Literature DB >> 24135130

Corticospinal neuroprostheses to restore locomotion after spinal cord injury.

David Borton1, Marco Bonizzato2, Janine Beauparlant1, Jack DiGiovanna2, Eduardo M Moraud3, Nikolaus Wenger1, Pavel Musienko1, Ivan R Minev4, Stéphanie P Lacour4, José del R Millán5, Silvestro Micera6, Grégoire Courtine7.   

Abstract

In this conceptual review, we highlight our strategy for, and progress in the development of corticospinal neuroprostheses for restoring locomotor functions and promoting neural repair after thoracic spinal cord injury in experimental animal models. We specifically focus on recent developments in recording and stimulating neural interfaces, decoding algorithms, extraction of real-time feedback information, and closed-loop control systems. Each of these complex neurotechnologies plays a significant role for the design of corticospinal neuroprostheses. Even more challenging is the coordinated integration of such multifaceted technologies into effective and practical neuroprosthetic systems to improve movement execution, and augment neural plasticity after injury. In this review we address our progress in rodent animal models to explore the viability of a technology-intensive strategy for recovery and repair of the damaged nervous system. The technical, practical, and regulatory hurdles that lie ahead along the path toward clinical applications are enormous - and their resolution is uncertain at this stage. However, it is imperative that the discoveries and technological developments being made across the field of neuroprosthetics do not stay in the lab, but instead reach clinical fruition at the fastest pace possible.
Copyright © 2013 Elsevier Ireland Ltd and the Japan Neuroscience Society. All rights reserved.

Entities:  

Keywords:  Brain–machine interface; Neuromotor rehabilitation; Neuroprosthetics; Spinal interface

Mesh:

Year:  2013        PMID: 24135130     DOI: 10.1016/j.neures.2013.10.001

Source DB:  PubMed          Journal:  Neurosci Res        ISSN: 0168-0102            Impact factor:   3.304


  14 in total

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3.  Neuromuscular training based on whole body vibration in children with spina bifida: a retrospective analysis of a new physiotherapy treatment program.

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Review 4.  Brain-controlled neuromuscular stimulation to drive neural plasticity and functional recovery.

Authors:  C Ethier; J A Gallego; L E Miller
Journal:  Curr Opin Neurobiol       Date:  2015-03-28       Impact factor: 6.627

Review 5.  Brain-controlled muscle stimulation for the restoration of motor function.

Authors:  Christian Ethier; Lee E Miller
Journal:  Neurobiol Dis       Date:  2014-10-28       Impact factor: 5.996

6.  Chronic tissue response to untethered microelectrode implants in the rat brain and spinal cord.

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7.  Spinal motor outputs during step-to-step transitions of diverse human gaits.

Authors:  Valentina La Scaleia; Yuri P Ivanenko; Karl E Zelik; Francesco Lacquaniti
Journal:  Front Hum Neurosci       Date:  2014-05-15       Impact factor: 3.169

Review 8.  Tapping into rhythm generation circuitry in humans during simulated weightlessness conditions.

Authors:  Irina A Solopova; Victor A Selionov; Francesca Sylos-Labini; Victor S Gurfinkel; Francesco Lacquaniti; Yuri P Ivanenko
Journal:  Front Syst Neurosci       Date:  2015-02-18

Review 9.  Spinal cord injury - there is not just one way of treating it.

Authors:  Veronica Estrada; Hans Werner Müller
Journal:  F1000Prime Rep       Date:  2014-09-04

Review 10.  Human locomotion under reduced gravity conditions: biomechanical and neurophysiological considerations.

Authors:  Francesca Sylos-Labini; Francesco Lacquaniti; Yuri P Ivanenko
Journal:  Biomed Res Int       Date:  2014-08-28       Impact factor: 3.411

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