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Updated: May 21, 2025

Fluorescence-Based Measurements of Phosphatidylserine/Phosphatidylinositol 4-Phosphate Exchange Between Membranes
Published on: March 14, 2021
The Effect of Phosphoserine-Containing Membranes on Electrostatic Fields at the Protein-Protein Interface Measured
Jackson C Fink1, Lauren J Webb1,2
1Interdisciplinary Life Sciences Graduate Program, The University of Texas at Austin, Austin, Texas 78712, United States.
Abstract:
In the cell, Ras GTPases function as membrane-bound molecular switches for a variety of cell signaling pathways. Ras isoforms have long been of interest because of the connection between amino acid mutations and tumorigenesis. Much research focused on Ras has used truncated, solubilized constructs, which exclude the membrane-binding domain and therefore ignore the effects of membrane binding on Ras function. Since the membrane is a highly charged surface, it could have a significant impact on the electrostatic environment at or near the protein-protein interface. Here, we use a thiocyanate probe chemically inserted into the Ras-binding domain of RalGDS to investigate the effect of membrane binding at the Ras active site. Changes in the electric field caused by the membrane were measured by the probe as vibrational energy shifts in the infrared (IR) spectrum. For a selection of mutants which caused large shifts at this interface on the soluble H-Ras construct, binding to a 30% phosphatidylserine (PS)/70% phosphatidylcholine (PC) nanodisc caused reduced shifts compared to the solubilized counterparts. Additionally, the vibrational probe bonded to the wildtype (WT) Ras construct demonstrated a shift of 0.7 cm-1 as a PC nanodisc was doped from 0% to 30% PS, but mutations introduced to the Ras active site caused the probe to show no shift across these PS concentrations. These results indicate that the local membrane environment has an effect on the electrostatics at the Ras active site and needs to be considered when investigating the effect of oncogenic mutations on Ras function.
Insights
Membrane binding influences Ras GTPase active site electrostatics. This effect, crucial for understanding oncogenic mutations, was previously overlooked in soluble Ras studies.
Area of Science:
- Molecular biology
- Biophysics
- Cell signaling
Background:
- Ras GTPases are key molecular switches in cell signaling.
- Oncogenic mutations in Ras are linked to tumorigenesis.
- Previous studies often used soluble Ras constructs, neglecting membrane interactions.
Purpose of the Study:
- To investigate the impact of membrane binding on Ras active site electrostatics.
- To assess how membrane charge affects Ras function and oncogenic mutations.
Main Methods:
- Utilized a thiocyanate probe inserted into the Ras-binding domain of RalGDS.
- Measured infrared (IR) spectral shifts to detect changes in the electric field.
- Employed phosphatidylserine (PS)/phosphatidylcholine (PC) nanodiscs to mimic cell membranes.
Main Results:
- Membrane binding reduced electrostatic shifts at the Ras active site for certain mutants compared to soluble forms.
- Wildtype Ras showed electrostatic shifts with increasing membrane PS content, which were abolished by active site mutations.
Conclusions:
- The local membrane environment significantly affects Ras active site electrostatics.
- Membrane interactions must be considered when studying the functional impact of oncogenic Ras mutations.
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