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June 9, 2023Frontiers in Physiology1 citationsOpen Access

Dystrophic cardiomyopathy: role of the cardiac myofilaments

TGThomas G. GeorgeLHLaurin M. HanftMKMaike Krenz

Key Result

In a mouse model of Duchenne muscular dystrophy, mavacamten decreased maximal tension by approximately 45% and normalized the augmented sarcomere length dependence of peak power in permeabilized cardiac myocytes.

Structured PICO

Does mavacamten improve contractile properties and normalize sarcomere length dependence of power output in permeabilized cardiac myocytes from a mouse model of Duchenne muscular dystrophy?

P
Population
Dmd mdx-4cv mouse model of Duchenne muscular dystrophy (ages 4-12 months) and wild-type (WT) littermate controls. Isolated permeabilized cardiomyocytes.
I
Intervention
Mavacamten 0.5 µM added to pCa solutions
C
Comparator
Wild-type (WT) littermate cardiac myocytes, and Dmd mdx-4cv myocytes without mavacamten
O
Outcome
Cardiac myofilament contractile properties including maximal tension, rate of force development (ktr), and sarcomere length dependence of peak power outputsurrogate

Mavacamten reduces contractility and normalizes sarcomere length dependence of power output in dystrophin-deficient cardiac myocytes, suggesting potential therapeutic benefit for dystrophic cardiomyopathy.

Main Result

Absolute Event Rate: 26% vs 48%

Limitations

  • In vitro study using permeabilized myocytes, which may not fully reflect in vivo physiology
  • Differences in species, mouse strains, age, disease severity, and muscle preparations may affect generalizability
  • Requires systematic delineation of how mavacamten modulates function across different levels of myocardial organization in DMD-associated cardiomyopathy

Abstract

Dystrophic cardiomyopathy arises from mutations in the dystrophin gene. Dystrophin forms part of the dystrophin glycoprotein complex and is postulated to act as a membrane stabilizer, protecting the sarcolemma from contraction-induced damage. Duchenne muscular dystrophy (DMD) is the most severe dystrophinopathy, caused by a total absence of dystrophin. Patients with DMD present with progressive skeletal muscle weakness and, because of treatment advances, a cardiac component of the disease (i.e., dystrophic cardiomyopathy) has been unmasked later in disease progression. The role that myofilaments play in dystrophic cardiomyopathy is largely unknown and, as such, this study aimed to address cardiac myofilament function in a mouse model of muscular dystrophy. To assess the effects of DMD on myofilament function, isolated permeabilized cardiomyocytes of wild-type (WT) littermates and Dmd mdx-4cv mice were attached between a force transducer and motor and subjected to contractile assays. Maximal tension and rates of force development (indexed by the rate constant, k tr ) were similar between WT and Dmd mdx-4cv cardiac myocyte preparations. Interestingly, Dmd mdx-4cv cardiac myocytes exhibited greater sarcomere length dependence of peak power output compared to WT myocyte preparations. These results suggest dystrophin mitigates length dependence of activation and, in the absence of dystrophin, augmented sarcomere length dependence of myocyte contractility may accelerate ventricular myocyte contraction-induced damage and contribute to dystrophic cardiomyopathy. Next, we assessed if mavacamten, a small molecule modulator of thick filament activation, would mitigate contractile properties observed in Dmd mdx-4cv permeabilized cardiac myocyte preparations. Mavacamten decreased maximal tension and k tr in both WT and Dmd mdx-4cv cardiac myocytes, while also normalizing the length dependence of peak power between WT and Dmd mdx-4cv cardiac myocyte preparations. These results highlight potential benefits of mavacamten (i.e., reduced contractility while maintaining exquisite sarcomere length dependence of power output) as a treatment for dystrophic cardiomyopathy associated with DMD.

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Cite This Study

George et al. (2023) studied Dystrophic cardiomyopathy (Duchenne muscular dystrophy) (n=15). Mavacamten vs. Baseline (no mavacamten) was evaluated on Maximal tension in Dmd mdx-4cv permeabilized cardiac myocytes (kN·m-2). In a mouse model of Duchenne muscular dystrophy, mavacamten decreased maximal tension by approximately 45% and normalized the augmented sarcomere length dependence of peak power in permeabilized cardiac myocytes.

synapsesocial.com/papers/6a0f5a827b46c501a19bcb40https://doi.org/10.3389/fphys.2023.1207658
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1The heart in Duchenne muscular dystrophy: early detection of contractile performance alteration2012 · 17 citations
  2. 2Preserved Left Ventricular Function despite Myocardial Fibrosis and Myopathy in the Dystrophin‐Deficient D2.B10‐Dmd<i><sup>mdx</sup></i>/J Mouse2022 · 7 citations
  3. 3Emergent Dilated Cardiomyopathy Caused by Targeted Repair of Dystrophic Skeletal Muscle2008 · 116 citations
  4. 4Abstract Wed127: Elucidation of the mechanism of DMD cardiomyopathy with the use of a FRET-based sarcomere activation biosensor2025
  5. 5Multi-Compartment, Early Disruption of cGMP and cAMP Signalling in Cardiac Myocytes from the mdx Model of Duchenne Muscular Dystrophy2020 · 15 citations