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Updated: Sep 11, 2025

Author Spotlight: Integrating BRET-Based Assays and Rare Mutation Analysis to Decipher RAF Kinase Regulation in Live Cells
Published on: March 1, 2024
Free energy and flexibility analysis of autoinhibited human BRAF
Jeremy O B Tempkin1, Fikret Aydin1, Sebnem Essiz2
1Physical and Life Sciences Directorate, Lawrence Livermore National Laboratory, Livermore, CA 94550, USA.
Abstract:
The RAF serine/threonine protein kinases function as direct effectors of RAS in the intracellular transmission of extracellular growth signals, and they are key targets for drug discovery given the high incidence of oncogenic mutations in RAF and other components of this signaling pathway. In its inactive state, RAF is held in an autoinhibited conformation in the cytosol through a combination of intramolecular interactions and binding to a regulatory 14-3-3 protein dimer. Activation of RAF is initiated by its interaction with membrane-localized, GTP-bound RAS, which induces conformational changes that release RAF from its autoinhibited state. However, the molecular mechanisms governing RAF activation remain incomplete, largely due to the challenges in experimentally capturing intermediate conformational states in this process. To address this gap, we developed a comprehensive all-atom model of BRAF based on existing cryo-EM structures. Using this model, we performed extensive molecular dynamics simulations to evaluate the stability and free energy landscape of autoinhibited BRAF in solution. Our analysis reveals conformational flexibility within the autoinhibited complex, suggesting that this dynamic behavior may play a role in facilitating BRAF activation upon engagement with membrane-bound RAS.
Insights
RAF proteins are crucial for cell signaling and cancer drug discovery. This study reveals that the inactive RAF protein is flexible, which may help it activate when interacting with RAS proteins.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Signaling
Background:
- RAF serine/threonine protein kinases are direct RAS effectors in signal transmission.
- RAF proteins are key drug targets due to frequent oncogenic mutations.
- RAF is inactive in an autoinhibited conformation, stabilized by intramolecular interactions and 14-3-3 proteins.
Purpose of the Study:
- To investigate the molecular mechanisms of RAF activation.
- To explore the conformational dynamics of autoinhibited BRAF.
- To understand how RAF releases from its autoinhibited state upon RAS interaction.
Main Methods:
- Developed an all-atom model of BRAF using cryo-electron microscopy (cryo-EM) structures.
- Performed extensive molecular dynamics (MD) simulations.
- Analyzed the stability and free energy landscape of autoinhibited BRAF.
Main Results:
- The study revealed significant conformational flexibility within the autoinhibited BRAF complex.
- The free energy landscape indicated dynamic behavior in the inactive state.
- This flexibility suggests a mechanism for facilitating activation upon RAS binding.
Conclusions:
- Conformational flexibility in autoinhibited BRAF is a key feature.
- This dynamic behavior likely plays a role in the activation process initiated by RAS.
- Further understanding of RAF dynamics can inform drug discovery efforts targeting this pathway.
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