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Published on: July 30, 2014
Effects of pseudophosphorylation mutants on the structural dynamics of smooth muscle myosin regulatory light chain
L Michel Espinoza-Fonseca1, Brett A Colson, David D Thomas
1Department of Biochemistry, Molecular Biology and Biophysics, University of Minnesota, Jackson Hall 6-155, 321 Church St. SE, Minneapolis, MN 55455, USA. espin049@umn.edu.
Abstract:
We have performed 50 independent molecular dynamics (MD) simulations to determine the effect of pseudophosphorylation mutants on the structural dynamics of smooth muscle myosin (SMM) regulatory light chain (RLC). We previously showed that the N-terminal phosphorylation domain of RLC simultaneously populates two structural states in equilibrium, closed and open, and that phosphorylation at S19 induces a modest shift toward the open state, which is sufficient to activate smooth muscle. However, it remains unknown why pseudophosphorylation mutants poorly mimic phosphorylation-induced activation of SMM. We performed MD simulations of unphosphorylated, phosphorylated, and three pseudophosphorylated RLC mutants: S19E, T18D/S19D and T18E/S19E. We found that the S19E mutation does not shift the equilibrium toward the open state, indicating that simple charge replacement at position S19 does not mimic the activating effect of phosphorylation, providing a structural explanation for previously published functional data. In contrast, mutants T18D/S19D and T18E/S19E shift the equilibrium toward the open structure and partially activate in vitro motility, further supporting the model that an increase in the mol fraction of the open state is coupled to SMM motility. Structural analyses of the doubly-charged pseudophosphorylation mutants suggest that alterations in an interdomain salt bridge between residues R4 and D100 results in impaired signal transmission from RLC to the catalytic domain of SMM, which explains the low ATPase activity of these mutants. Our results demonstrate that phosphorylation produces a unique structural balance in the RLC. These observations have important implications for our understanding of the structural aspects of activation and force potentiation in smooth and striated muscle.
Insights
Pseudophosphorylation mutants reveal how smooth muscle myosin regulatory light chain (RLC) activation differs from actual phosphorylation. Specific double mutations mimic phosphorylation, but alterations in salt bridges impair signal transmission, impacting muscle contraction.
Area of Science:
- Biochemistry
- Structural Biology
- Muscle Physiology
Background:
- Smooth muscle myosin (SMM) regulatory light chain (RLC) exists in equilibrium between closed and open states.
- Phosphorylation at S19 shifts this equilibrium to the open state, activating SMM.
- Pseudophosphorylation mutants often fail to fully mimic this activation, necessitating structural investigation.
Purpose of the Study:
- To investigate the structural dynamics of smooth muscle myosin regulatory light chain (RLC) pseudophosphorylation mutants using molecular dynamics (MD) simulations.
- To understand why certain pseudophosphorylation mutants do not effectively mimic phosphorylation-induced SMM activation.
- To elucidate the structural basis for impaired signal transmission in RLC mutants.
Main Methods:
- 50 independent molecular dynamics (MD) simulations were conducted.
- Simulations included unphosphorylated, phosphorylated, and three pseudophosphorylated RLC mutants (S19E, T18D/S19D, T18E/S19E).
- Structural analyses focused on equilibrium shifts between closed and open states and interdomain salt bridge integrity.
Main Results:
- The S19E mutation did not shift the RLC equilibrium toward the open state, failing to mimic phosphorylation.
- Mutants T18D/S19D and T18E/S19E shifted the equilibrium toward the open state and partially activated in vitro motility.
- Alterations in the R4-D100 salt bridge in double mutants impaired signal transmission to the SMM catalytic domain, explaining reduced ATPase activity.
Conclusions:
- Phosphorylation induces a unique structural balance in RLC not fully replicated by simple charge-mimicking mutations.
- The degree of RLC open state population correlates with SMM motility.
- Understanding these structural dynamics is crucial for force potentiation in smooth and striated muscle.
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