Journal of Biomechanics
Volume 42, Issue 11 , Pages 1692-1696, 7 August 2009

Biaxial cell stimulation: A mechanical validation

  • F.H. Bieler

      Affiliations

    • Julius Wolff Institut and Center for Musculoskeletal Surgery, Berlin/Brandenburg Center for Regenerative Therapies, Charité – Universitätsmedizin Berlin, 13353 Berlin, Germany
  • ,
  • C.E. Ott

      Affiliations

    • Institute for Medical Genetics, Charité – Universitätsmedizin Berlin, Berlin, Germany
  • ,
  • M.S. Thompson

      Affiliations

    • Department of Engineering Science, University of Oxford, Oxford, United Kingdom
  • ,
  • R. Seidel

      Affiliations

    • Julius Wolff Institut and Center for Musculoskeletal Surgery, Berlin/Brandenburg Center for Regenerative Therapies, Charité – Universitätsmedizin Berlin, 13353 Berlin, Germany
  • ,
  • S. Ahrens

      Affiliations

    • Institute for Medical Genetics, Charité – Universitätsmedizin Berlin, Berlin, Germany
  • ,
  • D.R. Epari

      Affiliations

    • Julius Wolff Institut and Center for Musculoskeletal Surgery, Berlin/Brandenburg Center for Regenerative Therapies, Charité – Universitätsmedizin Berlin, 13353 Berlin, Germany
  • ,
  • U. Wilkening

      Affiliations

    • Max-Planck-Institute for Molecular Genetics, Berlin, Germany
  • ,
  • K.D. Schaser

      Affiliations

    • Julius Wolff Institut and Center for Musculoskeletal Surgery, Berlin/Brandenburg Center for Regenerative Therapies, Charité – Universitätsmedizin Berlin, 13353 Berlin, Germany
  • ,
  • S. Mundlos

      Affiliations

    • Institute for Medical Genetics, Charité – Universitätsmedizin Berlin, Berlin, Germany
    • Max-Planck-Institute for Molecular Genetics, Berlin, Germany
  • ,
  • G.N. Duda

      Affiliations

    • Julius Wolff Institut and Center for Musculoskeletal Surgery, Berlin/Brandenburg Center for Regenerative Therapies, Charité – Universitätsmedizin Berlin, 13353 Berlin, Germany
    • Corresponding Author InformationCorresponding author. Tel.: +4930450559079; fax: +4930450559969.

Accepted 15 April 2009. published online 18 May 2009.

Abstract 

To analyse mechanotransduction resulting from tensile loading under defined conditions, various devices for in vitro cell stimulation have been developed. This work aimed to determine the strain distribution on the membrane of a commercially available device and its consistency with rising cycle numbers, as well as the amount of strain transferred to adherent cells.

The strains and their behaviour within the stimulation device were determined using digital image correlation (DIC). The strain transferred to cells was measured on eGFP-transfected bone marrow-derived cells imaged with a fluorescence microscope. The analysis was performed by determining the coordinates of prominent positions on the cells, calculating vectors between the coordinates and their length changes with increasing applied tensile strain.

The stimulation device was found to apply homogeneous (mean of standard deviations approx. 2% of mean strain) and reproducible strains in the central well area. However, on average, only half of the applied strain was transferred to the bone marrow-derived cells. Furthermore, the strain measured within the device increased significantly with an increasing number of cycles while the membrane's Young's modulus decreased, indicating permanent changes in the material during extended use. Thus, strain magnitudes do not match the system readout and results require careful interpretation, especially at high cycle numbers.

Keywords: Biaxial tensile strain, BioFlex, Cell deformation, Digital image correlation

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PII: S0021-9290(09)00215-2

doi:10.1016/j.jbiomech.2009.04.013

Journal of Biomechanics
Volume 42, Issue 11 , Pages 1692-1696, 7 August 2009