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Nonlinear Force-Length Relationship in the ADP-Induced Contraction of Skeletal Myofibrils

The regulatory mechanism of sarcomeric activity has not been fully clarified yet because of its complex and cooperative nature, which involves both Ca(2+) and cross-bridge binding to the thin filament. To reveal the mechanism of regulation mediated by the cross-bridges, separately from the effect of...

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Autores principales: Shimamoto, Yuta, Kono, Fumiaki, Suzuki, Madoka, Ishiwata, Shin'ichi
Formato: Texto
Lenguaje:English
Publicado: The Biophysical Society 2007
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2098727/
https://www.ncbi.nlm.nih.gov/pubmed/17890380
http://dx.doi.org/10.1529/biophysj.107.110650
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author Shimamoto, Yuta
Kono, Fumiaki
Suzuki, Madoka
Ishiwata, Shin'ichi
author_facet Shimamoto, Yuta
Kono, Fumiaki
Suzuki, Madoka
Ishiwata, Shin'ichi
author_sort Shimamoto, Yuta
collection PubMed
description The regulatory mechanism of sarcomeric activity has not been fully clarified yet because of its complex and cooperative nature, which involves both Ca(2+) and cross-bridge binding to the thin filament. To reveal the mechanism of regulation mediated by the cross-bridges, separately from the effect of Ca(2+), we investigated the force-sarcomere length (SL) relationship in rabbit skeletal myofibrils (a single myofibril or a thin bundle) at SL > 2.2 μm in the absence of Ca(2+) at various levels of activation by exogenous MgADP (4–20 mM) in the presence of 1 mM MgATP. The individual SLs were measured by phase-contrast microscopy to confirm the homogeneity of the striation pattern of sarcomeres during activation. We found that at partial activation with 4–8 mM MgADP, the developed force nonlinearly depended on the length of overlap between the thick and the thin filaments; that is, contrary to the maximal activation, the maximal active force was generated at shorter overlap. Besides, the active force became larger, whereas this nonlinearity tended to weaken, with either an increase in [MgADP] or the lateral osmotic compression of the myofilament lattice induced by the addition of a macromolecular compound, dextran T-500. The model analysis, which takes into account the [MgADP]- and the lattice-spacing-dependent probability of cross-bridge formation, was successfully applied to account for the force-SL relationship observed at partial activation. These results strongly suggest that the cross-bridge works as a cooperative activator, the function of which is highly sensitive to as little as ≤1 nm changes in the lattice spacing.
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spelling pubmed-20987272008-07-22 Nonlinear Force-Length Relationship in the ADP-Induced Contraction of Skeletal Myofibrils Shimamoto, Yuta Kono, Fumiaki Suzuki, Madoka Ishiwata, Shin'ichi Biophys J Muscle and Contractility The regulatory mechanism of sarcomeric activity has not been fully clarified yet because of its complex and cooperative nature, which involves both Ca(2+) and cross-bridge binding to the thin filament. To reveal the mechanism of regulation mediated by the cross-bridges, separately from the effect of Ca(2+), we investigated the force-sarcomere length (SL) relationship in rabbit skeletal myofibrils (a single myofibril or a thin bundle) at SL > 2.2 μm in the absence of Ca(2+) at various levels of activation by exogenous MgADP (4–20 mM) in the presence of 1 mM MgATP. The individual SLs were measured by phase-contrast microscopy to confirm the homogeneity of the striation pattern of sarcomeres during activation. We found that at partial activation with 4–8 mM MgADP, the developed force nonlinearly depended on the length of overlap between the thick and the thin filaments; that is, contrary to the maximal activation, the maximal active force was generated at shorter overlap. Besides, the active force became larger, whereas this nonlinearity tended to weaken, with either an increase in [MgADP] or the lateral osmotic compression of the myofilament lattice induced by the addition of a macromolecular compound, dextran T-500. The model analysis, which takes into account the [MgADP]- and the lattice-spacing-dependent probability of cross-bridge formation, was successfully applied to account for the force-SL relationship observed at partial activation. These results strongly suggest that the cross-bridge works as a cooperative activator, the function of which is highly sensitive to as little as ≤1 nm changes in the lattice spacing. The Biophysical Society 2007-12-15 2007-09-21 /pmc/articles/PMC2098727/ /pubmed/17890380 http://dx.doi.org/10.1529/biophysj.107.110650 Text en Copyright © 2007, Biophysical Society This is an Open Access article distributed under the terms of the Creative Commons-Attribution Noncommercial License (http://creativecommons.org/licenses/by-nc/2.0/), which permits unrestricted noncommercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Muscle and Contractility
Shimamoto, Yuta
Kono, Fumiaki
Suzuki, Madoka
Ishiwata, Shin'ichi
Nonlinear Force-Length Relationship in the ADP-Induced Contraction of Skeletal Myofibrils
title Nonlinear Force-Length Relationship in the ADP-Induced Contraction of Skeletal Myofibrils
title_full Nonlinear Force-Length Relationship in the ADP-Induced Contraction of Skeletal Myofibrils
title_fullStr Nonlinear Force-Length Relationship in the ADP-Induced Contraction of Skeletal Myofibrils
title_full_unstemmed Nonlinear Force-Length Relationship in the ADP-Induced Contraction of Skeletal Myofibrils
title_short Nonlinear Force-Length Relationship in the ADP-Induced Contraction of Skeletal Myofibrils
title_sort nonlinear force-length relationship in the adp-induced contraction of skeletal myofibrils
topic Muscle and Contractility
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2098727/
https://www.ncbi.nlm.nih.gov/pubmed/17890380
http://dx.doi.org/10.1529/biophysj.107.110650
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