Single-myosin crossbridge interactions with actin filaments regulated by troponin-tropomyosin

Neil M Kad1, Scott Kim, David M Warshaw

  • 1Departments of Molecular Physiology and Biophysics and Medicine, University of Vermont, Burlington, VT 05405, USA.

Insights

Muscle contraction relies on troponin and tropomyosin regulating myosin interaction with actin filaments. This study reveals that in the absence of calcium, myosin attachment to actin is significantly reduced, inhibiting muscle contraction.

Area of Science:

  • Muscle physiology
  • Molecular biology
  • Biophysics

Background:

  • Striated muscle contraction is regulated by troponin and tropomyosin on thin filaments.
  • Understanding the inhibitory mechanisms of these proteins in the absence of calcium is crucial for muscle function.
  • Myosin interactions with actin are central to muscle force generation.

Purpose of the Study:

  • To investigate the molecular mechanisms of troponin-tropomyosin inhibition of myosin-actin interactions without calcium.
  • To quantify the effects of regulation on single myosin molecule behavior.
  • To develop a model explaining inhibition in ensemble and single-molecule assays.

Main Methods:

  • Utilized a laser trap assay to study single myosin molecule displacements on reconstituted thin filaments.
  • Employed in vitro motility assays to observe thin filament movement.
  • Developed a mechanistic model to interpret experimental data.

Main Results:

  • Single myosin displacements were shorter (5 nm) and prolonged (69 ms) on regulated thin filaments compared to actin alone.
  • A ~100-fold decrease in myosin attachment probability to actin was identified as the primary inhibition mechanism.
  • Cooperative binding of myosin crossbridges was observed at higher concentrations and low ATP, mimicking rigor activation.

Conclusions:

  • Thin filament inhibition in the absence of calcium is primarily mediated by a reduced probability of myosin attachment to actin.
  • The transition from weakly to strongly bound states of myosin is modulated, impacting muscle contraction.
  • A mechanistic model successfully explains both single-molecule and ensemble observations of muscle thin filament regulation.

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