• français
    • English
    English
  • Ouvrir une session
Aide
Voir le document 
  •   Accueil de SAM
  • Institut de Biomécanique Humaine Georges Charpak (IBHGC)
  • Voir le document
  • Accueil de SAM
  • Institut de Biomécanique Humaine Georges Charpak (IBHGC)
  • Voir le document
JavaScript is disabled for your browser. Some features of this site may not work without it.

A subject-specific biomechanical control model for the prediction of cervical spine muscle forces

Article dans une revue avec comité de lecture
Auteur
VAN DEN ABBEELE, Maxim
LI, Fan
480877 Hunan University [Changsha] [HNU]
POMERO, Vincent
BONNEAU, Dominique
ccSANDOZ, Baptiste
ccSKALLI, Wafa
ccLAPORTE, Sébastien
175453 Arts et Métiers ParisTech
466360 Institut de Biomecanique Humaine Georges Charpak
99538 Laboratoire de biomécanique [LBM]

URI
http://hdl.handle.net/10985/15820
DOI
10.1016/j.clinbiomech.2017.12.001
Date
2018
Journal
Clinical Biomechanics

Résumé

Background: The aim of the present study is to propose a subject-specific biomechanical control model for the estimation of active cervical spine muscle forces. Methods: The proprioception-based regulation model developed by Pomero et al. (2004) for the lumbar spine was adapted to the cervical spine. The model assumption is that the control strategy drives muscular activation to maintain the spinal joint load below the physiological threshold, thus avoiding excessive intervertebral displacements. Model evaluation was based on the comparison with the results of two reference studies. The effect of the uncertainty on the main model input parameters on the predicted force pattern was assessed. The feasibility of building this subject-specific model was illustrated with a case study of one subject. Findings: The model muscle force predictions, although independent from EMG recordings, were consistent with the available literature, with mean differences of 20%. Spinal loads generally remained below the physiological thresholds. Moreover, the model behavior was found robust against the uncertainty on the muscle orientation, with a maximum coefficient of variation (CV) of 10%. Interpretation: After full validation, this model should offer a relevant and efficient tool for the biomechanical and clinical study of the cervical spine, which might improve the understanding of cervical spine disorders.

Fichier(s) constituant cette publication

Nom:
IBHGC_CB_2018_VAN DEN ABBEELE.pdf
Taille:
1.366Mo
Format:
PDF
Voir/Ouvrir

Cette publication figure dans le(s) laboratoire(s) suivant(s)

  • Institut de Biomécanique Humaine Georges Charpak (IBHGC)

Documents liés

Visualiser des documents liés par titre, auteur, créateur et sujet.

  • Experimental analysis of the lower cervical spine in flexion with a focus on facet tracking 
    Article dans une revue avec comité de lecture
    ccMUTH-SENG, Christophe; BRAUGE, David; SORIAU, N.; ccSANDOZ, Baptiste; VAN DEN ABBEELE, M.; ccSKALLI, Wafa; ccLAPORTE, Sébastien (Elsevier, 2019)
    Cervical traumas are among the most common events leading to serious spinal cord injuries. While models are often used to better understand injury mechanisms, experimental data for their validation remain sparse, particularly ...
  • Spine 
    Chapitre d'ouvrage scientifique
    VAN DEN ABBEELE, Maxim; ADAM, Clayton; ccSKALLI, Wafa; ccLAPORTE, Sébastien; ccROUCH, Philippe; ccROHAN, Pierre-Yves (Elsevier, 2017)
    Clinical problems of the human spine have a high prevalence, affecting more than 25.5 million people in 2012. Older adults, in particular, are susceptible to degenerative spine disorders such as deformities or osteoporosis. ...
  • Study on cervical muscle volume by means of three-dimensional reconstruction 
    Article dans une revue avec comité de lecture
    LI, Fan; LAVILLE, Aurélien; BONNEAU, Dominique; ccSKALLI, Wafa; ccLAPORTE, Sébastien (Wiley, 2013)
    Purpose To quantify the cervical muscle volume variation by means of three‐dimensional reconstruction from MRI images. Materials and Methods Sixteen subjects were scanned using a Philips MRI scanner, including 11 men and ...
  • Contribution to FE modeling for intraoperative pedicle screw strength prediction 
    Article dans une revue avec comité de lecture
    VAN DEN ABBEELE, Maxim; VALIADIS, Jean-Marc; LIMA, Lucas Venancio; KHALIFE, Pascal; ccSKALLI, Wafa; ccROUCH, Philippe (Taylor & Francis, 2017)
    Although the use of pedicle screws is considered safe, mechanical issues still often occur. Commonly reported issues are screw loosening, screw bending and screw fracture. The aim of this study was to develop a Finite ...
  • Non-invasive assessment of human multifidus muscle stiffness using ultrasound shear wave elastography: A feasibility study 
    Article dans une revue avec comité de lecture
    MOREAU, Baptiste; GAD, Hisham; ccSANDOZ, Baptiste; ccSKALLI, Wafa; ccLAPORTE, Sébastien; ccVERGARI, Claudio (SAGE Publications, 2016)
    INTRODUCTION: There is a lack of numeric data for the mechanical characterization of spine muscles, especially in vivo data. The multifidus muscle is a major muscle for the stabilization of the spine and may be involved ...

Parcourir

Tout SAMLaboratoiresAuteursDates de publicationCampus/InstitutsCe LaboratoireAuteursDates de publicationCampus/Instituts

Lettre Diffuser la Science

Dernière lettreVoir plus

Statistiques de consultation

Publications les plus consultéesStatistiques par paysAuteurs les plus consultés

ÉCOLE NATIONALE SUPERIEURE D'ARTS ET METIERS

  • Contact
  • Mentions légales

ÉCOLE NATIONALE SUPERIEURE D'ARTS ET METIERS

  • Contact
  • Mentions légales