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Updated: May 29, 2026

Comparing the Affinity of GTPase-binding Proteins using Competition Assays
Published on: October 8, 2015
Analysis of binding site hot spots on the surface of Ras GTPase
Greg Buhrman1, Casey O'Connor, Brandon Zerbe
1Department of Molecular and Structural Biochemistry, North Carolina State University, Raleigh, NC 27695, USA.
Abstract:
We have recently discovered an allosteric switch in Ras, bringing an additional level of complexity to this GTPase whose mutants are involved in nearly 30% of cancers. Upon activation of the allosteric switch, there is a shift in helix 3/loop 7 associated with a disorder to order transition in the active site. Here, we use a combination of multiple solvent crystal structures and computational solvent mapping (FTMap) to determine binding site hot spots in the "off" and "on" allosteric states of the GTP-bound form of H-Ras. Thirteen sites are revealed, expanding possible target sites for ligand binding well beyond the active site. Comparison of FTMaps for the H and K isoforms reveals essentially identical hot spots. Furthermore, using NMR measurements of spin relaxation, we determined that K-Ras exhibits global conformational dynamics very similar to those we previously reported for H-Ras. We thus hypothesize that the global conformational rearrangement serves as a mechanism for allosteric coupling between the effector interface and remote hot spots in all Ras isoforms. At least with respect to the binding sites involving the G domain, H-Ras is an excellent model for K-Ras and probably N-Ras as well. Ras has so far been elusive as a target for drug design. The present work identifies various unexplored hot spots throughout the entire surface of Ras, extending the focus from the disordered active site to well-ordered locations that should be easier to target.
Insights
Researchers identified new drug targets on Ras proteins, which are mutated in many cancers. This discovery expands potential therapeutic strategies beyond the active site, offering new hope for Ras-targeted cancer therapies.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Ras GTPases are crucial regulators of cell signaling.
- Mutations in Ras proteins are implicated in approximately 30% of human cancers.
- Ras proteins have been challenging targets for drug development.
Purpose of the Study:
- To identify novel ligand binding sites (hot spots) on H-Ras in both inactive and active states.
- To compare binding sites and conformational dynamics between H-Ras and K-Ras.
- To explore new therapeutic strategies for Ras-driven cancers.
Main Methods:
- Utilized multiple solvent crystal structures.
- Employed computational solvent mapping (FTMap) to identify binding hot spots.
- Performed NMR measurements of spin relaxation to assess conformational dynamics.
Main Results:
- Discovered thirteen binding hot spots on H-Ras, extending beyond the traditional active site.
- Observed identical hot spots between H-Ras and K-Ras isoforms.
- Found that K-Ras exhibits global conformational dynamics similar to H-Ras.
Conclusions:
- Ras isoforms share conserved binding sites and conformational dynamics, suggesting H-Ras can model other isoforms.
- Identified numerous unexplored surface regions on Ras as potential drug targets.
- This work provides a foundation for developing novel Ras-targeted cancer therapies by expanding the druggable landscape.
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