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February 6, 2023Circulation Research37 citationsOpen Access

Slower Calcium Handling Balances Faster Cross-Bridge Cycling in Human MYBPC3 HCM

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JPJosè Manuel PionerGVGiulia VitaleSSSonette Steczina

Key Result

The MYBPC3:c772G>A mutation impairs sarcomere energetics and accelerates cross-bridge cycling, which is counterbalanced by slower calcium transients that preserve twitch duration.

Study Design

Type

Observational (n=93)

PICO

P
Population
MYBPC3-associated hypertrophic cardiomyopathy (n=93)
I
Intervention / Comparator
MYBPC3:c772G>A variant vs Non-failing non-hypertrophic surgical patients and healthy donors
O
Primary Outcome
Functional perturbations in sarcomere energetics, cross-bridge cycling, and electrophysiology

Abstract

Background: The pathogenesis of MYBPC3 -associated hypertrophic cardiomyopathy (HCM) is still unresolved. In our HCM patient cohort, a large and well-characterized population carrying the MYBPC3 :c772G>A variant (p.Glu258Lys, E258K) provides the unique opportunity to study the basic mechanisms of MYBPC3 -HCM with a comprehensive translational approach. Methods: We collected clinical and genetic data from 93 HCM patients carrying the MYBPC3 :c772G>A variant. Functional perturbations were investigated using different biophysical techniques in left ventricular samples from 4 patients who underwent myectomy for refractory outflow obstruction, compared with samples from non-failing non-hypertrophic surgical patients and healthy donors. Human induced pluripotent stem cell (hiPSC)-derived cardiomyocytes and engineered heart tissues (EHTs) were also investigated. Results: Haplotype analysis revealed MYBPC3 :c772G>A as a founder mutation in Tuscany. In ventricular myocardium, the mutation leads to reduced cMyBP-C (cardiac myosin binding protein-C) expression, supporting haploinsufficiency as the main primary disease mechanism. Mechanical studies in single myofibrils and permeabilized muscle strips highlighted faster cross-bridge cycling, and higher energy cost of tension generation. A novel approach based on tissue clearing and advanced optical microscopy supported the idea that the sarcomere energetics dysfunction is intrinsically related with the reduction in cMyBP-C. Studies in single cardiomyocytes (native and hiPSC-derived), intact trabeculae and hiPSC-EHTs revealed prolonged action potentials, slower Ca 2+ transients and preserved twitch duration, suggesting that the slower excitation-contraction coupling counterbalanced the faster sarcomere kinetics. This conclusion was strengthened by in silico simulations. Conclusions: HCM-related MYBPC3 :c772G>A mutation invariably impairs sarcomere energetics and cross-bridge cycling. Compensatory electrophysiological changes (eg, reduced potassium channel expression) appear to preserve twitch contraction parameters, but may expose patients to greater arrhythmic propensity and disease progression. Therapeutic approaches correcting the primary sarcomeric defects may prevent secondary cardiomyocyte remodeling.

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Cite This Study

Pioner et al. (2023) conducted an observational in MYBPC3-associated hypertrophic cardiomyopathy (n=93). MYBPC3:c772G>A variant vs. Non-failing non-hypertrophic surgical patients and healthy donors was evaluated on Functional perturbations in sarcomere energetics, cross-bridge cycling, and electrophysiology. The MYBPC3:c772G>A mutation impairs sarcomere energetics and accelerates cross-bridge cycling, which is counterbalanced by slower calcium transients that preserve twitch duration.

synapsesocial.com/papers/6a10d877ed67694fb09f81dahttps://doi.org/10.1161/circresaha.122.321956
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Also Consider

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

  1. 1PO92 Expanding the genetic landscape of hypertrophic cardiomyopathy: patient-derived cardiomyocytes with deep intronic MYBPC3 variants recapitulate key disease features in vitro2026
  2. 2A Premature Termination Codon Mutation in MYBPC3 Causes Hypertrophic Cardiomyopathy via Chronic Activation of Nonsense-Mediated Decay2019 · 126 citations
  3. 3A novel variant in MYBPC3 causes hypertrophic cardiomyopathy by haploinsufficiency2025
  4. 4Variable cMyBP-C expression from cell to cell in a MYBPC3c.927–2 A>G hiPSC-CM model recapitulates HCM patient phenotype2026
  5. 5<i>MYBPC3</i> Mutations cause Hypertrophic Cardiomyopathy by Dysregulating Myosin: Implications for Therapy2018 · 2 citations