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Deciphering the Structural Effects of Activating EGFR Somatic Mutations with Molecular Dynamics Simulation
Published on: May 20, 2020
Transmembrane peptides from tyrosine kinase receptor. Mutation-related behavior in a lipid bilayer investigated by
Oumarou Samna Soumana1, Pierre Aller, Norbert Garnier
1Centre de Biophysique Moleculaire, UPR 4301, CNRS, rue Charles Sadron, 45071 Orleans Cedex 02, France.
Abstract:
Polar mutations in transmembrane alpha helices may alter the structural details of the hydrophobic sequences and control intermolecular contacts. We have performed molecular dynamics simulations on the transmembrane domain of the proto-oncogenic and the oncogenic forms of the Neu receptor in a fluid DMPC bilayer to test whether the Glu mutation which replaces the Val residue at position 664 may alter the helical structure and its insertion in the membrane. The simulations show that the wild and the mutant forms of the transmembrane domain have a different behavior in the bilayer. The native transmembrane sequence is found to be more flexible than in the presence of the Glu mutation, characterized by a tendency to pi deformation to accommodate the helix length to the membrane thickness. The mutant form of this domain does not evidence helical deformation in the present simulation. Hydrophobic matching is achieved both by a larger helix tilt and a vertical shift of the helix towards the membrane interface, favoring the accessibility of the Glu side chain to the membrane environment. A rapid exchange of hydrogen bond interactions with the surrounding water molecules and the lipid headgroups is observed. The difference in the behavior between the two peptides in a membrane environment was also observed experimentally. Both simulation and experimental results agree with the hypothesis that water may act as an intermediate for the formation of cross links between the facing Glu side chains stabilizing the dimer.
Insights
A mutation in the Neu receptor
Area of Science:
- Biophysics
- Molecular Biology
- Structural Biology
Background:
- Transmembrane alpha helices are crucial for protein structure and function.
- Polar mutations can influence protein interactions and membrane insertion.
- The Neu receptor's transmembrane domain is implicated in oncogenesis.
Purpose of the Study:
- To investigate the impact of a specific mutation (Glu for Val at position 664) on the Neu receptor's transmembrane domain.
- To compare the behavior of wild-type and mutant Neu receptor transmembrane domains within a lipid bilayer.
- To explore the role of water in stabilizing receptor interactions.
Main Methods:
- Molecular dynamics simulations of the Neu receptor's transmembrane domain in a DMPC bilayer.
- Analysis of helical structure, flexibility, and membrane insertion.
- Experimental validation of simulation findings.
Main Results:
- The mutant Neu receptor transmembrane domain exhibits altered behavior compared to the wild-type.
- The wild-type sequence is more flexible, showing pi deformation, while the mutant does not.
- The mutant form adjusts via helix tilt and vertical shift, facilitating Glu side chain interaction with the membrane and water.
Conclusions:
- The Glu mutation significantly alters the Neu receptor transmembrane domain's structural dynamics and membrane interaction.
- Water molecules play a role in mediating cross-links between Glu side chains, potentially stabilizing receptor dimers.
- Findings support the hypothesis of water-mediated dimerization in the Neu receptor.
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