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Development of Allosteric BRAF Peptide Inhibitors Targeting the Dimer Interface of BRAF
Amber Y Gunderwala1, Anushri A Nimbvikar1, Nicholas J Cope1
1Department of Chemistry & Biochemistry , University of the Sciences , Philadelphia , Pennsylvania 19104 , United States.
Abstract:
BRAF is the most frequently mutated kinase in human cancers and is one of the major effectors of oncogenic RAS, making BRAF a target of considerable interest for anticancer drug development. Wild-type BRAF and a variety of oncogenic BRAF mutants are dependent on dimerization of the kinase domain, which also emerges as a culprit of drug resistance and side effects of current BRAF therapies. Thus, allosteric BRAF inhibitors capable of disrupting BRAF dimers could abrogate hyperactivated MAPK (mitogen-activated protein kinase) signaling driven by oncogenic BRAF or RAS and overcome the major limitations of current BRAF inhibitors. To establish this, we applied an in silico approach to design a series of peptide inhibitors targeting the dimer interface of BRAF. One resulting inhibitor was found to potently inhibit the kinase activity of BRAF homo- and heterodimers, including oncogenic BRAFG469A mutant. Moreover, this inhibitor synergizes with FDA-approved, ATP-competitive BRAF inhibitors against dimeric BRAF, suggesting that allosteric BRAF inhibitors have great potential to extend the application of current BRAF therapies. Additionally, targeting the dimer interface of BRAF kinase leads to protein degradation of both RAF and MEK, uncovering a novel scaffolding function of RAF in protecting large MAPK complexes from protein degradation. In conclusion, we have developed a potent lead peptide inhibitor for targeting the dimer interface of BRAF in cancer cells. The dual function of this peptide inhibitor validates the strategy for developing allosteric BRAF inhibitors that specifically dissociate RAF dimers and destabilize the MAPK signaling complex.
Insights
Researchers developed a novel peptide inhibitor targeting BRAF dimers to combat cancer. This allosteric inhibitor disrupts cancer signaling and enhances existing therapies, offering new hope for BRAF-mutated cancers.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- BRAF kinase is frequently mutated in cancers and drives oncogenic signaling.
- BRAF dimerization is crucial for its activity and a source of drug resistance.
- Current BRAF inhibitors face limitations due to resistance and side effects.
Purpose of the Study:
- To design and validate allosteric BRAF inhibitors targeting the kinase domain dimer interface.
- To overcome limitations of current ATP-competitive BRAF inhibitors.
- To explore novel therapeutic strategies for BRAF-driven cancers.
Main Methods:
- In silico design of peptide inhibitors targeting the BRAF dimer interface.
- Biochemical assays to assess kinase inhibition of wild-type and mutant BRAF dimers.
- Combination studies with FDA-approved BRAF inhibitors.
- Analysis of protein degradation pathways.
Main Results:
- A potent peptide inhibitor was identified that disrupts BRAF homo- and heterodimers, including oncogenic mutants.
- The inhibitor synergizes with existing BRAF therapies, enhancing efficacy.
- Targeting the BRAF dimer interface induces protein degradation of RAF and MEK.
- A novel scaffolding role for RAF in protecting MAPK complexes was uncovered.
Conclusions:
- Developed a potent lead peptide inhibitor targeting the BRAF dimer interface.
- Validated allosteric inhibition as a strategy to dissociate RAF dimers and destabilize MAPK signaling.
- Demonstrated potential for allosteric inhibitors to overcome resistance and improve BRAF-targeted therapies.
- Uncovered a new mechanism involving RAF scaffolding and protein degradation.
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