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Early Interneuron Dysfunction in ALS: Insights from a Mutant sod1 Zebrafish Model

OBJECTIVE: To determine, when, how, and which neurons initiate the onset of pathophysiology in amyotrophic lateral sclerosis (ALS) using a transgenic mutant sod1 zebrafish model and identify neuroprotective drugs. METHODS: Proteinopathies such as ALS involve mutant proteins that misfold and activate...

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Autores principales: McGown, Alexander, McDearmid, Jonathan R, Panagiotaki, Niki, Tong, Huaxia, Al Mashhadi, Sufana, Redhead, Natasha, Lyon, Alison N, Beattie, Christine E, Shaw, Pamela J, Ramesh, Tennore M
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3608830/
https://www.ncbi.nlm.nih.gov/pubmed/23281025
http://dx.doi.org/10.1002/ana.23780
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author McGown, Alexander
McDearmid, Jonathan R
Panagiotaki, Niki
Tong, Huaxia
Al Mashhadi, Sufana
Redhead, Natasha
Lyon, Alison N
Beattie, Christine E
Shaw, Pamela J
Ramesh, Tennore M
author_facet McGown, Alexander
McDearmid, Jonathan R
Panagiotaki, Niki
Tong, Huaxia
Al Mashhadi, Sufana
Redhead, Natasha
Lyon, Alison N
Beattie, Christine E
Shaw, Pamela J
Ramesh, Tennore M
author_sort McGown, Alexander
collection PubMed
description OBJECTIVE: To determine, when, how, and which neurons initiate the onset of pathophysiology in amyotrophic lateral sclerosis (ALS) using a transgenic mutant sod1 zebrafish model and identify neuroprotective drugs. METHODS: Proteinopathies such as ALS involve mutant proteins that misfold and activate the heat shock stress response (HSR). The HSR is indicative of neuronal stress, and we used a fluorescent hsp70-DsRed reporter in our transgenic zebrafish to track neuronal stress and to measure functional changes in neurons and muscle over the course of the disease. RESULTS: We show that mutant sod1 fish first exhibited the HSR in glycinergic interneurons at 24 hours postfertilization (hpf). By 96 hpf, we observed a significant reduction in spontaneous glycinergic currents induced in spinal motor neurons. The loss of inhibition was followed by increased stress in the motor neurons of symptomatic adults and concurrent morphological changes at the neuromuscular junction (NMJ) indicative of denervation. Riluzole, the only approved ALS drug and apomorphine, an NRF2 activator, reduced the observed early neuronal stress response. INTERPRETATION: The earliest event in the pathophysiology of ALS in the mutant sod1 zebrafish model involves neuronal stress in inhibitory interneurons, resulting from mutant Sod1 expression. This is followed by a reduction in inhibitory input to motor neurons. The loss of inhibitory input may contribute to the later development of neuronal stress in motor neurons and concurrent inability to maintain the NMJ. Riluzole, the approved drug for use in ALS, modulates neuronal stress in interneurons, indicating a novel mechanism of riluzole action. ANN NEUROL 2013;73:246–258
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spelling pubmed-36088302013-05-13 Early Interneuron Dysfunction in ALS: Insights from a Mutant sod1 Zebrafish Model McGown, Alexander McDearmid, Jonathan R Panagiotaki, Niki Tong, Huaxia Al Mashhadi, Sufana Redhead, Natasha Lyon, Alison N Beattie, Christine E Shaw, Pamela J Ramesh, Tennore M Ann Neurol Original Articles OBJECTIVE: To determine, when, how, and which neurons initiate the onset of pathophysiology in amyotrophic lateral sclerosis (ALS) using a transgenic mutant sod1 zebrafish model and identify neuroprotective drugs. METHODS: Proteinopathies such as ALS involve mutant proteins that misfold and activate the heat shock stress response (HSR). The HSR is indicative of neuronal stress, and we used a fluorescent hsp70-DsRed reporter in our transgenic zebrafish to track neuronal stress and to measure functional changes in neurons and muscle over the course of the disease. RESULTS: We show that mutant sod1 fish first exhibited the HSR in glycinergic interneurons at 24 hours postfertilization (hpf). By 96 hpf, we observed a significant reduction in spontaneous glycinergic currents induced in spinal motor neurons. The loss of inhibition was followed by increased stress in the motor neurons of symptomatic adults and concurrent morphological changes at the neuromuscular junction (NMJ) indicative of denervation. Riluzole, the only approved ALS drug and apomorphine, an NRF2 activator, reduced the observed early neuronal stress response. INTERPRETATION: The earliest event in the pathophysiology of ALS in the mutant sod1 zebrafish model involves neuronal stress in inhibitory interneurons, resulting from mutant Sod1 expression. This is followed by a reduction in inhibitory input to motor neurons. The loss of inhibitory input may contribute to the later development of neuronal stress in motor neurons and concurrent inability to maintain the NMJ. Riluzole, the approved drug for use in ALS, modulates neuronal stress in interneurons, indicating a novel mechanism of riluzole action. ANN NEUROL 2013;73:246–258 Blackwell Publishing Ltd 2013-02 2012-12-31 /pmc/articles/PMC3608830/ /pubmed/23281025 http://dx.doi.org/10.1002/ana.23780 Text en Copyright © 2012 American Neurological Association http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation.
spellingShingle Original Articles
McGown, Alexander
McDearmid, Jonathan R
Panagiotaki, Niki
Tong, Huaxia
Al Mashhadi, Sufana
Redhead, Natasha
Lyon, Alison N
Beattie, Christine E
Shaw, Pamela J
Ramesh, Tennore M
Early Interneuron Dysfunction in ALS: Insights from a Mutant sod1 Zebrafish Model
title Early Interneuron Dysfunction in ALS: Insights from a Mutant sod1 Zebrafish Model
title_full Early Interneuron Dysfunction in ALS: Insights from a Mutant sod1 Zebrafish Model
title_fullStr Early Interneuron Dysfunction in ALS: Insights from a Mutant sod1 Zebrafish Model
title_full_unstemmed Early Interneuron Dysfunction in ALS: Insights from a Mutant sod1 Zebrafish Model
title_short Early Interneuron Dysfunction in ALS: Insights from a Mutant sod1 Zebrafish Model
title_sort early interneuron dysfunction in als: insights from a mutant sod1 zebrafish model
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3608830/
https://www.ncbi.nlm.nih.gov/pubmed/23281025
http://dx.doi.org/10.1002/ana.23780
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