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Low temperature traps myosin motors of mammalian muscle in a refractory state that prevents activation

Myosin motors in the thick filament of resting striated (skeletal and cardiac) muscle are trapped in an OFF state, in which the motors are packed in helical tracks on the filament surface, inhibiting their interactions with actin and utilization of ATP. To investigate the structural changes induced...

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Autores principales: Caremani, Marco, Brunello, Elisabetta, Linari, Marco, Fusi, Luca, Irving, Thomas C., Gore, David, Piazzesi, Gabriella, Irving, Malcolm, Lombardi, Vincenzo, Reconditi, Massimo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Rockefeller University Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6829559/
https://www.ncbi.nlm.nih.gov/pubmed/31554652
http://dx.doi.org/10.1085/jgp.201912424
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author Caremani, Marco
Brunello, Elisabetta
Linari, Marco
Fusi, Luca
Irving, Thomas C.
Gore, David
Piazzesi, Gabriella
Irving, Malcolm
Lombardi, Vincenzo
Reconditi, Massimo
author_facet Caremani, Marco
Brunello, Elisabetta
Linari, Marco
Fusi, Luca
Irving, Thomas C.
Gore, David
Piazzesi, Gabriella
Irving, Malcolm
Lombardi, Vincenzo
Reconditi, Massimo
author_sort Caremani, Marco
collection PubMed
description Myosin motors in the thick filament of resting striated (skeletal and cardiac) muscle are trapped in an OFF state, in which the motors are packed in helical tracks on the filament surface, inhibiting their interactions with actin and utilization of ATP. To investigate the structural changes induced in the thick filament of mammalian skeletal muscle by changes in temperature, we collected x-ray diffraction patterns from the fast skeletal muscle extensor digitorum longus of the mouse in the temperature range from near physiological (35°C) to 10°C, in which the maximal isometric force (T(0)) shows a threefold decrease. In resting muscle, x-ray reflections signaling the OFF state of the thick filament indicate that cooling produces a progressive disruption of the OFF state with motors moving away from the ordered helical tracks on the surface of the thick filament. We find that the number of myosin motors in the OFF state at 10°C is half of that at 35°C. At T(0), changes in the x-ray signals that report the fraction and conformation of actin-attached motors can be explained if the threefold decrease in force associated with lowering temperature is due not only to a decrease in the force-generating transition in the actin-attached motors but also to a twofold decrease in the number of such motors. Thus, lowering the temperature reduces to the same extent the fraction of motors in the OFF state at rest and the fraction of motors attached to actin at T(0), suggesting that motors that leave the OFF state accumulate in a disordered refractory state that makes them unavailable for interaction with actin upon stimulation. This regulatory effect of temperature on the thick filament of mammalian skeletal muscle could represent an energetically convenient mechanism for hibernating animals.
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spelling pubmed-68295592019-11-06 Low temperature traps myosin motors of mammalian muscle in a refractory state that prevents activation Caremani, Marco Brunello, Elisabetta Linari, Marco Fusi, Luca Irving, Thomas C. Gore, David Piazzesi, Gabriella Irving, Malcolm Lombardi, Vincenzo Reconditi, Massimo J Gen Physiol Research Articles Myosin motors in the thick filament of resting striated (skeletal and cardiac) muscle are trapped in an OFF state, in which the motors are packed in helical tracks on the filament surface, inhibiting their interactions with actin and utilization of ATP. To investigate the structural changes induced in the thick filament of mammalian skeletal muscle by changes in temperature, we collected x-ray diffraction patterns from the fast skeletal muscle extensor digitorum longus of the mouse in the temperature range from near physiological (35°C) to 10°C, in which the maximal isometric force (T(0)) shows a threefold decrease. In resting muscle, x-ray reflections signaling the OFF state of the thick filament indicate that cooling produces a progressive disruption of the OFF state with motors moving away from the ordered helical tracks on the surface of the thick filament. We find that the number of myosin motors in the OFF state at 10°C is half of that at 35°C. At T(0), changes in the x-ray signals that report the fraction and conformation of actin-attached motors can be explained if the threefold decrease in force associated with lowering temperature is due not only to a decrease in the force-generating transition in the actin-attached motors but also to a twofold decrease in the number of such motors. Thus, lowering the temperature reduces to the same extent the fraction of motors in the OFF state at rest and the fraction of motors attached to actin at T(0), suggesting that motors that leave the OFF state accumulate in a disordered refractory state that makes them unavailable for interaction with actin upon stimulation. This regulatory effect of temperature on the thick filament of mammalian skeletal muscle could represent an energetically convenient mechanism for hibernating animals. Rockefeller University Press 2019-11-04 2019-09-25 /pmc/articles/PMC6829559/ /pubmed/31554652 http://dx.doi.org/10.1085/jgp.201912424 Text en © 2019 Caremani et al. https://creativecommons.org/licenses/by/4.0/This article is available under a Creative Commons License (Attribution 4.0 International, as described at https://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Articles
Caremani, Marco
Brunello, Elisabetta
Linari, Marco
Fusi, Luca
Irving, Thomas C.
Gore, David
Piazzesi, Gabriella
Irving, Malcolm
Lombardi, Vincenzo
Reconditi, Massimo
Low temperature traps myosin motors of mammalian muscle in a refractory state that prevents activation
title Low temperature traps myosin motors of mammalian muscle in a refractory state that prevents activation
title_full Low temperature traps myosin motors of mammalian muscle in a refractory state that prevents activation
title_fullStr Low temperature traps myosin motors of mammalian muscle in a refractory state that prevents activation
title_full_unstemmed Low temperature traps myosin motors of mammalian muscle in a refractory state that prevents activation
title_short Low temperature traps myosin motors of mammalian muscle in a refractory state that prevents activation
title_sort low temperature traps myosin motors of mammalian muscle in a refractory state that prevents activation
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6829559/
https://www.ncbi.nlm.nih.gov/pubmed/31554652
http://dx.doi.org/10.1085/jgp.201912424
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