Dependence of myosin filament structure on intracellular calcium concentration in skeletal muscle

Author:

Caremani Marco1ORCID,Fusi Luca23ORCID,Reconditi Massimo14ORCID,Piazzesi Gabriella1ORCID,Narayanan Theyencheri5ORCID,Irving Malcolm2ORCID,Lombardi Vincenzo1ORCID,Linari Marco14ORCID,Brunello Elisabetta2ORCID

Affiliation:

1. University of Florence 1 PhysioLab, , Florence, Italy

2. Randall Centre for Cell and Molecular Biophysics and British Heart Foundation Centre of Research Excellence, King’s College London 2 , London, UK

3. Centre for Human and Applied Physiological Sciences, King’s College London 3 , London, UK

4. Consorzio Nazionale Interuniversitario per le Scienze Fisiche della Materia 4 , Florence, Italy

5. European Synchrotron Radiation Facility 5 , Grenoble, France

Abstract

Contraction of skeletal muscle is triggered by an increase in intracellular calcium concentration that relieves the structural block on actin-binding sites in resting muscle, potentially allowing myosin motors to bind and generate force. However, most myosin motors are not available for actin binding because they are stabilized in folded helical tracks on the surface of myosin-containing thick filaments. High-force contraction depends on the release of the folded motors, which can be triggered by stress in the thick filament backbone, but additional mechanisms may link the activation of the thick filaments to that of the thin filaments or to intracellular calcium concentration. Here, we used x-ray diffraction in combination with temperature-jump activation to determine the steady-state calcium dependence of thick filament structure and myosin motor conformation in near-physiological conditions. We found that x-ray signals associated with the perpendicular motors characteristic of isometric force generation had almost the same calcium sensitivity as force, but x-ray signals associated with perturbations in the folded myosin helix had a much higher calcium sensitivity. Moreover, a new population of myosin motors with a longer axial periodicity became prominent at low levels of calcium activation and may represent an intermediate regulatory state of the myosin motors in the physiological pathway of filament activation.

Funder

Fondo per gli Investimenti della Ricerca di Base

Ministero dell’Istruzione, dell’Università e della Ricerca

Fondazione Telethon

Fondazione Cassa di Risparmio di Firenze

Medical Research Council

Environmental Studies Research Funds

Università degli Studi di Firenze

Wellcome Trust

Royal Society

British Heart Foundation

Publisher

Rockefeller University Press

Subject

Physiology

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