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Published on: July 17, 2019
A Raf-induced allosteric transition of KSR stimulates phosphorylation of MEK
Damian F Brennan1, Arvin C Dar, Nicholas T Hertz
1Section of Structural Biology, Institute of Cancer Research, Chester Beatty Laboratories, 237 Fulham Road, London SW3 6JB, UK.
Abstract:
In metazoans, the Ras-Raf-MEK (mitogen-activated protein-kinase kinase)-ERK (extracellular signal-regulated kinase) signalling pathway relays extracellular stimuli to elicit changes in cellular function and gene expression. Aberrant activation of this pathway through oncogenic mutations is responsible for a large proportion of human cancer. Kinase suppressor of Ras (KSR) functions as an essential scaffolding protein to coordinate the assembly of Raf-MEK-ERK complexes. Here we integrate structural and biochemical studies to understand how KSR promotes stimulatory Raf phosphorylation of MEK (refs 6, 7). We show, from the crystal structure of the kinase domain of human KSR2 (KSR2(KD)) in complex with rabbit MEK1, that interactions between KSR2(KD) and MEK1 are mediated by their respective activation segments and C-lobe αG helices. Analogous to BRAF (refs 8, 9), KSR2 self-associates through a side-to-side interface involving Arg 718, a residue identified in a genetic screen as a suppressor of Ras signalling. ATP is bound to the KSR2(KD) catalytic site, and we demonstrate KSR2 kinase activity towards MEK1 by in vitro assays and chemical genetics. In the KSR2(KD)-MEK1 complex, the activation segments of both kinases are mutually constrained, and KSR2 adopts an inactive conformation. BRAF allosterically stimulates the kinase activity of KSR2, which is dependent on formation of a side-to-side KSR2-BRAF heterodimer. Furthermore, KSR2-BRAF heterodimerization results in an increase of BRAF-induced MEK phosphorylation via the KSR2-mediated relay of a signal from BRAF to release the activation segment of MEK for phosphorylation. We propose that KSR interacts with a regulatory Raf molecule in cis to induce a conformational switch of MEK, facilitating MEK's phosphorylation by a separate catalytic Raf molecule in trans.
Insights
Kinase suppressor of Ras (KSR) scaffolds Raf-MEK-ERK signaling. Structural and biochemical studies reveal KSR2-BRAF heterodimers activate MEK phosphorylation, offering cancer therapy insights.
Area of Science:
- Molecular Biology
- Cell Signaling
- Structural Biology
Background:
- The Ras-Raf-MEK-ERK pathway is crucial for cellular functions and gene expression.
- Aberrant activation of this pathway drives a significant portion of human cancers.
- Kinase suppressor of Ras (KSR) proteins act as scaffolds, organizing Raf-MEK-ERK complexes.
Purpose of the Study:
- To elucidate the structural and biochemical mechanisms by which KSR promotes Raf-mediated MEK phosphorylation.
- To understand the role of KSR2 in coordinating the Raf-MEK-ERK signaling cascade.
Main Methods:
- X-ray crystallography of human KSR2 kinase domain (KSR2(KD)) complexed with MEK1.
- Biochemical assays to demonstrate KSR2 kinase activity.
- In vitro assays and chemical genetics.
- Analysis of KSR2-BRAF heterodimerization and its effect on MEK phosphorylation.
Main Results:
- Crystal structure reveals KSR2(KD)-MEK1 interactions mediated by activation segments and αG helices.
- KSR2 self-associates via Arg718, and ATP binds to the KSR2(KD) catalytic site.
- KSR2 exhibits kinase activity towards MEK1.
- BRAF allosterically stimulates KSR2 activity through KSR2-BRAF heterodimerization.
- KSR2-BRAF heterodimers enhance BRAF-induced MEK phosphorylation by facilitating MEK activation segment release.
Conclusions:
- KSR acts as a scaffold to facilitate MEK phosphorylation by Raf kinases.
- KSR-BRAF heterodimerization is critical for efficient MEK activation.
- This mechanism involves KSR relaying a signal from BRAF to MEK, promoting a conformational switch in MEK.
- The findings provide insights into the regulation of the Ras-Raf-MEK-ERK pathway and potential therapeutic targets for cancer.
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