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Updated: Jun 22, 2026

Analysis of Embryonic and Larval Zebrafish Skeletal Myofibers from Dissociated Preparations
Published on: November 13, 2013
Human Mutated MYOT and CRYAB Genes Cause a Myopathic Phenotype in Zebrafish
Elena Cannone1, Valeria Guglielmi2, Giulia Marchetto2
1Department of Molecular and Translational Medicine, Zebrafish Facility, University of Brescia, 25123 Brescia, Italy.
Abstract:
Myofibrillar myopathies (MFMs) are a group of hereditary neuromuscular disorders sharing common histological features, such as myofibrillar derangement, Z-disk disintegration, and the accumulation of degradation products into protein aggregates. They are caused by mutations in several genes that encode either structural proteins or molecular chaperones. Nevertheless, the mechanisms by which mutated genes result in protein aggregation are still unknown. To unveil the role of myotilin and αB-crystallin in the pathogenesis of MFM, we injected zebrafish fertilized eggs at the one-cell stage with expression plasmids harboring cDNA sequences of human wildtype or mutated MYOT (p.Ser95Ile) and human wildtype or mutated CRYAB (p.Gly154Ser). We evaluated the effects on fish survival, motor behavior, muscle structure and development. We found that transgenic zebrafish showed morphological defects that were more severe in those overexpressing mutant genes. which developed a myopathic phenotype consistent with that of human myofibrillar myopathy, including the formation of protein aggregates. Results indicate that pathogenic mutations in myotilin and αB-crystallin genes associated with MFM cause a structural and functional impairment of the skeletal muscle in zebrafish, thereby making this non-mammalian organism a powerful model to dissect disease pathogenesis and find possible druggable targets.
Insights
Mutations in myotilin and alphaB-crystallin cause myofibrillar myopathies (MFM). Zebrafish models with these mutations develop muscle defects, offering insights into disease mechanisms and potential drug targets.
Area of Science:
- Muscle Biology
- Genetics
- Neuromuscular Disorders
Background:
- Myofibrillar myopathies (MFMs) are inherited neuromuscular diseases characterized by muscle fiber breakdown and protein aggregates.
- Mutations in genes encoding structural proteins or chaperones cause MFMs, but the exact pathogenic mechanisms remain unclear.
Purpose of the Study:
- To investigate the role of myotilin and alphaB-crystallin in MFM pathogenesis.
- To establish a zebrafish model for studying MFM and identifying therapeutic targets.
Main Methods:
- Injected zebrafish embryos with wildtype or mutant human MYOT and CRYAB genes.
- Assessed fish survival, motor behavior, muscle structure, and protein aggregation.
- Utilized transgenic zebrafish to model MFM.
Main Results:
- Transgenic zebrafish exhibited morphological and muscle defects, particularly with mutant gene overexpression.
- Mutant gene expression led to protein aggregate formation, mimicking human MFM.
- Zebrafish models displayed a myopathic phenotype consistent with human MFM.
Conclusions:
- Pathogenic mutations in myotilin and alphaB-crystallin impair skeletal muscle structure and function in zebrafish.
- Zebrafish serve as a valuable non-mammalian model for dissecting MFM pathogenesis.
- This model can aid in discovering druggable targets for MFM treatment.
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