• DocumentCode
    1068280
  • Title

    Dynamic Stability of Spine Using Stability-Based Optimization and Muscle Spindle Reflex

  • Author

    Zeinali-Davarani, S. ; Hemami, Hooshang ; Barin, K. ; Shirazi-Adl, A. ; Parnianpour, Mohamad

  • Author_Institution
    Sharif Univ. of Technol., Tehran
  • Volume
    16
  • Issue
    1
  • fYear
    2008
  • Firstpage
    106
  • Lastpage
    118
  • Abstract
    A computational method for simulation of 3-D movement of the trunk under the control of 48 anatomically oriented muscle actions was developed. Neural excitation of muscles was set based on inverse dynamics approach along with the stability-based optimization. The effect of muscle spindle reflex response on the trunk movement stability was evaluated upon the application of a perturbation moment. The method was used to simulate the trunk movement from the upright standing to 60deg of flexion. Incorporation of the stability condition as an additional constraint in the optimization resulted in an increase in antagonistic activities demonstrating that the antagonistic co-activation acts to increase the trunk stability in response to self-induced postural internal perturbation. In presence of a 30 Nm flexion perturbation moment, muscle spindles decreased the induced deviation of the position and velocity profiles from the desired ones. The stability-generated co-activation decreased the reflexive response of muscle spindles to the perturbation demonstrating that the rise in muscle co-activation can ameliorate the corruption of afferent neural sensory system at the expense of higher loading of the spine.
  • Keywords
    biocontrol; biomechanics; mechanoception; medical computing; muscle; neurophysiology; optimisation; stability; 3-D trunk movement stability; anatomically oriented muscle action control; antagonistic co-activation; dynamic simulation; dynamic spine stability; flexion perturbation moment; inverse dynamics; muscle spindle reflex response; neural excitation; neural sensory system; self-induced postural internal perturbation; stability-based optimization; stretch reflex; Angular velocity; Computational modeling; Constraint optimization; Gravity; Mechanical engineering; Muscles; Optimization methods; Stability; Symmetric matrices; Torque; Dynamic simulation; muscle spindle; spine; stability; stretch reflex; Algorithms; Behavior; Computer Simulation; Feedback; Humans; Models, Neurological; Movement; Muscle Spindles; Muscle, Skeletal; Reflex, Stretch; Spine; Thorax;
  • fLanguage
    English
  • Journal_Title
    Neural Systems and Rehabilitation Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1534-4320
  • Type

    jour

  • DOI
    10.1109/TNSRE.2007.906963
  • Filename
    4451155