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Updated: Feb 3, 2026

Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
SHOC2-MRAS-PP1 complex positively regulates RAF activity and contributes to Noonan syndrome pathogenesis
Lucy C Young1, Nicole Hartig1, Isabel Boned Del Río1
1University College London Cancer Institute, University College London, London WC1E 6DD, United Kingdom.
Abstract:
Dephosphorylation of the inhibitory "S259" site on RAF kinases (S259 on CRAF, S365 on BRAF) plays a key role in RAF activation. The MRAS GTPase, a close relative of RAS oncoproteins, interacts with SHOC2 and protein phosphatase 1 (PP1) to form a heterotrimeric holoenzyme that dephosphorylates this S259 RAF site. MRAS and SHOC2 function as PP1 regulatory subunits providing the complex with striking specificity against RAF. MRAS also functions as a targeting subunit as membrane localization is required for efficient RAF dephosphorylation and ERK pathway regulation in cells. SHOC2's predicted structure shows remarkable similarities to the A subunit of PP2A, suggesting a case of convergent structural evolution with the PP2A heterotrimer. We have identified multiple regions in SHOC2 involved in complex formation as well as residues in MRAS switch I and the interswitch region that help account for MRAS's unique effector specificity for SHOC2-PP1. MRAS, SHOC2, and PPP1CB are mutated in Noonan syndrome, and we show that syndromic mutations invariably promote complex formation with each other, but not necessarily with other interactors. Thus, Noonan syndrome in individuals with SHOC2, MRAS, or PPPC1B mutations is likely driven at the biochemical level by enhanced ternary complex formation and highlights the crucial role of this phosphatase holoenzyme in RAF S259 dephosphorylation, ERK pathway dynamics, and normal human development.
Insights
The MRAS-SHOC2-PP1 complex dephosphorylates RAF kinases, activating the ERK pathway. Mutations in this complex cause Noonan syndrome by enhancing its formation.
Area of Science:
- Molecular biology
- Cell signaling
- Biochemistry
Background:
- Dephosphorylation of RAF kinases at specific sites like S259 is crucial for RAF activation.
- The MRAS GTPase, SHOC2, and protein phosphatase 1 (PP1) form a complex that targets RAF.
- RAS oncoproteins and their relatives regulate cellular signaling pathways.
Purpose of the Study:
- To elucidate the mechanism by which the MRAS-SHOC2-PP1 complex regulates RAF kinase activity.
- To investigate the structural basis for the specificity of this complex towards RAF.
- To determine the role of mutations in MRAS, SHOC2, and PPP1CB in Noonan syndrome.
Main Methods:
- Biochemical assays to study protein interactions and phosphatase activity.
- Structural prediction and analysis of SHOC2.
- Analysis of mutations in Noonan syndrome patient samples.
Main Results:
- The MRAS-SHOC2-PP1 complex specifically dephosphorylates RAF kinases at the inhibitory S259 site.
- MRAS acts as a targeting subunit, requiring membrane localization for efficient RAF dephosphorylation.
- SHOC2 shares structural similarities with PP2A, suggesting convergent evolution.
- Syndromic mutations in MRAS, SHOC2, and PPP1CB enhance ternary complex formation.
Conclusions:
- The MRAS-SHOC2-PP1 holoenzyme is a key regulator of RAF S259 dephosphorylation and ERK pathway signaling.
- Enhanced formation of this complex due to mutations underlies the pathogenesis of Noonan syndrome.
- This complex plays a critical role in normal human development.
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