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Mineralisation of reconstituted collagen using polyvinylphosphonic acid/polyacrylic acid templating matrix protein analogues in the presence of calcium, phosphate and hydroxyl ions

  • Young Kyung Kim
    ,
  • Li Sha Gu
    ,
  • Thomas E. Bryan
    ,
  • Jong R. Kim
    ,
  • Liang Chen
    ,
  • Yan Liu
*Corresponding author for this work
  • Kyungpook National University
    ,
  • Sun Yat-Sen University
    ,
  • Medical College of Georgia
    ,
  • Kyung Hee University
    ,
  • BISCO Dental Products, Inc.
    ,
  • Huazhong University of Science and Technology
Scholary Output:
Contribution to journal
Article
Peer-review

Open access

Abstract

The complex morphologies of mineralised collagen fibrils are regulated through interactions between the collagen matrix and non-collagenous extracellular proteins. In the present study, polyvinylphosphonic acid, a biomimetic analogue of matrix phosphoproteins, was synthesised and confirmed with FTIR and NMR. Biomimetic mineralisation of reconstituted collagen fibrils devoid of natural non-collagenous proteins was demonstrated with TEM using a Portland cement-containing resin composite and a phosphate-containing fluid in the presence of polyacrylic acid as sequestration, and polyvinylphosphonic acid as templating matrix protein analogues. In the presence of these dual biomimetic analogues in the mineralisation medium, intrafibrillar and extrafibrillar mineralisation via bottom-up nanoparticle assembly based on the non-classical crystallisation pathway could be identified. Conversely, only large mineral spheres with no preferred association with collagen fibrils were observed in the absence of biomimetic analogues in the medium. Mineral phases were evident within the collagen fibrils as early as 4 h after the initially-formed amorphous calcium phosphate nanoprecursors were transformed into apatite nanocrystals. Selected area electron diffraction patterns of highly mineralised collagen fibrils were nearly identical to those of natural bone, with apatite crystallites preferentially aligned along the collagen fibril axes.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Pages from-to (Number of pages)

Pages 6618-6627 (10 pages)

Journal (Volume, Issue Number)

Biomaterials (Volume 31, Issue 25)

Publication milestones

  • Published - 09/2010

Publication status

Published - 09/2010

ISSN

0142-9612

Publication IDs

  • Scopus: 77953963182
  • PubMed: 20621767

Publication metrics

Metrics

Scopus
citations
Fractional count
2
Fractional count
0.20
Fractional count
8
Fractional count
0.80
Fractional count
2
Fractional count
1
SciVal
citations
101
SciVal
FWCI
3.57
SciVal
Author count
10
SciVal
Paper percentile
96
SciVal
Top percentile
5

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Citation count
138
Captures
92

Funding Details

This study was supported by Grant R21 DE019213-01 from the National Institute of Dental and Craniofacial Research (PI. Franklin R. Tay). The colloidal silica employed in the study was a generous gift from Bisco Inc. We thank Michelle Barnes for her secretarial support.
FundersFunding number
NIH
-
NIDCR
R21DE019213