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Updated: May 15, 2026

Probing Myosin Ensemble Mechanics in Actin Filament Bundles Using Optical Tweezers
Published on: May 4, 2022
Atomic model of the human cardiac muscle myosin filament
Hind A Al-Khayat1, Robert W Kensler, John M Squire
1National Heart and Lung Institute, Faculty of Medicine, Imperial College London, London W12 0NN, United Kingdom. h.al-khayat@imperial.ac.uk
Abstract:
Of all the myosin filaments in muscle, the most important in terms of human health, and so far the least studied, are those in the human heart. Here we report a 3D single-particle analysis of electron micrograph images of negatively stained myosin filaments isolated from human cardiac muscle in the normal (undiseased) relaxed state. The resulting 28-Å resolution 3D reconstruction shows axial and azimuthal (no radial) myosin head perturbations within the 429-Å axial repeat, with rotations between successive 132 Å-, 148 Å-, and 149 Å-spaced crowns of heads close to 60°, 35°, and 25° (all would be 40° in an unperturbed three-stranded helix). We have defined the myosin head atomic arrangements within the three crown levels and have modeled the organization of myosin subfragment 2 and the possible locations of the 39 Å-spaced domains of titin and the cardiac isoform of myosin-binding protein-C on the surface of the myosin filament backbone. Best fits were obtained with head conformations on all crowns close to the structure of the two-headed myosin molecule of vertebrate chicken smooth muscle in the dephosphorylated relaxed state. Individual crowns show differences in head-pair tilts and subfragment 2 orientations, which, together with the observed perturbations, result in different intercrown head interactions, including one not reported before. Analysis of the interactions between the myosin heads, the cardiac isoform of myosin-binding protein-C, and titin will aid in understanding of the structural effects of mutations in these proteins known to be associated with human cardiomyopathies.
Insights
Researchers visualized human cardiac myosin filaments, revealing detailed atomic arrangements and interactions. This structural insight into cardiac muscle is crucial for understanding cardiomyopathies caused by mutations.
Area of Science:
- Structural Biology
- Molecular Muscle Physiology
- Cardiovascular Research
Background:
- Cardiac myosin filaments are critical for heart function but remain understudied.
- Understanding their precise structure is key to addressing human cardiomyopathies.
Purpose of the Study:
- To determine the 3D atomic structure of human cardiac myosin filaments in a relaxed state.
- To model the organization of myosin subfragment 2, titin, and myosin-binding protein-C.
Main Methods:
- 3D single-particle analysis of electron micrograph images of negatively stained human cardiac myosin filaments.
- High-resolution (28-Å) 3D reconstruction to visualize atomic arrangements.
Main Results:
- Detailed map of myosin head atomic arrangements within axial repeats.
- Observed perturbations in head rotations and tilts, deviating from a perfect helix.
- Modeled locations of myosin subfragment 2, titin, and myosin-binding protein-C on the filament backbone.
Conclusions:
- The study provides unprecedented structural detail of human cardiac myosin filaments.
- Identified unique inter-crown head interactions and structural variations.
- Findings will facilitate understanding of how mutations in myosin-binding protein-C and titin contribute to cardiomyopathies.
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