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Collagen pre-strain discontinuity at the bone-Cartilage interface.
Badar, Waqas; Ali, Husna; Brooker, Olivia N; Newham, Elis; Snow, Tim; Terrill, Nicholas J; Tozzi, Gianluca; Fratzl, Peter; Knight, Martin M; Gupta, Himadri S.
Affiliation
  • Badar W; Institute of Bioengineering and School of Engineering and Material Science, Queen Mary University of London, London, United Kingdom.
  • Ali H; Institute of Bioengineering and School of Engineering and Material Science, Queen Mary University of London, London, United Kingdom.
  • Brooker ON; Institute of Bioengineering and School of Engineering and Material Science, Queen Mary University of London, London, United Kingdom.
  • Newham E; Institute of Bioengineering and School of Engineering and Material Science, Queen Mary University of London, London, United Kingdom.
  • Snow T; Harwell Science and Innovation Campus, Diamond Light Source, Harwell, Didcot, United Kingdom.
  • Terrill NJ; Harwell Science and Innovation Campus, Diamond Light Source, Harwell, Didcot, United Kingdom.
  • Tozzi G; School of Engineering, University of Greenwich, Chatham Maritime ME4 4TB, UK.
  • Fratzl P; Department of Biomaterials, Max-Planck-Institute of Colloids and Interfaces, Potsdam Wissenschaftspark, Golm, Germany.
  • Knight MM; Institute of Bioengineering and School of Engineering and Material Science, Queen Mary University of London, London, United Kingdom.
  • Gupta HS; Institute of Bioengineering and School of Engineering and Material Science, Queen Mary University of London, London, United Kingdom.
PLoS One ; 17(9): e0273832, 2022.
Article in En | MEDLINE | ID: mdl-36108273
ABSTRACT
The bone-cartilage unit (BCU) is a universal feature in diarthrodial joints, which is mechanically-graded and subjected to shear and compressive strains. Changes in the BCU have been linked to osteoarthritis (OA) progression. Here we report existence of a physiological internal strain gradient (pre-strain) across the BCU at the ultrastructural scale of the extracellular matrix (ECM) constituents, specifically the collagen fibril. We use X-ray scattering that probes changes in the axial periodicity of fibril-level D-stagger of tropocollagen molecules in the matrix fibrils, as a measure of microscopic pre-strain. We find that mineralized collagen nanofibrils in the calcified plate are in tensile pre-strain relative to the underlying trabecular bone. This behaviour contrasts with the previously accepted notion that fibrillar pre-strain (or D-stagger) in collagenous tissues always reduces with mineralization, via reduced hydration and associated swelling pressure. Within the calcified part of the BCU, a finer-scale gradient in pre-strain (0.6% increase over ~50µm) is observed. The increased fibrillar pre-strain is linked to prior research reporting large tissue-level residual strains under compression. The findings may have biomechanical adaptative

significance:

higher in-built molecular level resilience/damage resistance to physiological compression, and disruption of the molecular-level pre-strains during remodelling of the bone-cartilage interface may be potential factors in osteoarthritis-based degeneration.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Osteoarthritis / Tropocollagen Limits: Humans Language: En Journal: PLoS One Journal subject: CIENCIA / MEDICINA Year: 2022 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Osteoarthritis / Tropocollagen Limits: Humans Language: En Journal: PLoS One Journal subject: CIENCIA / MEDICINA Year: 2022 Document type: Article Affiliation country:
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