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Updated: Jul 30, 2025

Probing Myosin Ensemble Mechanics in Actin Filament Bundles Using Optical Tweezers
Published on: May 4, 2022
Single-molecule mechanics and kinetics of cardiac myosin interacting with regulated thin filaments
Sarah R Clippinger Schulte1, Brent Scott1, Samantha K Barrick1
1Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St. Louis, Missouri.
Insights
Cardiac myosin
Area of Science:
- Cardiovascular Biology
- Muscle Physiology
- Molecular Motors
Background:
- The cardiac cycle relies on myosin's force generation, which is regulated by thin filament proteins.
- Understanding how these regulatory proteins affect cardiac myosin mechanics is crucial for cardiac health.
Purpose of the Study:
- To investigate the role of thin filament regulatory proteins in modulating the cardiac myosin working stroke.
- To elucidate the calcium-dependent interactions between cardiac myosin and thin filaments.
Main Methods:
- Utilized single-molecule techniques to measure cardiac myosin kinetics and mechanics.
- Employed an isometric optical clamp to assess load-dependent kinetics at physiological ATP concentrations.
Main Results:
- Thin filament regulatory proteins gate calcium-dependent myosin interactions but do not affect cardiac myosin mechanics or unloaded kinetics at physiological ATP.
- No significant impact of regulatory proteins on the primary load-dependent transition of cardiac myosin was observed.
- A minor effect on actomyosin dissociation was noted at low ATP concentrations, suggesting mechanisms beyond steric blocking.
Conclusions:
- Cardiac myosin's fundamental mechanics are largely independent of thin filament regulatory proteins under physiological conditions.
- These findings refine models of cardiac contraction and have implications for understanding cardiomyopathies and heart failure.
Abstract:
The cardiac cycle is a tightly regulated process wherein the heart generates force to pump blood to the body during systole and then relaxes during diastole. Disruption of this finely tuned cycle can lead to a range of diseases including cardiomyopathies and heart failure. Cardiac contraction is driven by the molecular motor myosin, which pulls regulated thin filaments in a calcium-dependent manner. In some muscle and nonmuscle myosins, regulatory proteins on actin tune the kinetics, mechanics, and load dependence of the myosin working stroke; however, it is not well understood whether or how thin-filament regulatory proteins tune the mechanics of the cardiac myosin motor. To address this critical gap in knowledge, we used single-molecule techniques to measure the kinetics and mechanics of the substeps of the cardiac myosin working stroke in the presence and absence of thin filament regulatory proteins. We found that regulatory proteins gate the calcium-dependent interactions between myosin and the thin filament. At physiologically relevant ATP concentrations, cardiac myosin's mechanics and unloaded kinetics are not affected by thin-filament regulatory proteins. We also measured the load-dependent kinetics of cardiac myosin at physiologically relevant ATP concentrations using an isometric optical clamp, and we found that thin-filament regulatory proteins do not affect either the identity or magnitude of myosin's primary load-dependent transition. Interestingly, at low ATP concentrations at both saturating and physiologically relevant subsaturating calcium concentrations, thin-filament regulatory proteins have a small effect on actomyosin dissociation kinetics, suggesting a mechanism beyond simple steric blocking. These results have important implications for the modeling of cardiac physiology and diseases.
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