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.

Molecular Biosystems
|August 6, 2014
PubMed

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.

Related Concept Videos

Protein Kinases and Phosphatases02:54

Protein Kinases and Phosphatases

Proteins undergo chemical modifications that trigger changes in the charge, structure, and conformation of the proteins. Phosphorylation, acetylation, glycosylation, nitrosylation, ubiquitination, lipidation, methylation, and proteolysis are various protein modifications that regulate protein activity. Such modifications are usually enzyme-driven.
Protein kinases
Many proteins in the cell are regulated by phosphorylation, the addition of a phosphate group. A family of enzymes called kinases...
12.1K
Phosphorylation01:02

Phosphorylation

The addition or removal of phosphate groups from proteins is the most common chemical modification that regulates cellular processes. These modifications can affect the structure, activity, stability, and localization of proteins within cells as well as their interactions with other proteins.
During phosphorylation, protein kinases transfer the terminal phosphate group of ATP to specific amino acid side chains of substrate proteins. Serine, threonine, and tyrosine are the most commonly...
44.7K
Overview of Myosin Structure and Function01:15

Overview of Myosin Structure and Function

Myosins are a family of molecular motor proteins, first identified in the skeletal muscles, where they are responsible for muscle contraction. Along with their role in muscle contraction, these proteins also play a role in the intracellular transport of molecules and vesicles. There are twenty-four classes of myosins based on their domain sequence and organization. Of the twenty-four, six classes (Myosin I, Myosin II, Myosin V, Myosin VI, Myosin VII, and Myosin X)  have been well...
6.4K
Covalently Linked Protein Regulators02:04

Covalently Linked Protein Regulators

Proteins can undergo many types of post-translational modifications, often in response to changes in their environment. These modifications play an important role in the function and stability of these proteins. Covalently linked molecules include functional groups, such as methyl, acetyl, and phosphate groups, and also small proteins, such as ubiquitin. There are around 200 different types of covalent regulators that have been identified.
These groups modify specific amino acids in a protein....
8.2K
Smooth Muscle Contraction01:25

Smooth Muscle Contraction

Smooth muscle contraction is a complex process vital for various bodily functions, from maintaining blood vessel tension to facilitating the movement of food through the digestive tract. Unlike striated muscles, smooth muscle contraction begins more slowly and lasts longer.
The onset of contraction is triggered by an increase in calcium ions within the sarcoplasm, similar to the process in striated muscle. However, smooth muscles have a relatively smaller reservoir of the sarcoplasmic...
8.6K
Calmodulin-dependent Signaling01:16

Calmodulin-dependent Signaling

Calmodulin (CaM) is a calcium-binding protein in eukaryotes that controls various calcium-regulated cellular processes. It has four calcium-binding sites that bind calcium to form the calcium-calmodulin ( Ca2+-CaM) complex. GPCR stimulation increases the calcium levels in the cells that bind to CaM and induces a conformational change.
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...
4.9K