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Rotational dynamics of actin-bound intermediates in the myosin ATPase cycle

C L Berger1, D D Thomas

  • 1Department of Biochemistry, University of Minnesota Medical School, Minneapolis 55455.

Biochemistry
|November 19, 1991
PubMed

Insights

Weakly bound myosin states exhibit microsecond rotational motion, while strongly bound states do not. These movements are crucial for muscle contraction. This study used saturation-transfer electron paramagnetic resonance (ST-EPR) to investigate myosin dynamics.

Area of Science:

  • Biophysics
  • Muscle Physiology
  • Molecular Motor Dynamics

Background:

  • Myosin subfragment one (MSL-S1) interaction with actin is central to muscle contraction.
  • Understanding the dynamics of actomyosin states is key to elucidating the ATPase cycle.

Purpose of the Study:

  • To detect and characterize microsecond rotational motions of spin-labeled MSL-S1 bound to actin.
  • To differentiate dynamics between strongly and weakly bound myosin states using ATP analogues.

Main Methods:

  • Saturation-transfer electron paramagnetic resonance (ST-EPR) spectroscopy.
  • Sedimentation binding assays to quantify bound myosin fractions.
  • Analysis of ternary complex (actin.MSL-S1.nucleotide) spectra.

Main Results:

  • MSL-S1 bound to actin with AMPPNP (strongly bound) showed no microsecond rotational motion.
  • MSL-S1 bound to actin with ATP gamma S (weakly bound) displayed microsecond rotational mobility (τr = 17 ± 2 μs).
  • Observed motion for ATP gamma S state resembles that during steady-state ATP hydrolysis.

Conclusions:

  • Weakly bound actomyosin states exhibit microsecond rotational motions in solution.
  • Strongly bound actomyosin intermediates lack significant rotational mobility on this timescale.
  • These distinct dynamics are likely integral to the molecular mechanism of muscle contraction.

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