Literature DB >> 10779104

Muscle recruitment through electrical stimulation of the lumbo-sacral spinal cord.

V K Mushahwar1, K W Horch.   

Abstract

The goal of this study was to determine the feasibility of producing graded muscle contraction in individual muscles or muscle groups by electrically stimulating motor neurons in the lumbo-sacral spinal cord. Recruitment curves were obtained for quadriceps, tibialis anterior and triceps surae/plantaris by stimulating their activation pools in the ventral horn of the feline spinal cord. Mean twitch times-to-peak for quadriceps, tibialis anterior and triceps surae/plantaris were 33.0, 41.0, and 36.0 ms, respectively. Twitch duration as a function of stimulus strength demonstrated a mixed motor unit recruitment order, distinctively different from the inverse recruitment order exhibited by conventional methods of electrical stimulation of peripheral nerve. The recruitment curve slopes (expressed as a percentage of maximum force per nanocurrent of delivered charge) were shallow: 7.9 for quadriceps, 2.6 for tibialis anterior and 8.5 for triceps surae/plantaris. These results show that graded control of force in individual muscles or muscle groups can be obtained through spinal cord stimulation, and suggest that spinal cord stimulation could be used for functional neuromuscular stimulation applications.

Mesh:

Year:  2000        PMID: 10779104     DOI: 10.1109/86.830945

Source DB:  PubMed          Journal:  IEEE Trans Rehabil Eng        ISSN: 1063-6528


  20 in total

Review 1.  Neural prostheses.

Authors:  A Prochazka; V K Mushahwar; D B McCreery
Journal:  J Physiol       Date:  2001-05-15       Impact factor: 5.182

2.  Intraspinal microstimulation preferentially recruits fatigue-resistant muscle fibres and generates gradual force in rat.

Authors:  J A Bamford; C T Putman; V K Mushahwar
Journal:  J Physiol       Date:  2005-10-20       Impact factor: 5.182

3.  Hindlimb movement in the cat induced by amplitude-modulated stimulation using extra-spinal electrodes.

Authors:  Changfeng Tai; Jicheng Wang; Bing Shen; Xianchun Wang; James R Roppolo; William C de Groat
Journal:  J Neural Eng       Date:  2008-03-26       Impact factor: 5.379

4.  Volitional walking via upper limb muscle-controlled stimulation of the lumbar locomotor center in man.

Authors:  Syusaku Sasada; Kenji Kato; Suguru Kadowaki; Stefan J Groiss; Yoshikazu Ugawa; Tomoyoshi Komiyama; Yukio Nishimura
Journal:  J Neurosci       Date:  2014-08-13       Impact factor: 6.167

Review 5.  Intraspinal microstimulation for the recovery of function following spinal cord injury.

Authors:  Jeremy A Bamford; Vivian K Mushahwar
Journal:  Prog Brain Res       Date:  2011       Impact factor: 2.453

6.  Muscle plasticity in rat following spinal transection and chronic intraspinal microstimulation.

Authors:  Jeremy A Bamford; Charles T Putman; Vivian K Mushahwar
Journal:  IEEE Trans Neural Syst Rehabil Eng       Date:  2010-09-02       Impact factor: 3.802

7.  Reanimating the arm and hand with intraspinal microstimulation.

Authors:  Jonas B Zimmermann; Kazuhiko Seki; Andrew Jackson
Journal:  J Neural Eng       Date:  2011-08-10       Impact factor: 5.379

8.  A Mixed-Signal VLSI System for Producing Temporally Adapting Intraspinal Microstimulation Patterns for Locomotion.

Authors:  Kevin A Mazurek; Bradley J Holinski; Dirk G Everaert; Vivian K Mushahwar; Ralph Etienne-Cummings
Journal:  IEEE Trans Biomed Circuits Syst       Date:  2016-03-09       Impact factor: 3.833

9.  Hindlimb endpoint forces predict movement direction evoked by intraspinal microstimulation in cats.

Authors:  Michel A Lemay; Dane Grasse; Warren M Grill
Journal:  IEEE Trans Neural Syst Rehabil Eng       Date:  2009-06-02       Impact factor: 3.802

10.  Intraspinal microstimulation produces over-ground walking in anesthetized cats.

Authors:  B J Holinski; K A Mazurek; D G Everaert; A Toossi; A M Lucas-Osma; P Troyk; R Etienne-Cummings; R B Stein; V K Mushahwar
Journal:  J Neural Eng       Date:  2016-09-13       Impact factor: 5.379

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