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Published on: August 1, 2016
Essential light chain S195 phosphorylation is required for cardiac adaptation under physical stress
Lisa-Mareike Scheid1, Matias Mosqueira1, Selina Hein2
1Medical Biophysics Unit, Institute of Physiology and Pathophysiology, University of Heidelberg, 69120 Heidelberg, Germany.
Insights
Phosphorylation of essential myosin light chain (ELC) at S195 is crucial for heart adaptation to physical stress. Impaired ELC phosphorylation in zebrafish leads to cardiomyopathy and heart failure.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Zebrafish Models
Background:
- Sarcomere regulatory proteins are vital for cardiac function; mutations cause cardiomyopathy.
- Essential myosin light chain (ELC) mutations are linked to diverse cardiomyopathy phenotypes and sudden death.
- The role of ELC phosphorylation in cardiomyopathy pathogenesis is poorly understood.
Purpose of the Study:
- Investigate the function of the conserved S195 phosphorylation site of ELC.
- Determine how ELC S195 phosphorylation regulates cardiac contractile function in normal physiology and disease.
- Elucidate the mechanisms underlying ELC-linked cardiomyopathy using a zebrafish model.
Main Methods:
- Utilized heterozygous adult zebrafish (lazy susan, laz(m647)) model.
- Performed echocardiography to assess cardiac function.
- Induced physical stress to evaluate heart response.
- Conducted in vitro motility assays with native myosin.
Main Results:
- Heterozygous mutants showed systolic dysfunction, which worsened under physical stress, leading to heart failure.
- ELC phosphorylation at S195 is critical for adapting cardiac function to physical stress.
- Loss of S195 phosphorylation impairs ELC phosphorylation, alters acto-myosin dynamics, reduces force generation, and causes organ dysfunction.
Conclusions:
- ELC S195 phosphorylation is essential for cardiac adaptation to augmented physical stress.
- Novel mechanistic insights into ELC-linked cardiomyopathy pathogenesis were provided.
- Zebrafish models are valuable for studying cardiac regulatory protein function and disease.
Aims:
Regulatory proteins of the sarcomere are pivotal for normal heart function and when affected by mutations are frequently causing cardiomyopathy. The exact function of these regulatory proteins and how mutations in these translate into distinct cardiomyopathy phenotypes remains poorly understood. Mutations in the essential myosin light chain (ELC) are linked to human cardiomyopathy characterized by a marked variability in disease phenotypes and high incidences of sudden death. Here we studied the role of the highly conserved S195 phosphorylation site of ELC using heterozygous adult zebrafish lazy susan (laz(m647)) in regulating contractile function in normal physiology and disease.
Methods And Results:
Echocardiography revealed signs of systolic dysfunction in otherwise phenotypically unremarkable heterozygote mutants. However, after physical stress, heart function of laz heterozygous zebrafish severely deteriorated causing heart failure and sudden death. Mechanistically, we show that upon physical stress, ELCs become phosphorylated and lack of S195 dominant-negatively impairs ELC phosphorylation. In vitro motility analysis with native myosin from adult heterozygous hearts demonstrates that S195 loss, specifically following physical stress, results in altered acto-myosin sliding velocities and myosin binding cooperativity, causing reduced force generation and organ dysfunction.
Conclusion:
Using adult heterozygous zebrafish, we show that ELC S195 phosphorylation is pivotal for adaptation of cardiac function to augmented physical stress and we provide novel mechanistic insights into the pathogenesis of ELC-linked cardiomyopathy.
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