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The W792R HCM missense mutation in the C6 domain of cardiac myosin binding protein-C increases contractility in neonatal mouse myocardium.

Authors :
Mertens J
De Lange WJ
Farrell ET
Harbaugh EC
Gauchan A
Fitzsimons DP
Moss RL
Ralphe JC
Source :
Journal of molecular and cellular cardiology [J Mol Cell Cardiol] 2024 Oct; Vol. 195, pp. 14-23. Date of Electronic Publication: 2024 Jul 25.
Publication Year :
2024

Abstract

Missense mutations in cardiac myosin binding protein C (cMyBP-C) are known to cause hypertrophic cardiomyopathy (HCM). The W792R mutation in the C6 domain of cMyBP-C causes severe, early onset HCM in humans, yet its impact on the function of cMyBP-C and the mechanism through which it causes disease remain unknown. To fully characterize the effect of the W792R mutation on cardiac morphology and function in vivo, we generated a murine knock-in model. We crossed heterozygous W792R <superscript>WR</superscript> mice to produce homozygous mutant W792R <superscript>RR</superscript> , heterozygous W792R <superscript>WR</superscript> <subscript>,</subscript> and control W792R <superscript>WW</superscript> mice. W792R <superscript>RR</superscript> mice present with cardiac hypertrophy, myofibrillar disarray and fibrosis by postnatal day 10 (PND10), and do not survive past PND21. Full-length cMyBP-C is present at similar levels in W792R <superscript>WW</superscript> , W792R <superscript>WR</superscript> and W792R <superscript>RR</superscript> mice and is properly incorporated into the sarcomere. Heterozygous W792R <superscript>WR</superscript> mice displayed normal heart morphology and contractility. Permeabilized myocardium from PND10 W792R <superscript>RR</superscript> mice showed increased Ca <superscript>2+</superscript> sensitivity, accelerated cross-bridge cycling kinetics, decreased cooperativity in the activation of force, and increased expression of hypertrophy-related genes. In silico modeling suggests that the W792R mutation destabilizes the fold of the C6 domain and increases torsion in the C5-C7 region, possibly impacting regulatory interactions of cMyBP-C with myosin and actin. Based on the data presented here, we propose a model in which mutant W792R cMyBP-C preferentially forms Ca <superscript>2+</superscript> sensitizing interactions with actin, rather than inhibitory interactions with myosin. The W792R-cMyBP-C mouse model provides mechanistic insights into the pathology of this mutation and may provide a mechanism by which other central domain missense mutations in cMyBP-C may alter contractility, leading to HCM.<br /> (Copyright © 2024. Published by Elsevier Ltd.)

Details

Language :
English
ISSN :
1095-8584
Volume :
195
Database :
MEDLINE
Journal :
Journal of molecular and cellular cardiology
Publication Type :
Academic Journal
Accession number :
39059462
Full Text :
https://doi.org/10.1016/j.yjmcc.2024.07.007