Literature DB >> 10833317

Spinal cord microstimulation generates functional limb movements in chronically implanted cats.

V K Mushahwar1, D F Collins, A Prochazka.   

Abstract

Spinal cord injuries disrupt the communication between the brain and peripheral nerves, but leave motoneurons and networks of interneurons below the level of the lesion intact. It is therefore possible to restore some function following injury by providing an artificial stimulus to the surviving neurons below the level of the lesion. We report here on a novel approach for generating functional movements by electrically stimulating the spinal cord through chronically implanted ultrafine, hair-like electrodes. Six to 12 microwires were implanted in the lumbar enlargement of intact cats for 6 months. Twice a week, trains of stimuli were delivered through each microwire and the evoked electromyographic and torque responses were recorded. Strong coordinated hindlimb movements were obtained by stimulating through individual electrodes. The joint torques elicited were capable of supporting the animals' hindquarters. The responses were stable over time and the contractions caused no apparent discomfort to the animals. No obvious motor deficits were seen throughout the 6-month duration of implantation. The results demonstrate that microwires implanted in the spinal cord remain stably in place and stimulation through these electrodes produces strong, controllable movements. This provides a promising basis for the use of spinal cord neuroprostheses in restoring mobility following spinal cord injury. Copyright 2000 Academic Press.

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Year:  2000        PMID: 10833317     DOI: 10.1006/exnr.2000.7381

Source DB:  PubMed          Journal:  Exp Neurol        ISSN: 0014-4886            Impact factor:   5.330


  42 in total

1.  Real-time interaction between a neuromorphic electronic circuit and the spinal cord.

Authors:  R Jung; E J Brauer; J J Abbas
Journal:  IEEE Trans Neural Syst Rehabil Eng       Date:  2001-09       Impact factor: 3.802

Review 2.  Neural prostheses.

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

3.  Initiating extension of the lower limbs in subjects with complete spinal cord injury by epidural lumbar cord stimulation.

Authors:  B Jilge; K Minassian; F Rattay; M M Pinter; F Gerstenbrand; H Binder; M R Dimitrijevic
Journal:  Exp Brain Res       Date:  2003-10-25       Impact factor: 1.972

4.  The effects of intraspinal microstimulation on spinal cord tissue in the rat.

Authors:  Jeremy A Bamford; Kathryn G Todd; Vivian K Mushahwar
Journal:  Biomaterials       Date:  2010-04-28       Impact factor: 12.479

5.  Upper-limb muscle responses to epidural, subdural and intraspinal stimulation of the cervical spinal cord.

Authors:  Abigail N Sharpe; Andrew Jackson
Journal:  J Neural Eng       Date:  2014-02       Impact factor: 5.379

6.  Intraspinal microstimulation for respiratory muscle activation.

Authors:  Michael D Sunshine; Comron N Ganji; Paul J Reier; David D Fuller; Chet T Moritz
Journal:  Exp Neurol       Date:  2018-01-02       Impact factor: 5.330

Review 7.  Spinal control of motor outputs by intrinsic and externally induced electric field potentials.

Authors:  Elzbieta Jankowska
Journal:  J Neurophysiol       Date:  2017-05-24       Impact factor: 2.714

Review 8.  Neurophysiology and neural engineering: a review.

Authors:  Arthur Prochazka
Journal:  J Neurophysiol       Date:  2017-05-31       Impact factor: 2.714

9.  The development of neural stimulators: a review of preclinical safety and efficacy studies.

Authors:  Robert K Shepherd; Joel Villalobos; Owen Burns; David A X Nayagam
Journal:  J Neural Eng       Date:  2018-05-14       Impact factor: 5.379

10.  Therapeutic intraspinal microstimulation improves forelimb function after cervical contusion injury.

Authors:  M R Kasten; M D Sunshine; E S Secrist; P J Horner; C T Moritz
Journal:  J Neural Eng       Date:  2013-05-28       Impact factor: 5.379

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