Inotropic interventions do not change the resting state of myosin motors during cardiac diastole
Marco Caremani1, Francesca Pinzauti1, Joseph D Powers1
1PhysioLab, University of Florence, Firenze, Italy.
Insights
Muscle myosin motors activate independently of calcium signaling, adapting to mechanical stress. This thick filament mechanosensing mechanism is modulated by sarcomere length and myosin-binding protein C phosphorylation.
Area of Science:
- Muscle Physiology
- Biophysics
- Molecular Biology
Background:
- Striated muscle relaxation involves myosin motors in an inactive (OFF) state on the thick filament.
- The mechanism integrating calcium-dependent thin filament activation with myosin motor availability remains unclear.
Purpose of the Study:
- To investigate the interdependency between thin and thick filament regulatory mechanisms in rat cardiac muscle.
- To determine if myosin motor recruitment is linked to thin filament activation.
Main Methods:
- X-ray diffraction was used to monitor thick filament states in intact rat trabeculae.
- Inotropic interventions, including changes in sarcomere length and isoprenaline addition, were applied.
- Twitch force and myosin motor states were recorded during diastole.
Main Results:
- Inotropic interventions potentiated twitch force but did not significantly alter thick filament OFF state signals during diastole.
- Myosin-binding protein C- and troponin-related reflections decreased by 20% with isoprenaline.
- Myosin motor recruitment from the OFF state is independent and downstream of thin filament activation.
Conclusions:
- Myosin motor recruitment is a separate process from thin filament activation.
- Thick filament mechanosensing allows rapid adaptation of myosin motors to mechanical stress and loading conditions.
- Sarcomere length and myosin-binding protein C phosphorylation modulate this feedback mechanism.
Abstract:
When striated (skeletal and cardiac) muscle is in its relaxed state, myosin motors are packed in helical tracks on the surface of the thick filament, folded toward the center of the sarcomere, and unable to bind actin or hydrolyze ATP (OFF state). This raises the question of whatthe mechanism is that integrates the Ca2+-dependent thin filament activation, making myosin heads available for interaction with actin. Here we test the interdependency of the thin and thick filament regulatory mechanisms in intact trabeculae from the rat heart. We record the x-ray diffraction signals that mark the state of the thick filament during inotropic interventions (increase in sarcomere length from 1.95 to 2.25 µm and addition of 10-7 M isoprenaline), which potentiate the twitch force developed by an electrically paced trabecula by up to twofold. During diastole, none of the signals related to the OFF state of the thick filament are significantly affected by these interventions, except the intensity of both myosin-binding protein C- and troponin-related meridional reflections, which reduce by 20% in the presence of isoprenaline. These results indicate that recruitment of myosin motors from their OFF state occurs independently and downstream from thin filament activation. This is in agreement with the recently discovered mechanism based on thick filament mechanosensing in which the number of motors available for interaction with actin rapidly adapts to the stress on the thick filament and thus to the loading conditions of the contraction. The gain of this positive feedback may be modulated by both sarcomere length and the degree of phosphorylation of myosin-binding protein C.
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