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Updated: Aug 30, 2025

Immunostaining of Dissected Zebrafish Embryonic Heart
Published on: January 10, 2012
Transcriptome Profile Identifies Actin as an Essential Regulator of Cardiac Myosin Binding Protein C3 Hypertrophic
Sahar Isa Da'as1,2, Waseem Hasan1, Rola Salem3
1Department of Human Genetics, Sidra Medicine, Doha P.O. Box 26999, Qatar.
Insights
Genetic variants in cardiac myosin-binding protein C (cMyBP-C) cause hypertrophic cardiomyopathy (HCM). A zebrafish model revealed that cMyBP-C deficiency leads to cardiac hypertrophy and impaired function, offering insights into HCM development.
Area of Science:
- Cardiovascular Biology
- Genetics
- Zebrafish Models
Background:
- Variants in cardiac myosin-binding protein C (cMyBP-C) are a primary cause of inherited hypertrophic cardiomyopathy (HCM).
- cMyBP-C is crucial for normal heart contractile function.
Purpose of the Study:
- To investigate the cardiac impairment associated with c-MYBPC3 variants using a zebrafish model.
- To elucidate the early mechanisms of hypertrophic cardiomyopathy initiation.
Main Methods:
- Generation and analysis of a zebrafish mypbc3-knockout model.
- Morphological, cellular, functional, and transcriptomic analyses of mutant zebrafish at larval and adult stages.
Main Results:
- mypbc3-knockout zebrafish exhibited reduced heart chamber diameters, cardiomyocyte hyperplasia, and increased ejection fraction.
- Adult mutants displayed thickened ventricular walls, reduced heart rate, and decreased endurance.
- Transcriptome profiling revealed downregulation of actin-filament-based processes, suggesting impaired actin cytoskeleton organization.
Conclusions:
- The zebrafish mypbc3-knockout model recapitulates key features of HCM, including cardiac hypertrophy and functional deficits.
- Cardiomyocyte hyperplasia and altered actin dynamics are critical early events in cMyBP-C-related HCM.
- This model provides valuable insights into HCM pathogenesis and potential therapeutic targets.
Abstract:
Variants in cardiac myosin-binding protein C (cMyBP-C) are the leading cause of inherited hypertrophic cardiomyopathy (HCM), demonstrating the key role that cMyBP-C plays in the heart's contractile machinery. To investigate the c-MYBPC3 HCM-related cardiac impairment, we generated a zebrafish mypbc3-knockout model. These knockout zebrafish displayed significant morphological heart alterations related to a significant decrease in ventricular and atrial diameters at systolic and diastolic states at the larval stages. Immunofluorescence staining revealed significant hyperplasia in the mutant's total cardiac and ventricular cardiomyocytes. Although cardiac contractility was similar to the wild-type control, the ejection fraction was significantly increased in the mypbc3 mutants. At later stages of larval development, the mutants demonstrated an early cardiac phenotype of myocardium remodeling, concurrent cardiomyocyte hyperplasia, and increased ejection fraction as critical processes in HCM initiation to counteract the increased ventricular myocardial wall stress. The examination of zebrafish adults showed a thickened ventricular cardiac wall with reduced heart rate, swimming speed, and endurance ability in both the mypbc3 heterozygous and homozygous groups. Furthermore, heart transcriptome profiling showed a significant downregulation of the actin-filament-based process, indicating an impaired actin cytoskeleton organization as the main dysregulating factor associated with the early ventricular cardiac hypertrophy in the zebrafish mypbc3 HCM model.
Related Concept Videos
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