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Updated: Jan 28, 2026

Single-molecule Super-resolution Imaging of Phosphatidylinositol 4,5-bisphosphate in the Plasma Membrane with Novel Fluorescent Probes
Published on: October 15, 2016
K-Ras G-domain binding with signaling lipid phosphatidylinositol (4,5)-phosphate (PIP2): membrane association,
Shufen Cao1, Stacey Chung2, SoonJeung Kim1
1From the Departments of Physiology and Biophysics.
Abstract:
Ras genes potently drive human cancers, with mutated proto-oncogene GTPase KRAS4B (K-Ras4B) being the most abundant isoform. Targeted inhibition of oncogenic gene products is considered the "holy grail" of present-day cancer therapy, and recent discoveries of small-molecule KRas4B inhibitors were made thanks to a deeper understanding of the structure and dynamics of this GTPase. Because interactions with biological membranes are key for Ras function, Ras-lipid interactions have become a major focus, especially because such interactions evidently involve both the Ras C terminus for lipid anchoring and its G-protein domain. Here, using NMR spectroscopy and molecular dynamics simulations complemented by biophysical- and cell-biology assays, we investigated the interaction between K-Ras4B with the signaling lipid phosphatidylinositol (4,5)-phosphate (PIP2). We discovered that the β2 and β3 strands as well as helices 4 and 5 of the GTPase G-domain bind to PIP2 and identified the specific residues in these structural elements employed in these interactions, likely occurring in two K-Ras4B orientation states relative to the membrane. Importantly, we found that some of these residues known to be oncogenic when mutated (D47K, D92N, K104M, and D126N) are critical for K-Ras-mediated transformation of fibroblast cells, but do not substantially affect basal and assisted nucleotide hydrolysis and exchange. Moreover, the K104M substitution abolished localization of K-Ras to the plasma membrane. The findings suggest that specific G-domain residues can critically regulate Ras function by mediating interactions with membrane-associated PIP2 lipids; these insights that may inform the future design of therapeutic reagents targeting Ras activity.
Insights
Researchers found that specific parts of the K-Ras4B GTPase G-domain bind to the PIP2 lipid. Mutations in these areas drive cancer but don't affect nucleotide activity, suggesting new therapeutic targets for Ras-driven cancers.
Area of Science:
- Molecular biology
- Biophysics
- Cancer research
Background:
- Ras genes, particularly mutated K-Ras4B, are major drivers of human cancers.
- Understanding Ras-lipid interactions is crucial for Ras function and cancer therapy.
- Targeting oncogenic proteins is a key goal in cancer treatment.
Purpose of the Study:
- To investigate the interaction between K-Ras4B and the signaling lipid phosphatidylinositol (4,5)-phosphate (PIP2).
- To identify specific residues and structural elements involved in K-Ras4B-PIP2 binding.
- To determine the functional impact of these interactions and associated mutations on K-Ras4B activity and localization.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy
- Molecular dynamics simulations
- Biophysical assays
- Cell-biology assays
Main Results:
- Identified binding of K-Ras4B's G-domain (β2, β3 strands; helices 4, 5) to PIP2.
- Pinpointed specific residues mediating these interactions, with potential for two K-Ras4B membrane orientations.
- Found oncogenic mutations (D47K, D92N, K104M, D126N) critical for cell transformation but not nucleotide hydrolysis/exchange.
- Observed K104M mutation abolishes K-Ras4B plasma membrane localization.
Conclusions:
- Specific G-domain residues mediate K-Ras4B interactions with membrane PIP2 lipids, critically regulating Ras function.
- These findings offer insights into Ras-mediated transformation and potential therapeutic strategies.
- Targeting Ras-PIP2 interactions may represent a novel approach for cancer therapy.
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