Journal of Biomechanics
Volume 43, Issue 12 , Pages 2315-2320, 26 August 2010

Quantitative, structural, and image-based mechanical analysis of nonunion fracture repaired by genetically engineered mesenchymal stem cells

  • Ilan Kallai

      Affiliations

    • Skeletal Biotech Laboratory, The Hebrew University – Hadassah Faculty of Dental Medicine, PO Box 12272, Ein Kerem, Jerusalem 91120, Israel
    • Both authors equally contributed to this manuscript.
  • ,
  • G. Harry van Lenthe

      Affiliations

    • Institute for Biomechanics, ETH Zurich, Zurich, Switzerland
    • Division of Biomechanics, K.U. Leuven, Leuven, Belgium
    • Both authors equally contributed to this manuscript.
  • ,
  • Davide Ruffoni

      Affiliations

    • Institute for Biomechanics, ETH Zurich, Zurich, Switzerland
  • ,
  • Yoram Zilberman

      Affiliations

    • Skeletal Biotech Laboratory, The Hebrew University – Hadassah Faculty of Dental Medicine, PO Box 12272, Ein Kerem, Jerusalem 91120, Israel
  • ,
  • Ralph Müller

      Affiliations

    • Institute for Biomechanics, ETH Zurich, Zurich, Switzerland
  • ,
  • Gadi Pelled

      Affiliations

    • Skeletal Biotech Laboratory, The Hebrew University – Hadassah Faculty of Dental Medicine, PO Box 12272, Ein Kerem, Jerusalem 91120, Israel
    • Department of Surgery and Cedars Sinai Regenerative Medicine Institute (CS-RMI), Cedars Sinai Medical Center, Los Angeles, CA, USA
  • ,
  • Dan Gazit

      Affiliations

    • Skeletal Biotech Laboratory, The Hebrew University – Hadassah Faculty of Dental Medicine, PO Box 12272, Ein Kerem, Jerusalem 91120, Israel
    • Department of Surgery and Cedars Sinai Regenerative Medicine Institute (CS-RMI), Cedars Sinai Medical Center, Los Angeles, CA, USA
    • Corresponding Author InformationCorresponding author at: Skeletal Biotech Laboratory, The Hebrew University – Hadassah Faculty of Dental Medicine, PO Box 12272, Ein Kerem, Jerusalem 91120, Israel. Tel.: +97226757627; fax: +97226757628.

Accepted 24 April 2010. published online 17 May 2010.

Abstract 

Stem cell-mediated gene therapy for fracture repair, utilizes genetically engineered mesenchymal stem cells (MSCs) for the induction of bone growth and is considered a promising approach in skeletal tissue regeneration. Previous studies have shown that murine nonunion fractures can be repaired by implanting MSCs over-expressing recombinant human bone morphogenetic protein-2 (rhBMP-2). Nanoindentation studies of bone tissue induced by MSCs in a radius fracture site indicated similar elastic modulus compared to intact murine bone, eight weeks post-treatment. In the present study we sought to investigate temporal changes in microarchitecture and biomechanical properties of repaired murine radius bones, following the implantation of MSCs. High-resolution micro-computed tomography (micro-CT) was performed 10 and 35 weeks post MSC implantation, followed by micro-finite element (micro-FE) analysis. The results have shown that the regenerated bone tissue remodels over time, as indicated by a significant decrease in bone volume, total volume, and connectivity density combined with an increase in mineral density. In addition, the axial stiffness of limbs repaired with MSCs was 2–1.5 times higher compared to the contralateral intact limbs, at 10 and 35 weeks post-treatment. These results could be attributed to the fusion that occurred in between the ulna and radius bones. In conclusion, although MSCs induce bone formation, which exceeds the fracture site, significant remodeling of the repair callus occurs over time. In addition, limbs treated with an MSC graft demonstrated superior biomechanical properties, which could indicate the clinical benefit of future MSC application in nonunion fracture repair.

Keywords: Micro-finite element model, Micro-computed tomography, Bone tissue regeneration, Mesenchymal stem cells

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PII: S0021-9290(10)00243-5

doi:10.1016/j.jbiomech.2010.04.031

Journal of Biomechanics
Volume 43, Issue 12 , Pages 2315-2320, 26 August 2010