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Updated: Jul 18, 2025

Determining Membrane Protein Topology Using Fluorescence Protease Protection FPP
Published on: April 20, 2015
Revealing KRas4b topology on the membrane surface
Shweta Shree1, Mark A McLean1, Andrew G Stephen2
1Department of Biochemistry, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, United States.
Abstract:
KRas4b is a membrane-bound regulatory protein belonging to the family of small GTPases that function as a molecular switch, facilitating signal transduction from activated membrane receptors to intracellular pathways controlling cell growth and proliferation. Oncogenic mutations locking KRas4b in the active GTP state are responsible for nearly 85% of all Ras-driven cancers. Understanding the membrane-bound state of KRas4b is crucial for designing new therapeutic approaches targeting oncogenic KRas-driven signaling pathways. Extensive research demonstrates the significant involvement of the membrane bilayer in Ras-effector interactions, with anionic lipids playing a critical role in determining protein conformations The preferred topology of KRas4b for interacting with signaling partners has been a long-time question. Computational studies suggest a membrane-proximal conformation, while other biophysical methods like neutron reflectivity propose a membrane-distal conformation. To address these gaps, we employed FRET measurements to investigate the conformation of KRas4b. Using fully post-translationally modified KRas4b, we designed a Nanodisc based FRET assay to study KRas4b-membrane interactions. We suggest an extended conformation of KRas4b relative to the membrane surface. Measurement of FRET donor - acceptor distances reveal that a negatively charged membrane surface weakly favors closer association with the membrane surface. Our findings provide insights into the role of anionic lipids in determining the dynamic conformations of KRas4b and shed light on the predominant conformation of its topology on lipid headgroups.
Insights
KRas4b, a key regulator in cell signaling and cancer, adopts an extended conformation on cell membranes. Anionic lipids influence this conformation, offering new therapeutic targets for Ras-driven cancers.
Area of Science:
- Molecular Biology
- Biophysics
- Cancer Research
Background:
- KRas4b is a small GTPase crucial for signal transduction, acting as a molecular switch.
- Oncogenic KRas4b mutations drive ~85% of Ras-driven cancers, making its membrane-bound state a therapeutic target.
- The precise conformation and membrane interaction of KRas4b remain debated, with conflicting models suggesting membrane-proximal or distal orientations.
Purpose of the Study:
- To investigate the membrane-bound conformation of KRas4b using advanced biophysical techniques.
- To elucidate the role of anionic lipids in modulating KRas4b's topology and interactions.
- To provide insights for developing targeted therapies against KRas4b-driven oncogenic signaling.
Main Methods:
- Utilized Förster Resonance Energy Transfer (FRET) measurements to determine KRas4b conformation.
- Employed a Nanodisc-based assay with fully post-translationally modified KRas4b.
- Studied KRas4b interactions with model membrane bilayers containing anionic lipids.
Main Results:
- Demonstrated an extended conformation of KRas4b relative to the membrane surface.
- Quantified FRET donor-acceptor distances, revealing conformational dynamics.
- Showed that negatively charged membrane surfaces weakly promote closer association of KRas4b with the membrane.
Conclusions:
- KRas4b adopts a predominantly extended conformation on the membrane surface.
- Anionic lipids play a significant role in determining the dynamic conformations and membrane association of KRas4b.
- Findings offer a deeper understanding of KRas4b's membrane topology, crucial for targeting oncogenic signaling pathways.
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