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Amino terminus of cardiac myosin binding protein-C regulates cardiac contractility. | LitMetric

Amino terminus of cardiac myosin binding protein-C regulates cardiac contractility.

J Mol Cell Cardiol

Department of Cell and Molecular Physiology, Loyola University Chicago, Maywood, IL 60153, USA; Heart, Lung and Vascular Institute, Division of Cardiovascular Health and Disease, Department of Internal Medicine, University of Cincinnati, Cincinnati, OH 45267, USA. Electronic address:

Published: July 2021

AI Article Synopsis

  • Phosphorylation of cardiac myosin binding protein-C (cMyBP-C) is crucial for regulating heart contraction, particularly via its amino terminal (N')-region, while dephosphorylation during heart injury can lead to contractile dysfunction due to cleavage of a specific region.
  • The study used a transgenic mouse model missing the C0-C1f region of cMyBP-C, which developed dilated cardiomyopathy, highlighting the significance of the N'-region in heart muscle function.
  • Experiments showed that restoring the N'-region with recombinant proteins helped regain normal actomyosin interactions and contractility, revealing insights into how myocardial injury can affect heart muscle structure and function.

Article Abstract

Phosphorylation of cardiac myosin binding protein-C (cMyBP-C) regulates cardiac contraction through modulation of actomyosin interactions mediated by the protein's amino terminal (N')-region (C0-C2 domains, 358 amino acids). On the other hand, dephosphorylation of cMyBP-C during myocardial injury results in cleavage of the 271 amino acid C0-C1f region and subsequent contractile dysfunction. Yet, our current understanding of amino terminus region of cMyBP-C in the context of regulating thin and thick filament interactions is limited. A novel cardiac-specific transgenic mouse model expressing cMyBP-C, but lacking its C0-C1f region (cMyBP-C), displayed dilated cardiomyopathy, underscoring the importance of the N'-region in cMyBP-C. Further exploring the molecular basis for this cardiomyopathy, in vitro studies revealed increased interfilament lattice spacing and rate of tension redevelopment, as well as faster actin-filament sliding velocity within the C-zone of the transgenic sarcomere. Moreover, phosphorylation of the unablated phosphoregulatory sites was increased, likely contributing to normal sarcomere morphology and myoarchitecture. These results led us to hypothesize that restoration of the N'-region of cMyBP-C would return actomyosin interaction to its steady state. Accordingly, we administered recombinant C0-C2 (rC0-C2) to permeabilized cardiomyocytes from transgenic, cMyBP-C null, and human heart failure biopsies, and we found that normal regulation of actomyosin interaction and contractility was restored. Overall, these data provide a unique picture of selective perturbations of the cardiac sarcomere that either lead to injury or adaptation to injury in the myocardium.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8217138PMC
http://dx.doi.org/10.1016/j.yjmcc.2021.03.009DOI Listing

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