Literature DB >> 14966523

The injured spinal cord spontaneously forms a new intraspinal circuit in adult rats.

Florence M Bareyre1, Martin Kerschensteiner, Olivier Raineteau, Thomas C Mettenleiter, Oliver Weinmann, Martin E Schwab.   

Abstract

In contrast to peripheral nerves, central axons do not regenerate. Partial injuries to the spinal cord, however, are followed by functional recovery. We investigated the anatomical basis of this recovery and found that after incomplete spinal cord injury in rats, transected hindlimb corticospinal tract (CST) axons sprouted into the cervical gray matter to contact short and long propriospinal neurons (PSNs). Over 12 weeks, contacts with long PSNs that bridged the lesion were maintained, whereas contacts with short PSNs that did not bridge the lesion were lost. In turn, long PSNs arborize on lumbar motor neurons, creating a new intraspinal circuit relaying cortical input to its original spinal targets. We confirmed the functionality of this circuit by electrophysiological and behavioral testing before and after CST re-lesion. Retrograde transynaptic tracing confirmed its integrity, and revealed changes of cortical representation. Hence, after incomplete spinal cord injury, spontaneous extensive remodeling occurs, based on axonal sprout formation and removal. Such remodeling may be crucial for rehabilitation in humans.

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Year:  2004        PMID: 14966523     DOI: 10.1038/nn1195

Source DB:  PubMed          Journal:  Nat Neurosci        ISSN: 1097-6256            Impact factor:   24.884


  391 in total

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Journal:  Ann Neurol       Date:  2011-11       Impact factor: 10.422

Review 2.  The dark side of neuroplasticity.

Authors:  Arthur Brown; Lynne C Weaver
Journal:  Exp Neurol       Date:  2011-11-12       Impact factor: 5.330

3.  Electrophysiological and morphological characterization of propriospinal interneurons in the thoracic spinal cord.

Authors:  S A Saywell; T W Ford; C F Meehan; A J Todd; P A Kirkwood
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4.  Fas and FasL expression in the spinal cord following cord hemisection in the monkey.

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Journal:  Neurochem Res       Date:  2010-12-23       Impact factor: 3.996

5.  Benefits of spine stabilization with biodegradable scaffolds in spinal cord injured rats.

Authors:  Nuno A Silva; Rui A Sousa; Joana S Fraga; Marco Fontes; Hugo Leite-Almeida; Rui Cerqueira; Armando Almeida; Nuno Sousa; Rui L Reis; Antonio J Salgado
Journal:  Tissue Eng Part C Methods       Date:  2012-08-20       Impact factor: 3.056

6.  Regenerated synapses in lamprey spinal cord are sparse and small even after functional recovery from injury.

Authors:  Paul A Oliphint; Naila Alieva; Andrea E Foldes; Eric D Tytell; Billy Y-B Lau; Jenna S Pariseau; Avis H Cohen; Jennifer R Morgan
Journal:  J Comp Neurol       Date:  2010-07-15       Impact factor: 3.215

7.  Reactivation of Dormant Relay Pathways in Injured Spinal Cord by KCC2 Manipulations.

Authors:  Bo Chen; Yi Li; Bin Yu; Zicong Zhang; Benedikt Brommer; Philip Raymond Williams; Yuanyuan Liu; Shane Vincent Hegarty; Songlin Zhou; Junjie Zhu; Hong Guo; Yi Lu; Yiming Zhang; Xiaosong Gu; Zhigang He
Journal:  Cell       Date:  2018-07-19       Impact factor: 41.582

8.  Exercise training after spinal cord injury selectively alters synaptic properties in neurons in adult mouse spinal cord.

Authors:  Jamie R Flynn; Lynda R Dunn; Mary P Galea; Robin Callister; Robert J Callister; Michelle M Rank
Journal:  J Neurotrauma       Date:  2013-05-09       Impact factor: 5.269

Review 9.  Translational spinal cord injury research: preclinical guidelines and challenges.

Authors:  Paul J Reier; Michael A Lane; Edward D Hall; Y D Teng; Dena R Howland
Journal:  Handb Clin Neurol       Date:  2012

10.  Effect of combined treatment with methylprednisolone and soluble Nogo-66 receptor after rat spinal cord injury.

Authors:  Benxiu Ji; Mingwei Li; Stephane Budel; R Blake Pepinsky; Lee Walus; Thomas M Engber; Stephen M Strittmatter; Jane K Relton
Journal:  Eur J Neurosci       Date:  2005-08       Impact factor: 3.386

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