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Knockdown of fast skeletal myosin-binding protein C in zebrafish results in a severe skeletal myopathy

Myosin-binding protein C (MyBPC) in the muscle sarcomere interacts with several contractile and structural proteins. Mutations in the cardiac isoform (MyBPC-3) in humans, or animal knockout, are associated with cardiomyopathy. Function of the fast skeletal isoform (MyBPC-2) in living muscles is less...

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Autores principales: Li, Mei, Andersson-Lendahl, Monika, Sejersen, Thomas, Arner, Anders
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4810067/
https://www.ncbi.nlm.nih.gov/pubmed/27022191
http://dx.doi.org/10.1085/jgp.201511452
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author Li, Mei
Andersson-Lendahl, Monika
Sejersen, Thomas
Arner, Anders
author_facet Li, Mei
Andersson-Lendahl, Monika
Sejersen, Thomas
Arner, Anders
author_sort Li, Mei
collection PubMed
description Myosin-binding protein C (MyBPC) in the muscle sarcomere interacts with several contractile and structural proteins. Mutations in the cardiac isoform (MyBPC-3) in humans, or animal knockout, are associated with cardiomyopathy. Function of the fast skeletal isoform (MyBPC-2) in living muscles is less understood. This question was addressed using zebrafish models, combining gene expression data with functional analysis of contractility and small-angle x-ray diffraction measurements of filament structure. Fast skeletal MyBPC-2B, the major isoform, was knocked down by >50% using morpholino antisense nucleotides. These morphants exhibited a skeletal myopathy with elevated apoptosis and up-regulation of factors associated with muscle protein degradation. Morphant muscles had shorter sarcomeres with a broader length distribution, shorter actin filaments, and a wider interfilament spacing compared with controls, suggesting that fast skeletal MyBPC has a role in sarcomere assembly. Active force was reduced more than expected from the decrease in muscle size, suggesting that MyBPC-2 is required for optimal force generation at the cross-bridge level. The maximal shortening velocity was significantly increased in the MyBPC-2 morphants, but when related to the sarcomere length, the difference was smaller, reflecting that the decrease in MyBPC-2B content and the resulting myopathy were accompanied by only a minor influence on filament shortening kinetics. In the controls, equatorial patterns from small-angle x-ray scattering revealed that comparatively few cross-bridges are attached (as evaluated by the intensity ratio of the 11 and 10 equatorial reflections) during active contraction. X-ray scattering data from relaxed and contracting morphants were not significantly different from those in controls. However, the increase in the 11:10 intensity ratio in rigor was lower compared with that in controls, possibly reflecting effects of MyBPC on the cross-bridge interactions. In conclusion, lack of MyBPC-2 results in a severe skeletal myopathy with structural changes and muscle weakness.
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spelling pubmed-48100672016-10-01 Knockdown of fast skeletal myosin-binding protein C in zebrafish results in a severe skeletal myopathy Li, Mei Andersson-Lendahl, Monika Sejersen, Thomas Arner, Anders J Gen Physiol Research Articles Myosin-binding protein C (MyBPC) in the muscle sarcomere interacts with several contractile and structural proteins. Mutations in the cardiac isoform (MyBPC-3) in humans, or animal knockout, are associated with cardiomyopathy. Function of the fast skeletal isoform (MyBPC-2) in living muscles is less understood. This question was addressed using zebrafish models, combining gene expression data with functional analysis of contractility and small-angle x-ray diffraction measurements of filament structure. Fast skeletal MyBPC-2B, the major isoform, was knocked down by >50% using morpholino antisense nucleotides. These morphants exhibited a skeletal myopathy with elevated apoptosis and up-regulation of factors associated with muscle protein degradation. Morphant muscles had shorter sarcomeres with a broader length distribution, shorter actin filaments, and a wider interfilament spacing compared with controls, suggesting that fast skeletal MyBPC has a role in sarcomere assembly. Active force was reduced more than expected from the decrease in muscle size, suggesting that MyBPC-2 is required for optimal force generation at the cross-bridge level. The maximal shortening velocity was significantly increased in the MyBPC-2 morphants, but when related to the sarcomere length, the difference was smaller, reflecting that the decrease in MyBPC-2B content and the resulting myopathy were accompanied by only a minor influence on filament shortening kinetics. In the controls, equatorial patterns from small-angle x-ray scattering revealed that comparatively few cross-bridges are attached (as evaluated by the intensity ratio of the 11 and 10 equatorial reflections) during active contraction. X-ray scattering data from relaxed and contracting morphants were not significantly different from those in controls. However, the increase in the 11:10 intensity ratio in rigor was lower compared with that in controls, possibly reflecting effects of MyBPC on the cross-bridge interactions. In conclusion, lack of MyBPC-2 results in a severe skeletal myopathy with structural changes and muscle weakness. The Rockefeller University Press 2016-04 /pmc/articles/PMC4810067/ /pubmed/27022191 http://dx.doi.org/10.1085/jgp.201511452 Text en © 2016 Li et al. This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 3.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/3.0/).
spellingShingle Research Articles
Li, Mei
Andersson-Lendahl, Monika
Sejersen, Thomas
Arner, Anders
Knockdown of fast skeletal myosin-binding protein C in zebrafish results in a severe skeletal myopathy
title Knockdown of fast skeletal myosin-binding protein C in zebrafish results in a severe skeletal myopathy
title_full Knockdown of fast skeletal myosin-binding protein C in zebrafish results in a severe skeletal myopathy
title_fullStr Knockdown of fast skeletal myosin-binding protein C in zebrafish results in a severe skeletal myopathy
title_full_unstemmed Knockdown of fast skeletal myosin-binding protein C in zebrafish results in a severe skeletal myopathy
title_short Knockdown of fast skeletal myosin-binding protein C in zebrafish results in a severe skeletal myopathy
title_sort knockdown of fast skeletal myosin-binding protein c in zebrafish results in a severe skeletal myopathy
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4810067/
https://www.ncbi.nlm.nih.gov/pubmed/27022191
http://dx.doi.org/10.1085/jgp.201511452
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