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Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
RAF inhibitors transactivate RAF dimers and ERK signalling in cells with wild-type BRAF
Poulikos I Poulikakos1, Chao Zhang, Gideon Bollag
1Program in Molecular Pharmacology and Chemistry and Department of Medicine, Memorial Sloan-Kettering Cancer Center, New York, New York 10065, USA.
Abstract:
Tumours with mutant BRAF are dependent on the RAF-MEK-ERK signalling pathway for their growth. We found that ATP-competitive RAF inhibitors inhibit ERK signalling in cells with mutant BRAF, but unexpectedly enhance signalling in cells with wild-type BRAF. Here we demonstrate the mechanistic basis for these findings. We used chemical genetic methods to show that drug-mediated transactivation of RAF dimers is responsible for paradoxical activation of the enzyme by inhibitors. Induction of ERK signalling requires direct binding of the drug to the ATP-binding site of one kinase of the dimer and is dependent on RAS activity. Drug binding to one member of RAF homodimers (CRAF-CRAF) or heterodimers (CRAF-BRAF) inhibits one protomer, but results in transactivation of the drug-free protomer. In BRAF(V600E) tumours, RAS is not activated, thus transactivation is minimal and ERK signalling is inhibited in cells exposed to RAF inhibitors. These results indicate that RAF inhibitors will be effective in tumours in which BRAF is mutated. Furthermore, because RAF inhibitors do not inhibit ERK signalling in other cells, the model predicts that they would have a higher therapeutic index and greater antitumour activity than mitogen-activated protein kinase (MEK) inhibitors, but could also cause toxicity due to MEK/ERK activation. These predictions have been borne out in a recent clinical trial of the RAF inhibitor PLX4032 (refs 4, 5). The model indicates that promotion of RAF dimerization by elevation of wild-type RAF expression or RAS activity could lead to drug resistance in mutant BRAF tumours. In agreement with this prediction, RAF inhibitors do not inhibit ERK signalling in cells that coexpress BRAF(V600E) and mutant RAS.
Insights
RAF inhibitors block ERK signaling in BRAF-mutant tumors by preventing paradoxical activation. This mechanism explains their effectiveness and predicts a better therapeutic index compared to MEK inhibitors.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Tumors with BRAF mutations rely on the RAF-MEK-ERK pathway for growth.
- RAF inhibitors paradoxically enhance ERK signaling in wild-type BRAF cells, unlike in mutant BRAF cells.
Purpose of the Study:
- To elucidate the mechanistic basis for paradoxical ERK signaling activation by RAF inhibitors in wild-type BRAF cells.
- To understand the differential effects of RAF inhibitors in mutant versus wild-type BRAF contexts.
Main Methods:
- Utilized chemical genetic methods to investigate RAF dimer transactivation.
- Analyzed the dependence of ERK signaling induction on drug binding and RAS activity.
Main Results:
- Drug-mediated transactivation of RAF dimers causes paradoxical ERK activation by RAF inhibitors.
- ERK signaling induction requires direct drug binding to the ATP-binding site and RAS activity.
- In BRAF(V600E) tumors, minimal RAS activation leads to inhibited ERK signaling by RAF inhibitors.
Conclusions:
- RAF inhibitors are effective in BRAF-mutated tumors due to minimal paradoxical activation.
- RAF inhibitors may offer a higher therapeutic index and greater anti-tumor activity than MEK inhibitors.
- Elevated RAF expression or RAS activity can promote drug resistance in BRAF-mutant tumors.
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