• DocumentCode
    1196637
  • Title

    Mineralised tissues as nanomaterials: analysis by atomic force microscopy

  • Author

    Bozec, L. ; de Groot, Jurriaan ; Odlyha, M. ; Nicholls, B. ; Horton, M.A.

  • Author_Institution
    Dept. of Med., Univ. Coll. London, UK
  • Volume
    152
  • Issue
    5
  • fYear
    2005
  • Firstpage
    183
  • Lastpage
    186
  • Abstract
    Mineralised tissues, such as bone, consist of two material phases: collagen protein fibrils that form the structural models upon which the mineral, calcium hydroxyapatite, is subsequently deposited. Collagen and mineral are removed in a three-dimensional manner by osteoclasts during bone turnover in skeletal growth or repair, and matrix proteins are replaced by the synthetic activity of osteoblasts and then calcify. The resolution of atomic force microscopy and use of unmodified, fully calcified samples has enabled the imaging of the overall bone and dentine structure, including collagen and mineral phases. Mineral crystals, in the diameter size range of 225 nm up to 1.4 μm, were found in unmodified bone and dentine respectively. D-banded collagen is observed in dentine after acid treatment and in bone after osteoclast-mediated matrix resorption; axial periodicity values of approximately 67 and 69 nm are observed, respectively. These experimental approaches have enabled the structure of mineralised tissues to be examined in native samples and will facilitate the study of bone structure in important clinical disorders of the skeleton, such as osteoporosis.
  • Keywords
    atomic force microscopy; biomedical imaging; bone; calcium compounds; molecular biophysics; nanostructured materials; nanotechnology; proteins; 225 nm to 1.4 mum; D-banded collagen; atomic force microscopy; axial periodicity; bone; bone turnover; calcium hydroxyapatite; clinical disorders; collagen protein fibrils; dentine structure; mineral crystals; mineralised tissues; nanomaterials; osteoblasts; osteoclast-mediated matrix resorption; osteoclasts; osteoporosis; skeletal growth; skeletal repair;
  • fLanguage
    English
  • Journal_Title
    Nanobiotechnology, IEE Proceedings -
  • Publisher
    iet
  • ISSN
    1478-1581
  • Type

    jour

  • DOI
    10.1049/ip-nbt:20050004
  • Filename
    1520842