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Updated: Aug 13, 2026

Characterization at the Molecular Level using Robust Biochemical Approaches of a New Kinase Protein
Published on: June 30, 2019
Effect of phosphorylation of myelin basic protein by MAPK on its interactions with actin and actin binding to a lipid
Joan M Boggs1, Godha Rangaraj, Wen Gao
1Division of Structural Biology and Biochemistry, Research Institute, Hospital for Sick Children, 555 University Avenue, Toronto, Ontario, Canada M5G 1X8. jmboggs@sickkids.ca
Abstract:
Myelin basic protein (MBP) binds to negatively charged lipids on the cytosolic surface of oligodendrocyte membranes and is most likely responsible for adhesion of these surfaces in the multilayered myelin sheath. It can also polymerize actin, bundle F-actin filaments, and bind actin filaments to lipid bilayers through electrostatic interactions. MBP consists of a number of posttranslationally modified isomers of varying charge, some resulting from phosphorylation at several sites by different kinases, including mitogen-activated protein kinase (MAPK). Phosphorylation of MBP in oligodendrocytes occurs in response to various extracellular stimuli. Phosphorylation/dephosphorylation of MBP also occurs in the myelin sheath in response to electrical activity in the brain. Here we investigate the effect of phosphorylation of MBP on its interaction with actin in vitro by phosphorylating the most highly charged unmodified isomer, C1, at two sites with MAPK. Phosphorylation decreased the ability of MBP to polymerize actin and to bundle actin filaments but had no effect on the dissociation constant of the MBP-actin complex or on the ability of Ca2+-calmodulin to dissociate the complex. The most significant effect of phosphorylation on the MBP-actin complex was a dramatic reduction in its ability to bind to negatively charged lipid bilayers. The effect was much greater than that reported earlier for another charge isomer of MBP, C8, in which six arginines were deiminated to citrulline, resulting in a reduction of net positive charge of 6. These results indicate that although average electrostatic forces are the primary determinant of the interaction of MBP with actin, phosphorylation may have an additional effect due to a site-specific electrostatic effect or to a conformational change. Thus, phosphorylation of MBP, which occurs in response to various extracellular signals in both myelin and oligodendrocytes, attenuates the ability of MBP to polymerize and bundle actin and to bind it to a negatively charged membrane.
Insights
Phosphorylation of myelin basic protein (MBP) reduces its ability to interact with actin and bind to lipid membranes. This modification, occurring in response to cellular signals, impacts actin polymerization and membrane adhesion in oligodendrocytes.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Myelin basic protein (MBP) is crucial for myelin sheath adhesion in oligodendrocytes.
- MBP interacts with lipids and actin, influencing membrane structure and dynamics.
- Post-translational modifications, like phosphorylation by mitogen-activated protein kinase (MAPK), alter MBP function.
Purpose of the Study:
- To investigate the in vitro effects of myelin basic protein (MBP) phosphorylation on its interaction with actin.
- To determine how MAPK-mediated phosphorylation of MBP isomer C1 affects actin polymerization, bundling, and lipid bilayer binding.
Main Methods:
- In vitro phosphorylation of MBP isomer C1 using MAPK.
- Assays to measure actin polymerization and F-actin bundling.
- Analysis of MBP-actin complex dissociation constants.
- Binding assays for MBP-actin complex to negatively charged lipid bilayers.
Main Results:
- Phosphorylation of MBP C1 by MAPK decreased its ability to polymerize and bundle actin.
- The dissociation constant of the MBP-actin complex and Ca2+-calmodulin's effect remained unchanged.
- Phosphorylation significantly reduced MBP's binding affinity to negatively charged lipid bilayers, more so than deimination.
- These findings suggest phosphorylation impacts MBP-actin-lipid interactions beyond net charge reduction.
Conclusions:
- Phosphorylation of MBP attenuates its actin-binding and membrane-anchoring capabilities.
- Site-specific electrostatic effects or conformational changes may mediate phosphorylation's impact.
- MBP phosphorylation, triggered by extracellular signals, modulates actin dynamics and membrane interactions in myelin.
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