• Title of article

    Application of an asymmetric finite element model of the C2-T1 cervical spine for evaluating the role of soft tissues in stability

  • Author/Authors

    Erbulut، نويسنده , , D.U. and Zafarparandeh، نويسنده , , I. and Lazoglu، نويسنده , , Princeton University I. Burak Ozer، نويسنده , , A.F.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2014
  • Pages
    7
  • From page
    915
  • To page
    921
  • Abstract
    Different finite element models of the cervical spine have been suggested for evaluating the roles of ligaments, facet joints, and disks in the stability of cervical spine under sagittal moments. However, no comprehensive study on the response of the full cervical spine that has used a detailed finite element (FE) model (C2-T1) that considers the asymmetry about the mid-sagittal plane has been reported. The aims of this study were to consider asymmetry in a FE model of the full cervical spine and to investigate the influences of ligaments, facet joints, and disk nucleus on the stability of the asymmetric model during flexion and extension. The model was validated against various published in vitro studies and FE studies for the three main loading planes. Next, the C4-C5 level was modified to simulate different cases to investigate the role of the soft tissues in segmental stability. The FE model predicted that excluding the interspinous ligament (ISL) from the index level would cause excessive instability during flexion and that excluding the posterior longitudinal ligament (PLL) or the ligamentum flavum (LF) would not affect segmental rotation. During extension, motion increased when the facet joints were excluded. The model without disk nucleus was unstable compared to the intact model at lower loads and exhibited a similar rotation response at higher loads.
  • Keywords
    asymmetric , stability , Cervical spine , Finite element model
  • Journal title
    Medical Engineering and Physics
  • Serial Year
    2014
  • Journal title
    Medical Engineering and Physics
  • Record number

    1732676