Myosin Light-Chain Domain Rotates upon Muscle Activation but Not ATP Hydrolysis
- 1 September 1999
- journal article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 38 (39) , 12607-12613
- https://doi.org/10.1021/bi9905967
Abstract
We have studied the correlation between myosin structure, myosin biochemistry, and muscle force. Two distinct orientations of the myosin light-chain domain were previously resolved using electron paramagnetic resonance (EPR) spectroscopy of spin-labeled regulatory light chains in scallop muscle fibers. In the present study, we measured isometric force during EPR spectral acquisition, in order to define how these two light-chain domain orientations are coupled to force and the myosin ATPase cycle. When muscle fibers are partially activated with increasing amounts of calcium, the distribution between the two light-chain domain orientations shifts toward the one associated with strong actin binding. This shift in distribution is linearly related to the increase in force, suggesting that rotation of the light-chain domain is coupled to strong actin binding. However, when nucleotide analogues are used to trap myosin in the pre- and posthydrolysis states of its ATPase cycle in relaxed muscle, there is no change in the distribution between light-chain domain orientations, showing that the rotation of the light-chain domain is not directly coupled to the ATP hydrolysis step. Instead, it is likely that in relaxed muscle the myosin thick filament stabilizes two light-chain domain orientations that are independent of the nucleotide analogue bound at the active site. We conclude that a large and distinct rotation of the light-chain domain of myosin is responsible for force generation and is coupled to strong actin binding but is not coupled to a specific step in the myosin ATPase reaction.Keywords
This publication has 19 references indexed in Scilit:
- Flexibility within Myosin Heads Revealed by Negative Stain and Single-Particle AnalysisThe Journal of cell biology, 1997
- Orientational dynamics of indane dione spin-labeled myosin heads in relaxed and contracting skeletal muscle fibersBiophysical Journal, 1995
- Polarized Raman spectra of oriented fibers of A DNA and B DNA: anisotropic and isotropic local Raman tensors of base and backbone vibrationsBiophysical Journal, 1995
- Structure of the actin-myosin complex and its implications for muscle contractionScience, 1993
- Helical reconstruction of frozen-hydrated scallop myosin filamentsJournal of Molecular Biology, 1992
- Arrangement of myosin heads in relaxed thick filaments from frog skeletal muscleJournal of Molecular Biology, 1986
- Structural changes that occur in scallop myosin filaments upon activation.The Journal of cell biology, 1985
- Three-dimensional reconstruction of thick filaments from Limulus and scorpion muscle.The Journal of cell biology, 1985
- Segmental flexibility and head-head interaction in scallop myosinJournal of Molecular Biology, 1983
- Regulation in molluscan musclesJournal of Molecular Biology, 1970