Zebrafish models flex their muscles to shed light on muscular dystrophies

Muscular dystrophies are a group of genetic disorders that specifically affect skeletal muscle and are characterized by progressive muscle degeneration and weakening. To develop therapies and treatments for these diseases, a better understanding of the molecular basis of muscular dystrophies is requ...

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Main Authors: Joachim Berger, Peter D. Currie
Format: Article
Language:English
Published: The Company of Biologists 2012-11-01
Series:Disease Models & Mechanisms
Online Access:http://dmm.biologists.org/content/5/6/726
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spelling doaj-f4072b7dc66447cebeb1fd2ced918a0e2020-11-25T01:11:04ZengThe Company of BiologistsDisease Models & Mechanisms1754-84031754-84112012-11-015672673210.1242/dmm.010082010082Zebrafish models flex their muscles to shed light on muscular dystrophiesJoachim BergerPeter D. CurrieMuscular dystrophies are a group of genetic disorders that specifically affect skeletal muscle and are characterized by progressive muscle degeneration and weakening. To develop therapies and treatments for these diseases, a better understanding of the molecular basis of muscular dystrophies is required. Thus, identification of causative genes mutated in specific disorders and the study of relevant animal models are imperative. Zebrafish genetic models of human muscle disorders often closely resemble disease pathogenesis, and the optical clarity of zebrafish embryos and larvae enables visualization of dynamic molecular processes in vivo. As an adjunct tool, morpholino studies provide insight into the molecular function of genes and allow rapid assessment of candidate genes for human muscular dystrophies. This unique set of attributes makes the zebrafish model system particularly valuable for the study of muscle diseases. This review discusses how recent research using zebrafish has shed light on the pathological basis of muscular dystrophies, with particular focus on the muscle cell membrane and the linkage between the myofibre cytoskeleton and the extracellular matrix.http://dmm.biologists.org/content/5/6/726
collection DOAJ
language English
format Article
sources DOAJ
author Joachim Berger
Peter D. Currie
spellingShingle Joachim Berger
Peter D. Currie
Zebrafish models flex their muscles to shed light on muscular dystrophies
Disease Models & Mechanisms
author_facet Joachim Berger
Peter D. Currie
author_sort Joachim Berger
title Zebrafish models flex their muscles to shed light on muscular dystrophies
title_short Zebrafish models flex their muscles to shed light on muscular dystrophies
title_full Zebrafish models flex their muscles to shed light on muscular dystrophies
title_fullStr Zebrafish models flex their muscles to shed light on muscular dystrophies
title_full_unstemmed Zebrafish models flex their muscles to shed light on muscular dystrophies
title_sort zebrafish models flex their muscles to shed light on muscular dystrophies
publisher The Company of Biologists
series Disease Models & Mechanisms
issn 1754-8403
1754-8411
publishDate 2012-11-01
description Muscular dystrophies are a group of genetic disorders that specifically affect skeletal muscle and are characterized by progressive muscle degeneration and weakening. To develop therapies and treatments for these diseases, a better understanding of the molecular basis of muscular dystrophies is required. Thus, identification of causative genes mutated in specific disorders and the study of relevant animal models are imperative. Zebrafish genetic models of human muscle disorders often closely resemble disease pathogenesis, and the optical clarity of zebrafish embryos and larvae enables visualization of dynamic molecular processes in vivo. As an adjunct tool, morpholino studies provide insight into the molecular function of genes and allow rapid assessment of candidate genes for human muscular dystrophies. This unique set of attributes makes the zebrafish model system particularly valuable for the study of muscle diseases. This review discusses how recent research using zebrafish has shed light on the pathological basis of muscular dystrophies, with particular focus on the muscle cell membrane and the linkage between the myofibre cytoskeleton and the extracellular matrix.
url http://dmm.biologists.org/content/5/6/726
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