• DocumentCode
    2855680
  • Title

    A quantitative measure of cortical organization of upper limb torque generation

  • Author

    Ricamato, A.L. ; Dhahe, Yasin Y. ; Dewald, Julius P A

  • Author_Institution
    Dept. of Biomed. Eng., Northwestern Univ., Evanston, IL, USA
  • Volume
    4
  • fYear
    2000
  • fDate
    2000
  • Firstpage
    2842
  • Abstract
    The objective was to use high resolution electroencephalography (EEG) to examine the functional organization of the human sensorimotor cortex during voluntary muscle activation of the upper limb. It was hypothesized that separate centers of cortical be responsible for generating joint different directions. Furthermore, it was anticipated that the magnitude of the electrical brain activity scales with joint torque level, while preserving the location of brain activity, which depends on direction in which a torque is generated. A secondary goal was to develop a new analysis technique to rigorously quantify electrical brain activity. A novel quantitative analysis technique incorporating a realistic, subject-specific boundary element method (BEM) head model was devised to create a 3D spatial resultant vector representation of the cortical region(s) of activation. Results indicate that a clear spatiotemporal relationship exists between the location of cortical activity and the magnitude of joint torque generation. Findings also demonstrate the methods developed as part of this study provide the ability to distinguish separate locations of centers of cortical activity not only as a function of joint but more importantly as a function of joint torque direction at a given joint. In conclusion, subject-specific quantitative spatial resultant vector analysis may prove helpful in identifying cortical regions responsible for generating specific joint torque conditions and associated muscle activation patterns. The work may also prove useful for evaluating potentially contrasting motor encoding schemes for cortical neuronal systems; thus distinguishing torque direction/magnitude coding from muscle activation based encoding approaches
  • Keywords
    biomechanics; biomedical MRI; boundary-elements methods; brain models; electroencephalography; electromyography; neuromuscular stimulation; cortical activity; cortical neuronal systems; cortical organization; cortical region; electrical brain activity; functional organization; high resolution electroencephalography; human sensorimotor cortex; joint torque level; motor encoding schemes; muscle activation patterns; spatiotemporal relationship; subject-specific boundary element method head model; subject-specific quantitative spatial resultant vector analysis; three dimensional spatial resultant vector; torque direction/magnitude coding; upper limb torque generation; voluntary muscle activation; Brain; Electroencephalography; Electrophysiology; Encoding; Frequency; Humans; Muscles; Spatiotemporal phenomena; Torque measurement; Wrist;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Engineering in Medicine and Biology Society, 2000. Proceedings of the 22nd Annual International Conference of the IEEE
  • Conference_Location
    Chicago, IL
  • ISSN
    1094-687X
  • Print_ISBN
    0-7803-6465-1
  • Type

    conf

  • DOI
    10.1109/IEMBS.2000.901459
  • Filename
    901459