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Superhelical Architecture of the Myosin Filament-Linking Protein Myomesin with Unusual Elastic Properties

Active muscles generate substantial mechanical forces by the contraction/relaxation cycle, and, to maintain an ordered state, they require molecular structures of extraordinary stability. These forces are sensed and buffered by unusually long and elastic filament proteins with highly repetitive doma...

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Autores principales: Pinotsis, Nikos, Chatziefthimiou, Spyros D., Berkemeier, Felix, Beuron, Fabienne, Mavridis, Irene M., Konarev, Petr V., Svergun, Dmitri I., Morris, Edward, Rief, Matthias, Wilmanns, Matthias
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3279516/
https://www.ncbi.nlm.nih.gov/pubmed/22347812
http://dx.doi.org/10.1371/journal.pbio.1001261
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author Pinotsis, Nikos
Chatziefthimiou, Spyros D.
Berkemeier, Felix
Beuron, Fabienne
Mavridis, Irene M.
Konarev, Petr V.
Svergun, Dmitri I.
Morris, Edward
Rief, Matthias
Wilmanns, Matthias
author_facet Pinotsis, Nikos
Chatziefthimiou, Spyros D.
Berkemeier, Felix
Beuron, Fabienne
Mavridis, Irene M.
Konarev, Petr V.
Svergun, Dmitri I.
Morris, Edward
Rief, Matthias
Wilmanns, Matthias
author_sort Pinotsis, Nikos
collection PubMed
description Active muscles generate substantial mechanical forces by the contraction/relaxation cycle, and, to maintain an ordered state, they require molecular structures of extraordinary stability. These forces are sensed and buffered by unusually long and elastic filament proteins with highly repetitive domain arrays. Members of the myomesin protein family function as molecular bridges that connect major filament systems in the central M-band of muscle sarcomeres, which is a central locus of passive stress sensing. To unravel the mechanism of molecular elasticity in such filament-connecting proteins, we have determined the overall architecture of the complete C-terminal immunoglobulin domain array of myomesin by X-ray crystallography, electron microscopy, solution X-ray scattering, and atomic force microscopy. Our data reveal a dimeric tail-to-tail filament structure of about 360 Å in length, which is folded into an irregular superhelical coil arrangement of almost identical α-helix/domain modules. The myomesin filament can be stretched to about 2.5-fold its original length by reversible unfolding of these linkers, a mechanism that to our knowledge has not been observed previously. Our data explain how myomesin could act as a highly elastic ribbon to maintain the overall structural organization of the sarcomeric M-band. In general terms, our data demonstrate how repetitive domain modules such as those found in myomesin could generate highly elastic protein structures in highly organized cell systems such as muscle sarcomeres.
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spelling pubmed-32795162012-02-17 Superhelical Architecture of the Myosin Filament-Linking Protein Myomesin with Unusual Elastic Properties Pinotsis, Nikos Chatziefthimiou, Spyros D. Berkemeier, Felix Beuron, Fabienne Mavridis, Irene M. Konarev, Petr V. Svergun, Dmitri I. Morris, Edward Rief, Matthias Wilmanns, Matthias PLoS Biol Research Article Active muscles generate substantial mechanical forces by the contraction/relaxation cycle, and, to maintain an ordered state, they require molecular structures of extraordinary stability. These forces are sensed and buffered by unusually long and elastic filament proteins with highly repetitive domain arrays. Members of the myomesin protein family function as molecular bridges that connect major filament systems in the central M-band of muscle sarcomeres, which is a central locus of passive stress sensing. To unravel the mechanism of molecular elasticity in such filament-connecting proteins, we have determined the overall architecture of the complete C-terminal immunoglobulin domain array of myomesin by X-ray crystallography, electron microscopy, solution X-ray scattering, and atomic force microscopy. Our data reveal a dimeric tail-to-tail filament structure of about 360 Å in length, which is folded into an irregular superhelical coil arrangement of almost identical α-helix/domain modules. The myomesin filament can be stretched to about 2.5-fold its original length by reversible unfolding of these linkers, a mechanism that to our knowledge has not been observed previously. Our data explain how myomesin could act as a highly elastic ribbon to maintain the overall structural organization of the sarcomeric M-band. In general terms, our data demonstrate how repetitive domain modules such as those found in myomesin could generate highly elastic protein structures in highly organized cell systems such as muscle sarcomeres. Public Library of Science 2012-02-14 /pmc/articles/PMC3279516/ /pubmed/22347812 http://dx.doi.org/10.1371/journal.pbio.1001261 Text en Pinotsis et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Pinotsis, Nikos
Chatziefthimiou, Spyros D.
Berkemeier, Felix
Beuron, Fabienne
Mavridis, Irene M.
Konarev, Petr V.
Svergun, Dmitri I.
Morris, Edward
Rief, Matthias
Wilmanns, Matthias
Superhelical Architecture of the Myosin Filament-Linking Protein Myomesin with Unusual Elastic Properties
title Superhelical Architecture of the Myosin Filament-Linking Protein Myomesin with Unusual Elastic Properties
title_full Superhelical Architecture of the Myosin Filament-Linking Protein Myomesin with Unusual Elastic Properties
title_fullStr Superhelical Architecture of the Myosin Filament-Linking Protein Myomesin with Unusual Elastic Properties
title_full_unstemmed Superhelical Architecture of the Myosin Filament-Linking Protein Myomesin with Unusual Elastic Properties
title_short Superhelical Architecture of the Myosin Filament-Linking Protein Myomesin with Unusual Elastic Properties
title_sort superhelical architecture of the myosin filament-linking protein myomesin with unusual elastic properties
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3279516/
https://www.ncbi.nlm.nih.gov/pubmed/22347812
http://dx.doi.org/10.1371/journal.pbio.1001261
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