Journal of Biomechanics
Volume 45, Issue 3 , Pages 549-554, 2 February 2012

Application of multiple forms of mechanical loading to human osteoblasts reveals increased ATP release in response to fluid flow in 3D cultures and differential regulation of immediate early genes

  • R.M.H. Rumney

      Affiliations

    • The Mellanby Centre for Bone Research, Department of Human Metabolism, The University of Sheffield, Beech Hill Road, Sheffield, S10 2RX
  • ,
  • A. Sunters

      Affiliations

    • Bone Unit, The Royal Veterinary College, Royal College Street, London, NW1 0TU
  • ,
  • G.C. Reilly

      Affiliations

    • The Kroto Research Institute, North Campus, University of Sheffield, Broad Lane, Sheffield, S3 7HQ
  • ,
  • A. Gartland

      Affiliations

    • The Mellanby Centre for Bone Research, Department of Human Metabolism, The University of Sheffield, Beech Hill Road, Sheffield, S10 2RX
    • Corresponding Author InformationCorresponding author. Tel.: +44 0114 271 2043; fax: +44 0114 271 2475.

Accepted 16 November 2011. published online 19 December 2011.

Abstract 

ATP is actively released into the extracellular environment from a variety of cell types in response to mechanical stimuli. This is particularly true in bone where mechanically induced ATP release leads to immediate early gene activation to regulate bone remodelling; however there is no consensus as to which mechanical stimuli stimulate osteoblasts the most. To elucidate which specific type(s) of mechanical stimuli induce ATP release and gene activation in human osteoblasts, we performed an array of experiments using different mechanical stimuli applied to both monolayer and 3D cultures of the same osteoblast cell type, SaOS-2. ATP release from osteoblasts cultured in monolayer significantly increased in response to turbulent fluid flow, laminar fluid flow and substrate strain. No significant change in ATP release could be detected in 3D osteoblast cultures in response to cyclic or static compressive loading of osteoblast-seeded scaffolds, whilst turbulent fluid flow increased ATP release from 3D cultures of osteoblasts to a greater degree than observed in monolayer cultures. Cox-2 expression quantified using real time PCR was significantly lower in cells subjected to turbulent fluid flow whereas c-fos expression was significantly higher in cells subjected to strain. Load-induced signalling via c-fos was further investigated using a SaOS-2 c-fos luciferase reporter cell line and increased in response to substrate strain and turbulent fluid flow in both monolayer and 3D, with no significant change in response to laminar fluid flow or 3D compressive loading. The results of this study demonstrate for the first time strain-induced ATP release from osteoblasts and that turbulent fluid flow in 3D up regulates the signals required for bone remodelling.

Abbreviations: AP-1, Activator protein-1, Cox-2, Cyclooxygenase-2, Egr-2, Early Growth Response 2, FBS, Foetal Bovine Serum, IEG, Immediate early gene, PTH, Parathyroid hormone

Keywords: ATP, Osteoblast, Immediate early gene, Mechanical stimuli, Mechanostat

To access this article, please choose from the options below

Login to an existing account or Register a new account.

  • Purchase this article for 31.50 USD (You must login/register to purchase this article)

    Online access for 24 hours. The PDF version can be downloaded as your permanent record.

  • Subscribe to this title

    Get unlimited online access to this article and all other articles in this title 24/7 for one year.

  • Claim access now

    For current subscribers with Society Membership or Account Number.

  • Visit SciVerse ScienceDirect to see if you have access via your institution.
 

PII: S0021-9290(11)00718-4

doi:10.1016/j.jbiomech.2011.11.036

Journal of Biomechanics
Volume 45, Issue 3 , Pages 549-554, 2 February 2012