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Updated: Jul 14, 2026

Realistic Membrane Modeling Using Complex Lipid Mixtures in Simulation Studies
Published on: September 1, 2023
A thermodynamic and structural study of myelin basic protein in lipid membrane models
P Rispoli1, R Carzino, T Svaldo-Lanero
1Department of Physics, University of Genoa, 16146 Genova, Italy.
Abstract:
Myelin basic protein (MBP) is a major protein of the myelin membrane in the central nervous system. It is believed to play a relevant role in the structure and function of the myelin sheath and is a candidate autoantigen in demyelinating processes such as multiple sclerosis. MBP has many features typical of soluble proteins but is capable of strongly interacting with lipids, probably via a conformation change. Its structure in the lipid membrane as well as the details of its interaction with the lipid membrane are still to be resolved. In this article we study the interaction of MBP with Langmuir films of anionic and neutral phospholipids, used as experimental models of the lipid membrane. By analyzing the equilibrium surface pressure/area isotherms of these films, we measured the protein partition coefficient between the aqueous solution and the lipid membrane, the mixing ratio between protein and lipid, and the area of the protein molecules inserted in the lipid film. The penetration depth of MBP in the lipid monolayer was evaluated by x-ray reflectivity measurements. The mixing ratio and the MBP molecular area decrease as the surface pressure increases, and at high surface pressure the protein is preferentially located at the lipid/water interface for both anionic and neutral lipids. The morphology of MBP adsorbed on lipid films was studied by atomic force microscopy. MBP forms bean-like structures and induces a lateral compaction of the lipid surface. Scattered MBP particles have also been observed. These particles, which are 2.35-nm high, 4.7-nm wide, and 13.3-nm long, could be formed by protein-lipid complexes. On the basis of their size, they could also be either single MBP molecules or pairs of c-shaped interpenetrating molecules.
Insights
Myelin basic protein (MBP) interacts with lipid membranes, forming structures and compacting lipids. This research clarifies MBP
Area of Science:
- Biophysics
- Neuroscience
- Materials Science
Background:
- Myelin basic protein (MBP) is crucial for central nervous system myelin sheath structure and function.
- MBP is implicated as an autoantigen in demyelinating diseases like multiple sclerosis.
- The precise structure and lipid interaction mechanisms of MBP within membranes remain unclear.
Purpose of the Study:
- To investigate the interaction of Myelin basic protein (MBP) with model lipid membranes.
- To elucidate the structural and morphological changes induced by MBP in phospholipid Langmuir films.
- To quantify MBP's behavior and partitioning within lipid bilayers under varying surface pressures.
Main Methods:
- Utilized Langmuir films of anionic and neutral phospholipids as model lipid membranes.
- Analyzed surface pressure/area isotherms to determine protein partition coefficients and mixing ratios.
- Employed X-ray reflectivity and Atomic Force Microscopy (AFM) to assess penetration depth and morphology.
Main Results:
- MBP's mixing ratio and molecular area decreased with increasing surface pressure.
- At high surface pressures, MBP preferentially localized at the lipid/water interface for both lipid types.
- AFM revealed MBP forms bean-like structures, inducing lipid compaction and forming scattered protein-lipid complex particles.
Conclusions:
- MBP exhibits complex interactions with lipid membranes, influenced by surface pressure.
- MBP's conformational changes and membrane association are key to its role in myelin structure.
- Understanding these interactions provides insights into demyelinating disease mechanisms.
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