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Haploinsufficiency for Translation Elongation Factor eEF1A2 in Aged Mouse Muscle and Neurons Is Compatible with Normal Function

Translation elongation factor isoform eEF1A2 is expressed in muscle and neurons. Deletion of eEF1A2 in mice gives rise to the neurodegenerative phenotype “wasted” (wst). Mice homozygous for the wasted mutation die of muscle wasting and neurodegeneration at four weeks post-natal. Although the mutatio...

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Autores principales: Griffiths, Lowri A., Doig, Jennifer, Churchhouse, Antonia M. D., Davies, Faith C. J., Squires, Charlotte E., Newbery, Helen J., Abbott, Catherine M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3405021/
https://www.ncbi.nlm.nih.gov/pubmed/22848658
http://dx.doi.org/10.1371/journal.pone.0041917
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author Griffiths, Lowri A.
Doig, Jennifer
Churchhouse, Antonia M. D.
Davies, Faith C. J.
Squires, Charlotte E.
Newbery, Helen J.
Abbott, Catherine M.
author_facet Griffiths, Lowri A.
Doig, Jennifer
Churchhouse, Antonia M. D.
Davies, Faith C. J.
Squires, Charlotte E.
Newbery, Helen J.
Abbott, Catherine M.
author_sort Griffiths, Lowri A.
collection PubMed
description Translation elongation factor isoform eEF1A2 is expressed in muscle and neurons. Deletion of eEF1A2 in mice gives rise to the neurodegenerative phenotype “wasted” (wst). Mice homozygous for the wasted mutation die of muscle wasting and neurodegeneration at four weeks post-natal. Although the mutation is said to be recessive, aged heterozygous mice have never been examined in detail; a number of other mouse models of motor neuron degeneration have recently been shown to have similar, albeit less severe, phenotypic abnormalities in the heterozygous state. We therefore examined the effects of ageing on a cohort of heterozygous +/wst mice and control mice, in order to establish whether a presumed 50% reduction in eEF1A2 expression was compatible with normal function. We evaluated the grip strength assay as a way of distinguishing between wasted and wild-type mice at 3–4 weeks, and then performed the same assay in older +/wst and wild-type mice. We also used rotarod performance and immunohistochemistry of spinal cord sections to evaluate the phenotype of aged heterozygous mice. Heterozygous mutant mice showed no deficit in neuromuscular function or signs of spinal cord pathology, in spite of the low levels of eEF1A2.
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spelling pubmed-34050212012-07-30 Haploinsufficiency for Translation Elongation Factor eEF1A2 in Aged Mouse Muscle and Neurons Is Compatible with Normal Function Griffiths, Lowri A. Doig, Jennifer Churchhouse, Antonia M. D. Davies, Faith C. J. Squires, Charlotte E. Newbery, Helen J. Abbott, Catherine M. PLoS One Research Article Translation elongation factor isoform eEF1A2 is expressed in muscle and neurons. Deletion of eEF1A2 in mice gives rise to the neurodegenerative phenotype “wasted” (wst). Mice homozygous for the wasted mutation die of muscle wasting and neurodegeneration at four weeks post-natal. Although the mutation is said to be recessive, aged heterozygous mice have never been examined in detail; a number of other mouse models of motor neuron degeneration have recently been shown to have similar, albeit less severe, phenotypic abnormalities in the heterozygous state. We therefore examined the effects of ageing on a cohort of heterozygous +/wst mice and control mice, in order to establish whether a presumed 50% reduction in eEF1A2 expression was compatible with normal function. We evaluated the grip strength assay as a way of distinguishing between wasted and wild-type mice at 3–4 weeks, and then performed the same assay in older +/wst and wild-type mice. We also used rotarod performance and immunohistochemistry of spinal cord sections to evaluate the phenotype of aged heterozygous mice. Heterozygous mutant mice showed no deficit in neuromuscular function or signs of spinal cord pathology, in spite of the low levels of eEF1A2. Public Library of Science 2012-07-25 /pmc/articles/PMC3405021/ /pubmed/22848658 http://dx.doi.org/10.1371/journal.pone.0041917 Text en Griffiths et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Griffiths, Lowri A.
Doig, Jennifer
Churchhouse, Antonia M. D.
Davies, Faith C. J.
Squires, Charlotte E.
Newbery, Helen J.
Abbott, Catherine M.
Haploinsufficiency for Translation Elongation Factor eEF1A2 in Aged Mouse Muscle and Neurons Is Compatible with Normal Function
title Haploinsufficiency for Translation Elongation Factor eEF1A2 in Aged Mouse Muscle and Neurons Is Compatible with Normal Function
title_full Haploinsufficiency for Translation Elongation Factor eEF1A2 in Aged Mouse Muscle and Neurons Is Compatible with Normal Function
title_fullStr Haploinsufficiency for Translation Elongation Factor eEF1A2 in Aged Mouse Muscle and Neurons Is Compatible with Normal Function
title_full_unstemmed Haploinsufficiency for Translation Elongation Factor eEF1A2 in Aged Mouse Muscle and Neurons Is Compatible with Normal Function
title_short Haploinsufficiency for Translation Elongation Factor eEF1A2 in Aged Mouse Muscle and Neurons Is Compatible with Normal Function
title_sort haploinsufficiency for translation elongation factor eef1a2 in aged mouse muscle and neurons is compatible with normal function
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3405021/
https://www.ncbi.nlm.nih.gov/pubmed/22848658
http://dx.doi.org/10.1371/journal.pone.0041917
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