Crossbridge and tropomyosin positions observed in native, interacting thick and thin filaments

R Craig1, W Lehman

  • 1Department of Cell Biology, University of Massachusetts Medical School, Worcester, MA 01655, USA. Roger.Craig@umassmed.edu

Insights

Tropomyosin shifts on actin filaments regulate muscle contraction. This study visualizes these movements and myosin crossbridge binding sites during active filament sliding, confirming the steric model.

Area of Science:

  • Muscle physiology
  • Molecular biology
  • Biophysics

Background:

  • Tropomyosin's role in steric regulation of muscle contraction is inferred but unvisualized during active filament sliding.
  • 3-D visualization of myosin crossbridges is challenging during active thick and thin filament interactions.

Purpose of the Study:

  • To visualize tropomyosin movements and myosin crossbridge docking sites on thin filaments during active muscle contraction.
  • To elucidate the steric model of muscle contraction at a molecular level.

Main Methods:

  • Three-dimensional reconstruction of electron micrographs of interacting muscle filaments.
  • High-resolution imaging to resolve tropomyosin positions and myosin crossbridge binding sites.

Main Results:

  • Tropomyosin shifts from the outer to inner actin domain during contraction.
  • Weakly bound myosin heads detected on actin periphery during contraction.
  • Strongly bound myosin heads observed on actin during rigor, with tropomyosin further shifted.

Conclusions:

  • Tropomyosin movements support the steric model of muscle contraction.
  • Strongly bound crossbridges are necessary for myosin-induced tropomyosin movement.
  • Early crossbridge binding occurs at a distinct site on the actin periphery.

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