Related Experiment Video
Updated: Jun 24, 2025

Examining Muscle Regeneration in Zebrafish Models of Muscle Disease
Published on: January 18, 2021
Creatine and L-carnitine attenuate muscular laminopathy in the LMNA mutation transgenic zebrafish
Shao-Wei Pan1,2, Horng-Dar Wang2, He-Yun Hsiao1,2
1Institute of Molecular and Genomic Medicine, National Health Research Institutes, Zhunan, Miaoli, Taiwan.
Abstract:
Lamin A/C gene (LMNA) mutations contribute to severe striated muscle laminopathies, affecting cardiac and skeletal muscles, with limited treatment options. In this study, we delve into the investigations of five distinct LMNA mutations, including three novel variants and two pathogenic variants identified in patients with muscular laminopathy. Our approach employs zebrafish models to comprehensively study these variants. Transgenic zebrafish expressing wild-type LMNA and each mutation undergo extensive morphological profiling, swimming behavior assessments, muscle endurance evaluations, heartbeat measurement, and histopathological analysis of skeletal muscles. Additionally, these models serve as platform for focused drug screening. We explore the transcriptomic landscape through qPCR and RNAseq to unveil altered gene expression profiles in muscle tissues. Larvae of LMNA(L35P), LMNA(E358K), and LMNA(R453W) transgenic fish exhibit reduced swim speed compared to LMNA(WT) measured by DanioVision. All LMNA transgenic adult fish exhibit reduced swim speed compared to LMNA(WT) in T-maze. Moreover, all LMNA transgenic adult fish, except LMNA(E358K), display weaker muscle endurance than LMNA(WT) measured by swimming tunnel. Histochemical staining reveals decreased fiber size in all LMNA mutations transgenic fish, excluding LMNA(WT) fish. Interestingly, LMNA(A539V) and LMNA(E358K) exhibited elevated heartbeats. We recognize potential limitations with transgene overexpression and conducted association calculations to explore its effects on zebrafish phenotypes. Our results suggest lamin A/C overexpression may not directly impact mutant phenotypes, such as impaired swim speed, increased heart rates, or decreased muscle fiber diameter. Utilizing LMNA zebrafish models for drug screening, we identify L-carnitine treatment rescuing muscle endurance in LMNA(L35P) and creatine treatment reversing muscle endurance in LMNA(R453W) zebrafish models. Creatine activates AMPK and mTOR pathways, improving muscle endurance and swim speed in LMNA(R453W) fish. Transcriptomic profiling reveals upstream regulators and affected genes contributing to motor dysfunction, cardiac anomalies, and ion flux dysregulation in LMNA mutant transgenic fish. These findings faithfully mimic clinical manifestations of muscular laminopathies, including dysmorphism, early mortality, decreased fiber size, and muscle dysfunction in zebrafish. Furthermore, our drug screening results suggest L-carnitine and creatine treatments as potential rescuers of muscle endurance in LMNA(L35P) and LMNA(R453W) zebrafish models. Our study offers valuable insights into the future development of potential treatments for LMNA-related muscular laminopathy.
Insights
Lamin A/C gene (LMNA) mutations cause muscular laminopathies. Zebrafish models revealed L-carnitine and creatine treatments improve muscle endurance in specific LMNA mutations, offering potential therapeutic avenues.
Area of Science:
- Genetics and Molecular Biology
- Cardiovascular Biology
- Neuromuscular Biology
Background:
- Mutations in the Lamin A/C gene (LMNA) lead to severe striated muscle laminopathies affecting cardiac and skeletal muscles.
- Current treatment options for these conditions are limited, necessitating novel therapeutic strategies.
Purpose of the Study:
- To investigate the functional impact of five distinct LMNA mutations, including novel variants, using zebrafish models.
- To establish and utilize these zebrafish models for comprehensive phenotypic analysis and drug screening.
Main Methods:
- Generated transgenic zebrafish expressing wild-type LMNA and five LMNA mutations.
- Conducted morphological profiling, swimming behavior tests, muscle endurance assays, heartbeat measurements, and histopathological analysis.
- Performed transcriptomic analysis (qPCR, RNAseq) to identify altered gene expression.
- Utilized the models for focused drug screening to identify potential therapeutic compounds.
Main Results:
- LMNA mutant zebrafish exhibited reduced swim speed, decreased muscle endurance, and smaller muscle fiber size compared to wild-type controls.
- Specific mutations (LMNA(A539V), LMNA(E358K)) showed elevated heart rates.
- L-carnitine treatment rescued muscle endurance in LMNA(L35P) models, while creatine treatment improved it in LMNA(R453W) models.
- Creatine activated AMPK and mTOR pathways, enhancing muscle endurance and swim speed in LMNA(R453W) fish.
- Transcriptomic profiling identified key regulators involved in motor dysfunction, cardiac anomalies, and ion flux.
Conclusions:
- LMNA zebrafish models accurately recapitulate key clinical features of muscular laminopathies.
- L-carnitine and creatine demonstrate potential as therapeutic agents for specific LMNA mutations.
- These findings provide valuable insights for developing future treatments for LMNA-related muscular laminopathy.

