termine, J.D.; Belcourt, A.B.; Christner, P.J.; Conn, K.M.; and Nylen, M.U. (1980): Properties of Dissociatively Extracted Fetal Tooth Matrix Proteins. I. Principal Molecular Species in Developing Bovine Enamel, J Biol Chem 255:9760-9768.
Journal of Dental Research, Vol. 67, No. 3,
536-542 (1988)
DOI: 10.1177/00220345880670030301

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