Literature DB >> 17046753

GABA, not glycine, mediates inhibition of latent respiratory motor pathways after spinal cord injury.

M Beth Zimmer1, Harry G Goshgarian.   

Abstract

Previous work has shown that latent respiratory motor pathways known as crossed phrenic pathways are inhibited via a spinal inhibitory process; however, the underlying mechanisms remain unknown. The present study investigated whether spinal GABA-A and/or glycine receptors are involved in the inhibition of the crossed phrenic pathways after a C2 spinal cord hemisection injury. Under ketamine/xylazine anesthesia, adult, female, Sprague-Dawley rats were hemisected at the C2 spinal cord level. Following 1 week post injury, rats were anesthetized with urethane, vagotomized, paralyzed and ventilated. GABA-A receptor (bicuculline and Gabazine) and glycine receptor (strychnine) antagonists were applied directly to the cervical spinal cord (C3-C7), while bilateral phrenic nerve motor output was recorded. GABA-A receptor antagonists significantly increased peak phrenic amplitude bilaterally and induced crossed phrenic activity in spinal-injured rats. Muscimol, a specific GABA-A receptor agonist, blocked these effects. Glycine receptor antagonists applied directly to the spinal cord had no significant effect on phrenic motor output. These results indicate that phrenic motor neurons are inhibited via a GABA-A mediated receptor mechanism located within the spinal cord to inhibit the expression of crossed phrenic pathways.

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Year:  2006        PMID: 17046753      PMCID: PMC1852446          DOI: 10.1016/j.expneurol.2006.09.001

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


  45 in total

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Authors:  S M Murphy; P M Pilowsky; I J Llewellyn-Smith
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  13 in total

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4.  A Latent Propriospinal Network Can Restore Diaphragm Function after High Cervical Spinal Cord Injury.

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Authors:  Michael A Lane; Todd E White; Marcella A Coutts; Alex L Jones; Milapjit S Sandhu; David C Bloom; Donald C Bolser; Bill J Yates; David D Fuller; Paul J Reier
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Review 10.  Targeted activation of spinal respiratory neural circuits.

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Journal:  Exp Neurol       Date:  2020-02-19       Impact factor: 5.330

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