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Time Course Analysis of Skeletal Muscle Pathology of GDE5 Transgenic Mouse

Glycerophosphodiesterase 5 (GDE5) selectively hydrolyses glycerophosphocholine to choline and is highly expressed in type II fiber-rich skeletal muscles. We have previously generated that a truncated mutant of GDE5 (GDE5dC471) that lacks phosphodiesterase activity and shown that transgenic mice over...

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Autores principales: Hashimoto, Takao, Yang, Bo, Okazaki, Yuri, Yoshizawa, Ikumi, Kajihara, Kaori, Kato, Norihisa, Wada, Masanobu, Yanaka, Noriyuki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5033411/
https://www.ncbi.nlm.nih.gov/pubmed/27658304
http://dx.doi.org/10.1371/journal.pone.0163299
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author Hashimoto, Takao
Yang, Bo
Okazaki, Yuri
Yoshizawa, Ikumi
Kajihara, Kaori
Kato, Norihisa
Wada, Masanobu
Yanaka, Noriyuki
author_facet Hashimoto, Takao
Yang, Bo
Okazaki, Yuri
Yoshizawa, Ikumi
Kajihara, Kaori
Kato, Norihisa
Wada, Masanobu
Yanaka, Noriyuki
author_sort Hashimoto, Takao
collection PubMed
description Glycerophosphodiesterase 5 (GDE5) selectively hydrolyses glycerophosphocholine to choline and is highly expressed in type II fiber-rich skeletal muscles. We have previously generated that a truncated mutant of GDE5 (GDE5dC471) that lacks phosphodiesterase activity and shown that transgenic mice overexpressing GDE5dC471 in skeletal muscles show less skeletal muscle mass than control mice. However, the molecular mechanism and pathophysiological features underlying decreased skeletal muscle mass in GDE5dC471 mice remain unclear. In this study, we characterized the skeletal muscle disorder throughout development and investigated the primary cause of muscle atrophy. While type I fiber-rich soleus muscle mass was not altered in GDE5dC471 mice, type II fiber-rich muscle mass was reduced in 8-week-old GDE5dC471 mice. Type II fiber-rich muscle mass continued to decrease irreversibly in 1-year-old transgenic mice with an increase in apoptotic cell. Adipose tissue weight and blood triglyceride levels in 8-week-old and 1-year-old transgenic mice were higher than those in control mice. This study also demonstrated compensatory mRNA expression of neuromuscular junction (NMJ) components, including nicotinic acetylcholine receptors (α1, γ, and ε subunits) and acetylcholinesterase in type II fiber-rich quadriceps muscles in GDE5dC471 mice. However, we did not observe morphological changes in NMJs associated with skeletal muscle atrophy in GDE5dC471 mice. We also found that HSP70 protein levels are significantly increased in the skeletal muscles of 2-week-old GDE5dC471 mice and in mouse myoblastic C2C12 cells overexpressing GDE5dC471. These findings suggest that GDE5dC471 mouse is a novel model of early-onset irreversible type II fiber-rich myopathy associated with cellular stress.
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spelling pubmed-50334112016-10-10 Time Course Analysis of Skeletal Muscle Pathology of GDE5 Transgenic Mouse Hashimoto, Takao Yang, Bo Okazaki, Yuri Yoshizawa, Ikumi Kajihara, Kaori Kato, Norihisa Wada, Masanobu Yanaka, Noriyuki PLoS One Research Article Glycerophosphodiesterase 5 (GDE5) selectively hydrolyses glycerophosphocholine to choline and is highly expressed in type II fiber-rich skeletal muscles. We have previously generated that a truncated mutant of GDE5 (GDE5dC471) that lacks phosphodiesterase activity and shown that transgenic mice overexpressing GDE5dC471 in skeletal muscles show less skeletal muscle mass than control mice. However, the molecular mechanism and pathophysiological features underlying decreased skeletal muscle mass in GDE5dC471 mice remain unclear. In this study, we characterized the skeletal muscle disorder throughout development and investigated the primary cause of muscle atrophy. While type I fiber-rich soleus muscle mass was not altered in GDE5dC471 mice, type II fiber-rich muscle mass was reduced in 8-week-old GDE5dC471 mice. Type II fiber-rich muscle mass continued to decrease irreversibly in 1-year-old transgenic mice with an increase in apoptotic cell. Adipose tissue weight and blood triglyceride levels in 8-week-old and 1-year-old transgenic mice were higher than those in control mice. This study also demonstrated compensatory mRNA expression of neuromuscular junction (NMJ) components, including nicotinic acetylcholine receptors (α1, γ, and ε subunits) and acetylcholinesterase in type II fiber-rich quadriceps muscles in GDE5dC471 mice. However, we did not observe morphological changes in NMJs associated with skeletal muscle atrophy in GDE5dC471 mice. We also found that HSP70 protein levels are significantly increased in the skeletal muscles of 2-week-old GDE5dC471 mice and in mouse myoblastic C2C12 cells overexpressing GDE5dC471. These findings suggest that GDE5dC471 mouse is a novel model of early-onset irreversible type II fiber-rich myopathy associated with cellular stress. Public Library of Science 2016-09-22 /pmc/articles/PMC5033411/ /pubmed/27658304 http://dx.doi.org/10.1371/journal.pone.0163299 Text en © 2016 Hashimoto 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Hashimoto, Takao
Yang, Bo
Okazaki, Yuri
Yoshizawa, Ikumi
Kajihara, Kaori
Kato, Norihisa
Wada, Masanobu
Yanaka, Noriyuki
Time Course Analysis of Skeletal Muscle Pathology of GDE5 Transgenic Mouse
title Time Course Analysis of Skeletal Muscle Pathology of GDE5 Transgenic Mouse
title_full Time Course Analysis of Skeletal Muscle Pathology of GDE5 Transgenic Mouse
title_fullStr Time Course Analysis of Skeletal Muscle Pathology of GDE5 Transgenic Mouse
title_full_unstemmed Time Course Analysis of Skeletal Muscle Pathology of GDE5 Transgenic Mouse
title_short Time Course Analysis of Skeletal Muscle Pathology of GDE5 Transgenic Mouse
title_sort time course analysis of skeletal muscle pathology of gde5 transgenic mouse
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5033411/
https://www.ncbi.nlm.nih.gov/pubmed/27658304
http://dx.doi.org/10.1371/journal.pone.0163299
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