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Original Article

Oriented and Lengthwise Growth of Octacalcium Phosphate on Collagenous Matrix In Vitro

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Pages 51-61 | Received 14 Feb 1996, Accepted 08 Aug 1996, Published online: 07 Jul 2009

References

  • Robinson R. A., Watson M. L. Collagen-crystal relationships in bone as seen in the electron microscope. Anat. Rec. 1952; 114: 383–410
  • Jackson S. F. The fine structure of developing bone in the embryonic fowl. Proc. Roy. Soc. (London) 1957; B146: 270–287
  • Weiner S., Traub W. Crystal-size and organization in bone. Connect. Tiss. Res. 1989; 21: 259–265
  • Weiner S., Arad T., Traub W. Crystal organization in rat bone lamellae. Fed. Eurp. Biochem. Soc. 1991; 285: 49–54
  • Nylen M. U., Scott D. B., Mosley V. M. Mineralization of turkey leg tendon. II. Collagen-mineral relations revealed by electron and X-ray microscopy. Calcification in Biological Systems, R. F. Sognnaes. Amer. Associ. Advanc. Sci., Washington, DC 1960; 129–142
  • Landis W., Oldac J. M., Weiner S. Topographic imaging of mineral and collagen in the calcifying turkey tendon. Conn. Tiss. Res. 1991; 25: 181–196
  • Landis W., Song M. J., Leith A., McEwen L., McEwen B. F. Mineral and organic interaction in normally calcifying tendon visualized in three dimensions by high-voltage electron microscopic tomography and graphic image reconstruction. J. Struct. Biol. 1993; 110: 39–54
  • Engström A., Engfeldt B., Zetterström R. Relation between collagen and mineral salts in bone tissue. Experientia 1952; II/7: 259
  • Ramachandran G. N., Santhanam M. S. In vitro calcification of collagen. Experientia 1956; XII/9: 340–341
  • Glimcher M. J. Molecular biology of mineralized tissues with particular reference to bone. Revs. Mod. Phys. 1959; 31: 359–393
  • Trautz O. R., Bachra B. N. Oriented precipitation of inorganic crystals in fibrous matrices. Arch. Oral Biol. 1963; 8: 601–613
  • Traub W., Arad T., Weiner S. Growth of mineral crystals in turkey tendon collagen fibrils. Conn. Tissue Res. 1992; 28: 99–111
  • Neuman W. F., Neuman M. W. The chemical dynamics of bone mineral. Chem. Rev. 1953; 53: 1–45
  • Ambady G. K. Studies on collagen. III. Oriented crystallization of inorganic salts on collagen. Proc. Ind. Acad. Sci. 1959; 49A: 136–143
  • Lees S. A model for the distribution of HAp crystallites in bone—as hypothesis. Calcif. Tissue Int. 1979; 27: 53–56
  • Katz E. P., Wachtel E., Yamauchi M., Mechanic G. L. The structure of mineralized collagen fibrils. Conn. Tissue Res. 1989; 21: 149–158
  • Glimcher M. J., Hodge A. J., Schmitt F. O. Macromolecular aggregation states in relation to mineralization: The collagen-hydroxyapatite system as studied in vitro. Proc. Ind. Acad. Sci. 1957; 43: 860–867
  • Katz E. P., Li S. T. Structure and function of bone collagen fibrils. J. Mol. Biol. 1973; 80: 1–15
  • Kuboki Y., Mechanic G. L. Comparative molecular distribution of cross-links in bone and dentin collagen. Structure-function relationship. Calcif. Tissue Int. 1982; 34: 304–308
  • Yamauchi M., Katz E. P. The post-transitional chemistry and molecular packing mineralizing tendon. Conn. Tissue Res. 1993; 29: 81–98
  • Kuboki Y., Kobayashi D., Yuguchi M., Watanabe T., Mizuno M., Takita H., Iijima M. Characteristic changes of reducible collagen cross-links to the hard tissue pattern in turkey tendon upon calcification. Nature of calcifiable collagen 1994; 3: 21–28
  • Solomons C. C., Neuman W. F. On the mechanisms of calcification: the remineralization of dentin. J. Biol. Chem. 1960; 235: 2502–2506
  • Hodge A. J., Petruska J. A. Recent studies with the electron microscope on ordered aggregates of the tropocollagen macromolecule. Aspects of Protein Structure, G. N. Ramachandran. Academic Press, New York 1963; 289–300
  • Engström A. Apatite-collagen organization in calcified tendon. Exp. Cell Res. 1966; 43: 241–245
  • Höhling H. J., Kreilos R., Neubauer G., Boyde A. Electron microscopy and electron microscopical measurements of collagen mineralization in hard tissue. Z. Zellforsch. 1971; 122: 36–52
  • Colominas C. B., Miller A., White S. W. Structural study of the calcifying collagen in turkey leg tendon. J. Mol. Biol. 1979; 134: 431–445
  • Traub W., Arad T., Weiner S. Origin of mineral crystal growth in collagen fibrils. Matrix 1992; 12: 251–255
  • Maitland M. E., Arsenault A. L. A correlation between the distribution of biological apatite and amino acid sequence of type I collagen. Calcif. Tissue Int. 1991; 48: 341–352
  • Iijima M., Moriwaki Y., Kuboki Y. In vitro crystal growth of octacalcium phosphate on type I collagen fiber. J. Crystal Growth 1994; 137: 553–560
  • Iijima M., Iijima K., Moriwaki Y., Kuboki Y. Oriented growth of octacalcium phosphate crystals on type I collagen fibrils under physiological conditions. J. Crystal Growth 1994; 140: 91–99
  • Iijima M., Moriwaki Y., Kuboki Y. Oriented growth of octacalcium phosphate on and inside the collagenous matrix in vitro. Conn. Tissue Res. 1995; 33: 197–202
  • Blumenthal N. C., Posner A. S., Silverman L. D., Rosenberg L. C. Effect of proteoglycans on in vitro hydroxyapatite formation. Calcif. Tissue Int. 1979; 27: 75–82
  • Scott J. E., Oxford C. R. Dermatan sulphate-rich proteoglycan associates with rat tail-tendon collagen at the d band in the gap region. Biochem. J. 1981; 197: 213–216
  • Fleischmajer R., Fisher L. W., MacDonald E. D., Jacobs L., Perlish J. S., Termine J. D. Decorin interacts with fibrillar collagen of embryonic and adult human skin. J. Struct. Biol. 1991; 106: 82–90
  • Arsenault A. L. Structural and chemical analyses of mineralization using the turkey leg tendon as a model tissue. Bone and Mineral 1992; 17: 253–256
  • Kogaya Y. Sulfated glycoconjugates in amelogenesis. Progr. Histchem. Cytochem. 1994; 29: 1–110
  • Hata (Iijima) M., Moriwaki Y., Doi Y., Goto T., Wakamatsu N., Kamemizu H. Oriented crystal growth of octacalcium phosphate on cation-selective membrane. Jpn. J. Crystal Growth 1985; 12: 91–99
  • Iijima M., Moriwaki Y. Lengthwise and oriented growth of octacalcium phosphate on cation selective membrane in a model system of enamel formation. J. Crystal Growth 1991; 112: 571–579
  • Brown W. E., Smith J. P., Lehr J. R., Frazier A. W. Crystallographic and chemical relations between octacalcium phosphate and hydroxyapatite. Nature 1962; 196: 1050–1055
  • Brown W. E. A mechanism for growth of apatitic crystals. Tooth Enamel II., M. V. Stack, R. W. Fearnhead. Jon Wright & Sons, Bristol 1965; 11–14
  • Brown W. E. Crystal growth of bone mineral. Clin. Orthop. 1966; 44: 205–220
  • Iijima M., Moriwaki Y., Yamaguchi R., Kuboki Y. Effect of solution pH in the calcium phosphates formation and ionic diffusion on and through the collagenous matrix. Conn. Tissue Res. 1966, (submitted).
  • Aoba T., Ishida T., Yagi T., Hasegawa K., Moriwaki Y. X-ray crystallographic studies on the conversion of octacalcium phosphate into hydroxyapatite. Jpn. J. Oral Biol. 1975; 17: 1–7
  • Eanes E. D., Meyer J. L. A thremodynamical analysis of the amorphous to crystalline calcium phosphate transformation. Calcif. Tissue Res. 1978; 25: 59–68
  • Nancollas G. H., Tomazic B. Growth of calcium phosphate on hydroxyapatite crystals. Effect of supersaturation and ionic medium. J. Phys. Chem. 1974; 78: 2218–2225
  • Newesely H. Changes in crystal types of low solubility calcium phosphates in the presence of accompanying ions. Arch. Oral Biol. 1961; 6: 174–180
  • Milhofer H., Purgaric B., Brecevic L. J., Pavkovic N. Precipitation of calcium phosphates from electrolyte solutions. Calcif. Tissue Res. 1971; 8: 142–153
  • Cheng P. T. Octacalcium phosphate formation in vitro: implication for bone formation. Calcif. Tissue Int. 1985; 37: 91–94
  • Arnold P. W. The Nature of precipitated calcium phosphate. Trans. Faraday Soc. 1950; 46: 1061–1073
  • Iijima M., Kamemizu H., Wakamatu N., Goto T., Doi Y., Moriwaki Y. Precipitation of octacalcium phosphate at 37°C and at pH7.4: in relation to enamel formation. J. Crystal Growth 1990; 112: 467–473
  • Termine J. D., Eanes E. D., Conn K. M. Phosphoprotein modulation of apatite crystallization. Calcif. Tissue Int. 1980; 31: 247–251
  • Milhofer H. F., Oldak J. M., Weiner S., Veis A., Mintz K. P., Addadi L. Interactions of matrix proteins from mineralized tissues with octacalcium phosphate. Conn. Tissue Res. 1994; 30: 251–264
  • Mura-Galelli M. J., Narusawa H., Shimada T., Iijima M., Aoba T. Effect of fluoride on precipitation and hydrolysis of octacalcium phosphate in an experimental model simulating enamel mineralization during amelogenesis. Cells and Materials 1992; 2: 221–230

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