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The HCM-causing Y235S cMyBPC mutation accelerates contractile function by altering C1 domain structure.
- Source :
-
Biochimica et biophysica acta. Molecular basis of disease [Biochim Biophys Acta Mol Basis Dis] 2019 Mar 01; Vol. 1865 (3), pp. 661-677. Date of Electronic Publication: 2019 Jan 03. - Publication Year :
- 2019
-
Abstract
- Mutations in cardiac myosin binding protein C (cMyBPC) are a major cause of hypertrophic cardiomyopathy (HCM). In particular, a single amino acid substitution of tyrosine to serine at residue 237 in humans (residue 235 in mice) has been linked to HCM with strong disease association. Although cMyBPC truncations, deletions and insertions, and frame shift mutations have been studied, relatively little is known about the functional consequences of missense mutations in cMyBPC. In this study, we characterized the functional and structural effects of the HCM-causing Y235S mutation by performing mechanical experiments and molecular dynamics simulations (MDS). cMyBPC null mouse myocardium was virally transfected with wild-type (WT) or Y235S cMyBPC (KO <superscript>Y235S</superscript> ). We found that Y235S cMyBPC was properly expressed and incorporated into the cardiac sarcomere, suggesting that the mechanism of disease of the Y235S mutation is not haploinsufficiency or poison peptides. Mechanical experiments in detergent-skinned myocardium isolated from KO <superscript>Y235S</superscript> hearts revealed hypercontractile behavior compared to KO <superscript>WT</superscript> hearts, evidenced by accelerated cross-bridge kinetics and increased Ca <superscript>2+</superscript> sensitivity of force generation. In addition, MDS revealed that the Y235S mutation causes alterations in important intramolecular interactions, surface conformations, and electrostatic potential of the C1 domain of cMyBPC. Our combined in vitro and in silico data suggest that the Y235S mutation directly disrupts internal and surface properties of the C1 domain of cMyBPC, which potentially alters its ligand-binding interactions. These molecular changes may underlie the mechanism for hypercontractile cross-bridge behavior, which ultimately results in the development of cardiac hypertrophy and in vivo cardiac dysfunction.<br /> (Copyright © 2019 Elsevier B.V. All rights reserved.)
- Subjects :
- Amino Acid Sequence
Amino Acid Substitution
Animals
Cardiomyopathy, Hypertrophic metabolism
Carrier Proteins physiology
Male
Mice
Mice, 129 Strain
Mice, Knockout
Mutant Proteins physiology
Myocardium metabolism
Protein Domains genetics
Sarcomeres genetics
Sarcomeres metabolism
Serine genetics
Tyrosine genetics
Cardiomyopathy, Hypertrophic genetics
Carrier Proteins chemistry
Carrier Proteins genetics
Mutation, Missense physiology
Myocardial Contraction genetics
Subjects
Details
- Language :
- English
- ISSN :
- 1879-260X
- Volume :
- 1865
- Issue :
- 3
- Database :
- MEDLINE
- Journal :
- Biochimica et biophysica acta. Molecular basis of disease
- Publication Type :
- Academic Journal
- Accession number :
- 30611859
- Full Text :
- https://doi.org/10.1016/j.bbadis.2019.01.007