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Size and Shape of Mineralites in Young Bovine Bone Measured by Atomic Force Microscopy

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Abstract

Atomic force microscopy (AFM) was used to obtain three-dimensional images of isolated mineralites extracted from young postnatal bovine bone. The mean mineralite size is 9 nm × 6 nm × 2.0 nm, significantly shorter and thicker than the mineralites of mature bovine bone measured by the same technique. Mineralites of the young postnatal bone can be accommodated within the hole zone regions of a quasi-hexagonally packed collagen fibril in the fashion described by Hodge [9] in which laterally adjacent hole zone regions form continuous “channels” across the diameter of a fibril for a distance of at least 10 nm. Deposition of mineralites of the size noted above in this void volume of the fibrils would result in little or no distortion of the collagen molecules or supramolecular structure of the collagen fibril. The new AFM data supporting this claim is consistent with findings obtained by electron microscopy and low-angle x-ray and neutron diffraction that mineralites formed within collagen fibrils during initial stages of calcification occur within the hole zone region. However, the deposition of additional mineralites in the intermolecular spaces between collagen molecules in the overlap region of the fibrils would significantly distort the fibrils since the space available between adjacent molecules is considerably less than even the smallest dimension of the mineralites.

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References

  1. MJ Glimcher (1959) ArticleTitleMolecular biology of mineralized tissues with particular reference to bone. Rev Mod Physics 31 359–393 Occurrence Handle10.1103/RevModPhys.31.359 Occurrence Handle1:CAS:528:DyaG1MXovFOhug%3D%3D

    Article  CAS  Google Scholar 

  2. DD Lee MJ Glimcher (1991) ArticleTitleThree-dimensional spatial relationship between the collagen fibrils and the inorganic calcium phosphate crystals of pickerel (Americanus americanus) and herring (Clupea harengus) bone. J Mol Biol 217 487–501 Occurrence Handle1:CAS:528:DyaK3MXhs1Wgu7k%3D

    CAS  Google Scholar 

  3. SW White DJ Hulmes A Miller PA Timmins (1977) ArticleTitleCollagen-mineral axial relationship in calcified turkey leg tendon by X-ray and neutron diffraction. Nature 266 421–425 Occurrence Handle1:CAS:528:DyaE2sXksl2qsLk%3D Occurrence Handle859610

    CAS  PubMed  Google Scholar 

  4. C Berthet-Colominas A Miller SW White (1979) ArticleTitleStructural study of the calcifying collagen in turkey leg tendons. J Mol Biol 134 431–445 Occurrence Handle1:CAS:528:DyaL3cXlsFeqsg%3D%3D Occurrence Handle537071

    CAS  PubMed  Google Scholar 

  5. C Burger L-Z Liu BS Hsiao B Chu J Hanson T Hori MJ Glimcher (2001) ArticleTitleSynchrotron SAXS/WAXS study of the composite nature of bone. (Abstract)Pap Am Chem Soc 222 101

    Google Scholar 

  6. HM Kim C Rey MJ Glimcher (1995) ArticleTitleIsolation of calcium-phosphate crystals of bone by non-aqueous methods at low temperature. J Bone Miner Res 10 1589–1601 Occurrence Handle1:CAS:528:DyaK2MXpsFGmtr8%3D Occurrence Handle8686516

    CAS  PubMed  Google Scholar 

  7. MJ Glimcher (1998) The nature of the mineral phase in bone: biological and clinical implications. LV Avioli SM Krane (Eds) Metabolic bone disease and clinically related disorders. Academic Press San Diego 23–50

    Google Scholar 

  8. SJ Eppell W Tong JL Katz L Kuhn MJ Glimcher (2001) ArticleTitleShape and size of isolated bone mineralites measured using atomic force microscopy. J Orthop Res 19 1027–1034 Occurrence Handle10.1016/S0736-0266(01)00034-1 Occurrence Handle1:STN:280:DC%2BD38%2FlsFCkuw%3D%3D Occurrence Handle11781001

    Article  CAS  PubMed  Google Scholar 

  9. AJ Hodge (1989) ArticleTitleMolecular models illustrating the possible distributions of ‘holes’ in simple systematically staggered arrays of type I collagen molecules in native-type fibrils. Connect Tissue Res 21 137–147 Occurrence Handle1:STN:280:By%2BC3cjkt1w%3D Occurrence Handle2605937

    CAS  PubMed  Google Scholar 

  10. AJ Hodge JA Petruska (1963) Recent studies with the electron microscope on ordered aggregates of the tropocollagen molecules. GN Ramachandran (Eds) Aspects of protein structure. Academic Press New York 289–300

    Google Scholar 

  11. JS Villarrubia (1997) ArticleTitleAlgorithms for scanned probe microscope image simulation, surface reconstruction, and tip estimation. J Res Natl Inst Stand Technol 102 425–454

    Google Scholar 

  12. Dl Wilson KS Kump SJ Eppell RE Marchant (1995) ArticleTitleMorphological restoration of atomic-force microscopy images. Langmuir 11 265 Occurrence Handle1:CAS:528:DyaK2MXivFOrurs%3D

    CAS  Google Scholar 

  13. AL Arsenault (1989) ArticleTitleA comparative electron microscopic study of apatite crystals in collagen fibrils of rat bone, dentin and calcified turkey leg tendons. Bone Miner 6 165–177 Occurrence Handle10.1016/0169-6009(89)90048-2 Occurrence Handle1:CAS:528:DyaL1MXkvFCmsr8%3D Occurrence Handle2765707

    Article  CAS  PubMed  Google Scholar 

  14. AL Arsenault (1988) ArticleTitleCrystal-collagen relationships in calcified turkey leg tendons visualized by selected-area dark field electron microscopy. Calcif Tissue Int 43 202–212 Occurrence Handle1:STN:280:BiaD1cbjsFA%3D Occurrence Handle3145125

    CAS  PubMed  Google Scholar 

  15. HM Kim C Rec MJ Glimcher (1996) ArticleTitleX-ray diffraction, electron microscopy and Fourier transform infrared spectroscopy of apatite crystals isolated from chicken and bovine calcified cartilage. Calcif Tissue Int 59 58–63 Occurrence Handle10.1007/s002239900086 Occurrence Handle1:CAS:528:DyaK28Xkt12mtb8%3D Occurrence Handle8661986

    Article  CAS  PubMed  Google Scholar 

  16. V Ziv S Weiner (1994) ArticleTitleBone crystal sizes: a comparison of transmission electron microscopic and X-ray diffraction line width broadening techniques. Connect Tissue Res 30 165–175 Occurrence Handle1:STN:280:ByuA3MzosFQ%3D Occurrence Handle8039384

    CAS  PubMed  Google Scholar 

  17. JE Roberts LC Bonar RG Griffin MJ Glimcher (1992) ArticleTitleCharacterization of very young mineral phases of bone by solid state 31 phosphorus magic angle sample spinning nuclear magnetic resonance and X-ray diffraction. Calcif Tissue Int 50 42–48

    Google Scholar 

  18. LC Bonar AH Roufosse WK Sabine MD Grynpas MJ Glimcher (1983) ArticleTitleX-ray diffraction studies of the crystallinity of bone mineral in newly synthesized and density fractionated bone. Calcif Tissue Int 35 202–209 Occurrence Handle1:STN:280:BiyB3cnhsVY%3D Occurrence Handle6850400

    CAS  PubMed  Google Scholar 

  19. EP Katz E Wachtel M Yamauchi GL Mechanic (1989) ArticleTitleThe structure of mineralized collagen fibrils. Connect Tissue Res 21 149–154 Occurrence Handle1:STN:280:By%2BC3cjkt10%3D Occurrence Handle2605938

    CAS  PubMed  Google Scholar 

  20. EP Katz S Li (1973) ArticleTitleThe intermolecular space of reconstituted collagen fibrils. J Mol Biol 73 351–369 Occurrence Handle1:CAS:528:DyaE3sXotFWrtQ%3D%3D Occurrence Handle4686200

    CAS  PubMed  Google Scholar 

  21. EP Katz S Li (1973) ArticleTitleStructure and function of bone collagen fibrils. J Mol Biol 80 1–15 Occurrence Handle1:CAS:528:DyaE2cXhtFCqtA%3D%3D Occurrence Handle4758070

    CAS  PubMed  Google Scholar 

  22. BL Trus KA Piez (1980) ArticleTitleCompressed microfibril models of the native collagen fibril. Nature 286 300–301 Occurrence Handle1:CAS:528:DyaL3cXlvVWgs7g%3D Occurrence Handle7402317

    CAS  PubMed  Google Scholar 

  23. JO Nriagu PB Moore (1984) Phosphate minerals. Springer-Verlag New York

    Google Scholar 

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Correspondence to S. J. Eppell.

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Tong, W., Glimcher, M., Katz, J. et al. Size and Shape of Mineralites in Young Bovine Bone Measured by Atomic Force Microscopy . Calcif Tissue Int 72, 592–598 (2003). https://doi.org/10.1007/s00223-002-1077-7

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  • DOI: https://doi.org/10.1007/s00223-002-1077-7

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