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.

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