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Updated: Jun 8, 2026

Production of Disulfide-stabilized Transmembrane Peptide Complexes for Structural Studies
Published on: March 6, 2013
Secondary structure and solvent accessibility of a calmodulin-binding C-terminal segment of membrane-associated
Lopamudra Homchaudhuri1, Miguel De Avila, Stina B Nilsson
1Department of Molecular Structure and Function, Research Institute, Hospital for Sick Children, Toronto, Ontario, Canada.
Abstract:
Myelin basic protein (MBP), specifically the 18.5 kDa isoform, is a peripheral membrane protein and a major component of mammalian central nervous system myelin. It is an intrinsically disordered and multifunctional protein that binds cytoskeletal and other cytosolic proteins to a membrane surface and thereby acquires ordered structure. These associations are modulated by post-translational modifications of MBP, as well as by interactions of MBP with Ca(2+)-calmodulin (CaM). Enzymatic deimination of usually six arginine residues to citrulline results in a decrease in the net positive charge of the protein from 19 to ≤13. This deiminated form is found in greater amounts in normal children and in adult patients with the demyelinating disease multiple sclerosis. In this paper, we examine the secondary structure of a calmodulin-binding domain, residues A141-L154, when associated with a lipid bilayer in recombinant murine 18.5 kDa forms rmC1 (unmodified) and rmC8 (pseudodeiminated). We demonstrate here by site-directed spin labeling and electron paramagnetic resonance (EPR) spectroscopy that the Y142-L154 segment in membrane-associated rmC1 forms an amphipathic α-helix, with high accessibility to O(2) and low accessibility to NiEDDA. In membrane-associated rmC8, this segment assumed a structure distorted from an α-helix. Spin-labeled residues in rmC1 in solution were more immobilized on binding Ca(2+)-CaM than those in rmC8. Furthermore, rmC8 was dissociated more readily from a lipid bilayer by Ca(2+)-CaM than was rmC1. These results confirm both a predicted induced ordering upon membrane association in a specific segment of 18.5 kDa MBP, and that this segment is a CaM-binding site, with both interactions weakened by deimination of residues outside of this segment. The deiminated form would be more susceptible to regulation of its membrane binding functions by Ca(2+)-CaM than the unmodified form.
Insights
Myelin basic protein (MBP) undergoes structural changes upon membrane binding and calmodulin interaction. Deimination, a modification found in multiple sclerosis, weakens these interactions, suggesting altered regulation in disease.
Area of Science:
- Biochemistry
- Structural Biology
- Neuroscience
Background:
- Myelin basic protein (MBP), particularly the 18.5 kDa isoform, is crucial for central nervous system myelin structure.
- MBP is intrinsically disordered but gains structure upon membrane association and interaction with Ca(2+)-calmodulin (CaM).
- Post-translational modifications, like deimination, alter MBP's net charge and function, with increased deiminated MBP observed in multiple sclerosis.
Purpose of the Study:
- To investigate the secondary structure of the CaM-binding domain (residues A141-L154) of unmodified (rmC1) and pseudodeiminated (rmC8) murine 18.5 kDa MBP.
- To elucidate how membrane association and CaM binding affect the structure and dynamics of these MBP forms.
- To understand the impact of deimination on MBP's interaction with lipid bilayers and CaM.
Main Methods:
- Site-directed spin labeling combined with electron paramagnetic resonance (EPR) spectroscopy.
- Analysis of secondary structure, O(2) and NiEDDA accessibility, and spin-labeled residue immobilization.
- Lipid bilayer dissociation assays in the presence of Ca(2+)-CaM.
Main Results:
- Membrane-associated rmC1 exhibits an amphipathic α-helix in the Y142-L154 segment, showing high O(2) and low NiEDDA accessibility.
- In membrane-associated rmC8, this segment adopts a distorted α-helical structure.
- CaM binding causes greater immobilization of spin-labeled residues in rmC1 compared to rmC8, and rmC8 dissociates more readily from lipid bilayers with CaM.
Conclusions:
- Membrane association induces α-helical structure in the CaM-binding domain of 18.5 kDa MBP, confirming predicted ordering.
- Deimination outside the CaM-binding segment weakens both membrane association and CaM-binding interactions.
- The deiminated MBP form is more susceptible to Ca(2+)-CaM-mediated regulation of its membrane binding functions.
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