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Published on: May 28, 2021
Lipid modifications of a Ras peptide exhibit altered packing and mobility versus host membrane as detected by 2H
Alexander Vogel1, Catherine P Katzka, Herbert Waldmann
1Biotechnological-Biomedical Center of the University of Leipzig, D-04107 Leipzig, Germany.
Abstract:
The human N-ras protein binds to cellular membranes by insertion of two covalently bound posttranslational lipid modifications, which is crucial for its function in signal transduction and cell proliferation. Mutations in ras may lead to unregulated cell growth and eventually cancer, making it an important therapeutic target. Here we have investigated the molecular details of the membrane binding mechanism. A heptapeptide derived from the C-terminus of the human N-ras protein was synthesized including two hexadecyl modifications. Solid-state 2H NMR was used to determine the packing and molecular dynamics of the ras lipid chains as well as the phospholipid matrix. Separately labeling the chains of the peptide and the phospholipids with 2H enabled us to obtain atomically resolved parameters relevant to their structural dynamics. While the presence of ras only marginally affected the packing of DMPC membranes, dramatically lower order parameters (S(CD)) were observed for the ras acyl chains indicating modified packing properties. Essentially identical projected lengths of the 16:0 ras chains and the 14:0 DMPC chains were found, implying that the polypeptide backbone is located at the lipid-water interface. Dynamical properties of both the ras and phospholipid chains were determined from spin-lattice 2H relaxation (R1Z) measurements. Plots of R1Z rates versus the corresponding squared segmental order parameters revealed striking differences. We propose the ras peptide is confined to microdomains containing DMPC chains which are in exchange with the bulk bilayer on the 2H NMR time scale (approximately 10(-5) s). Compared to the host DMPC matrix, the ras lipid modifications are extremely flexible and undergo relatively large amplitude motions. It is hypothesized that this flexibility is a requirement for the optimal anchoring of lipid-modified proteins to cellular membranes.
Insights
The human N-ras protein anchors to cell membranes via lipid modifications. These modifications are highly flexible, suggesting a key role in protein-membrane interactions for cell signaling and proliferation.
Area of Science:
- Biophysics
- Molecular Biology
- Cellular Signaling
Background:
- The human N-ras protein requires lipid modifications for membrane binding and function in signal transduction.
- Ras mutations are linked to cancer, making ras proteins therapeutic targets.
Purpose of the Study:
- To investigate the molecular details of how the N-ras protein binds to cellular membranes.
- To understand the structural dynamics and membrane interactions of ras lipid modifications.
Main Methods:
- Synthesis of a C-terminal heptapeptide of human N-ras with two hexadecyl modifications.
- Solid-state deuterium (2H) Nuclear Magnetic Resonance (NMR) spectroscopy.
- Analysis of lipid chain packing, molecular dynamics, and structural parameters.
Main Results:
- N-ras peptide marginally affected DMPC membrane packing but showed significantly lower order parameters for its own acyl chains.
- Ras lipid chains and DMPC chains exhibited similar projected lengths, placing the N-ras backbone at the lipid-water interface.
- Ras lipid modifications displayed extreme flexibility and large amplitude motions compared to the DMPC matrix.
Conclusions:
- The N-ras peptide likely resides in DMPC microdomains that exchange with the bulk bilayer.
- The high flexibility of ras lipid modifications is hypothesized to be essential for optimal anchoring to cellular membranes.
- Understanding these interactions is crucial for targeting ras in cancer therapy.
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