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Updated: Nov 24, 2025

Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Inhibition of RAF dimers: it takes two to tango
1Signalling Programme, The Babraham Institute, Babraham Research Campus, Cambridge CB22 3AT, U.K.
Abstract:
The RAS-regulated RAF-MEK1/2-ERK1/2 pathway promotes cell proliferation and survival and RAS and BRAF proteins are commonly mutated in cancer. This has fuelled the development of small molecule kinase inhibitors including ATP-competitive RAF inhibitors. Type I and type I½ ATP-competitive RAF inhibitors are effective in BRAFV600E/K-mutant cancer cells. However, in RAS-mutant cells these compounds instead promote RAS-dependent dimerisation and paradoxical activation of wild-type RAF proteins. RAF dimerisation is mediated by two key regions within each RAF protein; the RKTR motif of the αC-helix and the NtA-region of the dimer partner. Dimer formation requires the adoption of a closed, active kinase conformation which can be induced by RAS-dependent activation of RAF or by the binding of type I and I½ RAF inhibitors. Binding of type I or I½ RAF inhibitors to one dimer partner reduces the binding affinity of the other, thereby leaving a single dimer partner uninhibited and able to activate MEK. To overcome this paradox two classes of drug are currently under development; type II pan-RAF inhibitors that induce RAF dimer formation but bind both dimer partners thus allowing effective inhibition of both wild-type RAF dimer partners and monomeric active class I mutant RAF, and the recently developed "paradox breakers" which interrupt BRAF dimerisation through disruption of the αC-helix. Here we review the regulation of RAF proteins, including RAF dimers, and the progress towards effective targeting of the wild-type RAF proteins.
Insights
Targeting cancer cell proliferation requires understanding RAF protein regulation. New drugs aim to overcome paradoxical RAF activation in RAS-mutant cancers by inhibiting RAF dimers.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- The RAS-RAF-MEK-ERK pathway is crucial for cell proliferation and survival.
- Mutations in RAS and BRAF proteins are common in various cancers.
- ATP-competitive RAF inhibitors are used to treat BRAFV600E/K-mutant cancers.
Purpose of the Study:
- To review RAF protein regulation, focusing on RAF dimers.
- To discuss the paradoxical activation of RAF proteins in RAS-mutant cancers.
- To explore strategies for targeting wild-type RAF proteins.
Main Methods:
- Review of existing literature on RAF protein regulation and kinase inhibitors.
- Analysis of mechanisms underlying RAF dimerisation and paradoxical activation.
- Discussion of current and emerging therapeutic strategies.
Main Results:
- Type I and I½ RAF inhibitors are effective in BRAFV600E/K-mutant cells but paradoxically activate RAF in RAS-mutant cells.
- RAF dimerisation, mediated by RKTR and NtA regions, leads to paradoxical activation.
- New drug classes, including type II pan-RAF inhibitors and "paradox breakers," are being developed to overcome this.
- Type II inhibitors bind both RAF dimer partners, while "paradox breakers" disrupt dimerisation.
Conclusions:
- Effective targeting of RAF proteins in cancer requires addressing paradoxical activation in RAS-mutant cells.
- Developing inhibitors that target RAF dimers or disrupt dimerisation is crucial.
- Further research into RAF protein regulation and inhibitor development is needed for improved cancer therapies.
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