Journal of Biomechanics
Volume 40, Issue 15 , Pages 3297-3304, 2007

A surrogate long-bone model with osteoporotic material properties for biomechanical testing of fracture implants

  • Mark B. Sommers

      Affiliations

    • Biomechanics Laboratory, Legacy Clinical Research and Technology Center, Portland, OR, USA
  • ,
  • Daniel C. Fitzpatrick

      Affiliations

    • Orthopedic Healthcare Northwest, Eugene, OR, USA
  • ,
  • Steven M. Madey

      Affiliations

    • Biomechanics Laboratory, Legacy Clinical Research and Technology Center, Portland, OR, USA
  • ,
  • Corey Vande Zanderschulp

      Affiliations

    • Biomechanics Laboratory, Legacy Clinical Research and Technology Center, Portland, OR, USA
  • ,
  • Michael Bottlang

      Affiliations

    • Biomechanics Laboratory, Legacy Clinical Research and Technology Center, Portland, OR, USA
    • Corresponding Author InformationCorresponding author. Tel.: +15034135457; fax: +15034135216.

Accepted 27 April 2007. published online 18 June 2007.

Abstract 

In vitro comparative testing of fracture fixation implants is limited by the highly variable material properties of cadaveric bone. Bone surrogate specimens are often employed to avoid this confounding variable. Although validated surrogate models of normal bone (NB) exist, no validated bone model simulating weak, osteoporotic bone (OPB) is available. This study presents an osteoporotic long-bone model designed to match the lower cumulative range of mechanical properties found in large series of cadaveric femora reported in the literature. Five key structural properties were identified from the literature: torsional rigidity and strength, bending rigidity and strength, and screw pull-out strength. An OPB surrogate was designed to meet the low range for each of these parameters, and was mechanically tested. For comparison, the same parameters were determined for surrogates of NB. The OPB surrogate had a torsional rigidity and torsional strength within the lower 2% and 16%, respectively, of the literature based cumulative range reported for cadaveric femurs. Its bending rigidity and bending strength was within the lower 11% and 8% of the literature-based range, respectively. Its pull-out strength was within the lower 2% to 16% of the literature based range. With all five structural properties being within the lower 16% of the cumulative range reported for native femurs, the OPB surrogate reflected the diminished structural properties seen in osteoporotic femora. In comparison, surrogates of NB demonstrated structural properties within 23–118% of the literature-based range. These results support the need and utility of the OPB surrogate for comparative testing of implants for fixation of femoral shaft fractures in OPB.

Keywords: Osteoporosis, Surrogate, Bone, Femur, Mechanical properties

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PII: S0021-9290(07)00197-2

doi:10.1016/j.jbiomech.2007.04.024

Journal of Biomechanics
Volume 40, Issue 15 , Pages 3297-3304, 2007