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Structural basis for SHOC2 modulation of RAS signalling
Nicholas P D Liau1, Matthew C Johnson1, Saeed Izadi2
1Department of Structural Biology, Genentech, South San Francisco, CA, USA.
Abstract:
The RAS-RAF pathway is one of the most commonly dysregulated in human cancers1-3. Despite decades of study, understanding of the molecular mechanisms underlying dimerization and activation4 of the kinase RAF remains limited. Recent structures of inactive RAF monomer5 and active RAF dimer5-8 bound to 14-3-39,10 have revealed the mechanisms by which 14-3-3 stabilizes both RAF conformations via specific phosphoserine residues. Prior to RAF dimerization, the protein phosphatase 1 catalytic subunit (PP1C) must dephosphorylate the N-terminal phosphoserine (NTpS) of RAF11 to relieve inhibition by 14-3-3, although PP1C in isolation lacks intrinsic substrate selectivity. SHOC2 is as an essential scaffolding protein that engages both PP1C and RAS to dephosphorylate RAF NTpS11-13, but the structure of SHOC2 and the architecture of the presumptive SHOC2-PP1C-RAS complex remain unknown. Here we present a cryo-electron microscopy structure of the SHOC2-PP1C-MRAS complex to an overall resolution of 3 Å, revealing a tripartite molecular architecture in which a crescent-shaped SHOC2 acts as a cradle and brings together PP1C and MRAS. Our work demonstrates the GTP dependence of multiple RAS isoforms for complex formation, delineates the RAS-isoform preference for complex assembly, and uncovers how the SHOC2 scaffold and RAS collectively drive specificity of PP1C for RAF NTpS. Our data indicate that disease-relevant mutations affect complex assembly, reveal the simultaneous requirement of two RAS molecules for RAF activation, and establish rational avenues for discovery of new classes of inhibitors to target this pathway.
Insights
The RAS-RAF pathway, crucial in cancer, is better understood through the SHOC2-PP1C-RAS complex structure. This reveals how SHOC2 scaffolds RAS and PP1C to activate RAF, offering new therapeutic targets.
Area of Science:
- Molecular biology
- Structural biology
- Cancer research
Background:
- The RAS-RAF pathway is frequently dysregulated in human cancers.
- Mechanisms of RAF kinase dimerization and activation are not fully understood.
- 14-3-3 protein stabilizes RAF conformations, but PP1C is needed for dephosphorylation prior to dimerization.
Purpose of the Study:
- To elucidate the structure of the SHOC2-PP1C-RAS complex.
- To understand the role of SHOC2 as a scaffolding protein in RAF activation.
- To identify how RAS isoforms and SHOC2 influence PP1C specificity for RAF.
Main Methods:
- Cryo-electron microscopy (cryo-EM) was used to determine the structure of the SHOC2-PP1C-MRAS complex.
- Analysis of GTP dependence and RAS isoform preference for complex formation.
- Investigation of disease-relevant mutations' impact on complex assembly.
Main Results:
- A tripartite molecular architecture of the SHOC2-PP1C-MRAS complex was revealed at 3 Å resolution.
- SHOC2 acts as a scaffold, bringing PP1C and MRAS together.
- The study demonstrated GTP dependence of RAS isoforms and identified SHOC2 and RAS as drivers of PP1C specificity for RAF NTpS.
Conclusions:
- The structure provides insights into the molecular mechanisms of RAF activation.
- Disease-associated mutations can disrupt complex assembly.
- The findings suggest a requirement for two RAS molecules for RAF activation and open avenues for targeted inhibitor development.
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