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Updated: Mar 18, 2026

Author Spotlight: Integrating BRET-Based Assays and Rare Mutation Analysis to Decipher RAF Kinase Regulation in Live Cells
Published on: March 1, 2024
Stabilization of C-RAF:KSR1 complex by DiRas3 reduces availability of C-RAF for dimerization with B-RAF
Angela Baljuls1, Maciej Dobrzyński2, Jens Rauch2
1Systems Biology Ireland, University College Dublin, Dublin 4, Ireland; Boehringer-Ingelheim Pharma, Birkendorfer Strasse 65, 88400 Biberach an der Riss, Germany.
Abstract:
RAF family kinases are central components of the Ras-RAF-MEK-ERK cascade. Dimerization is a key mechanism of RAF activation in response to physiological, pathological and pharmacological signals. It is mediated by a dimer interface region in the RAF kinase domain that is also conserved in KSR, a scaffolding protein that binds RAF, MEK and ERK. The regulation of RAF dimerization is incompletely understood. Especially little is known about the molecular mechanism involved in the selection of the dimerization partner. Previously, we reported that Ras-dependent binding of the tumour suppressor DiRas3 to C-RAF inhibits the C-RAF:B-RAF heterodimerization. Here we show that DiRas3 binds to KSR1 independently of its interaction with activated Ras and RAF. Our data also suggest that depending on the local stoichiometry between DiRas3 and oncogenic Ras, DiRas3 can either enhance homodimerization of KSR1 or recruit KSR1 to the Ras:C-RAF complex and thereby reduce the availability of C-RAF for binding to B-RAF. This mechanism, which is shared between A-RAF and C-RAF, may be involved in the regulation of Ras12V-induced cell transformation by DiRas3.
Insights
The tumor suppressor DiRas3 binds KSR1, influencing RAF-MEK-ERK pathway signaling. DiRas3 regulates RAF dimerization by modulating KSR1 interactions, impacting cell transformation.
Area of Science:
- Cellular signaling pathways
- Molecular biology
- Cancer research
Background:
- RAF kinases are key in the Ras-RAF-MEK-ERK cascade.
- RAF dimerization activates the pathway but its regulation is unclear.
- DiRas3 previously inhibited C-RAF:B-RAF heterodimerization.
Purpose of the Study:
- Investigate DiRas3's role in RAF dimerization partner selection.
- Elucidate the molecular mechanism of DiRas3-KSR1 interaction.
- Determine how DiRas3 affects KSR1 and RAF complex formation.
Main Methods:
- Biochemical assays to study protein interactions.
- Analysis of DiRas3 binding to KSR1.
- Investigating the effect of DiRas3 on KSR1 homodimerization and Ras:C-RAF complex formation.
Main Results:
- DiRas3 binds KSR1 independently of Ras and RAF.
- DiRas3 can promote KSR1 homodimerization or recruit KSR1 to Ras:C-RAF complexes.
- These effects depend on the stoichiometry of DiRas3 and oncogenic Ras.
- The mechanism is conserved between A-RAF and C-RAF.
Conclusions:
- DiRas3 regulates RAF dimerization through KSR1.
- DiRas3's interaction with KSR1 modulates pathway activity.
- This mechanism may control Ras12V-induced cell transformation.
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