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Updated: May 27, 2026

Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
RAF inhibitor resistance is mediated by dimerization of aberrantly spliced BRAF(V600E)
Poulikos I Poulikakos1, Yogindra Persaud, Manickam Janakiraman
1Department of Molecular Pharmacology and Chemistry, Memorial Sloan-Kettering Cancer Center, New York, New York 10065, USA.
Abstract:
Activated RAS promotes dimerization of members of the RAF kinase family. ATP-competitive RAF inhibitors activate ERK signalling by transactivating RAF dimers. In melanomas with mutant BRAF(V600E), levels of RAS activation are low and these drugs bind to BRAF(V600E) monomers and inhibit their activity. This tumour-specific inhibition of ERK signalling results in a broad therapeutic index and RAF inhibitors have remarkable clinical activity in patients with melanomas that harbour mutant BRAF(V600E). However, resistance invariably develops. Here, we identify a new resistance mechanism. We find that a subset of cells resistant to vemurafenib (PLX4032, RG7204) express a 61-kDa variant form of BRAF(V600E), p61BRAF(V600E), which lacks exons 4-8, a region that encompasses the RAS-binding domain. p61BRAF(V600E) shows enhanced dimerization in cells with low levels of RAS activation, as compared to full-length BRAF(V600E). In cells in which p61BRAF(V600E) is expressed endogenously or ectopically, ERK signalling is resistant to the RAF inhibitor. Moreover, a mutation that abolishes the dimerization of p61BRAF(V600E) restores its sensitivity to vemurafenib. Finally, we identified BRAF(V600E) splicing variants lacking the RAS-binding domain in the tumours of six of nineteen patients with acquired resistance to vemurafenib. These data support the model that inhibition of ERK signalling by RAF inhibitors is dependent on levels of RAS-GTP too low to support RAF dimerization and identify a novel mechanism of acquired resistance in patients: expression of splicing isoforms of BRAF(V600E) that dimerize in a RAS-independent manner.
Insights
A novel resistance mechanism to RAF inhibitors in melanoma involves BRAF(V600E) splicing variants. These variants promote RAS-independent dimerization, leading to ERK pathway reactivation and vemurafenib resistance in patients.
Area of Science:
- Oncology
- Molecular Biology
- Drug Resistance
Background:
- RAF inhibitors like vemurafenib are effective against BRAF(V600E) melanomas by inhibiting ERK signaling.
- Resistance to RAF inhibitors invariably develops, necessitating the identification of underlying mechanisms.
Purpose of the Study:
- To identify novel mechanisms of acquired resistance to vemurafenib in BRAF(V600E) melanoma.
- To investigate the role of BRAF(V600E) splicing variants in RAF inhibitor resistance.
Main Methods:
- Analysis of vemurafenib-resistant melanoma cells and patient tumors.
- Characterization of BRAF(V600E) splicing variants, including p61BRAF(V600E).
- Assessment of RAF dimer formation and ERK signaling pathway activity.
Main Results:
- A subset of resistant cells express p61BRAF(V600E), a variant lacking the RAS-binding domain.
- p61BRAF(V600E) exhibits enhanced, RAS-independent dimerization compared to full-length BRAF(V600E).
- Expression of p61BRAF(V600E) confers resistance to vemurafenib by maintaining ERK signaling.
Conclusions:
- Acquired resistance to vemurafenib can arise from the expression of BRAF(V600E) splicing variants.
- These variants dimerize independently of RAS, bypassing the drug's inhibitory effects.
- Targeting these splicing variants may offer new therapeutic strategies for resistant melanoma.
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