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Updated: Jan 13, 2026

Fully Processed Recombinant KRAS4b: Isolating and Characterizing the Farnesylated and Methylated Protein
Published on: January 16, 2020
Structure of SHOC2-KRAS-PP1C complex reveals RAS isoform-specific determinants and insights into targeting complex
Daniel A Bonsor1, Lorenzo I Finci1, Jacob R Potter1
1NCI RAS Initiative, Cancer Research Technology Program, Frederick National Laboratory for Cancer Research, Frederick, MD, USA.
Abstract:
RAF activation is essential for MAPK signaling and is mediated by RAS binding and the dephosphorylation of a conserved phosphoserine by the SHOC2-RAS-PP1C complex. MRAS forms a high-affinity SHOC2-MRAS-PP1C (SMP) complex, while canonical RAS isoforms (KRAS, HRAS, NRAS) form analogous but lower-affinity assemblies. Yet, cancers driven by oncogenic KRAS, HRAS, or NRAS remain strongly SHOC2-dependent, suggesting that these weaker complexes contribute to tumorigenesis. To elucidate how canonical RAS proteins form lower-affinity ternary complexes, the cryo-EM structure of the SHOC2-KRAS-PP1C (SKP) complex stabilized by Noonan syndrome mutations is described. The SKP architecture is similar to the SMP complex but forms fewer contacts and buries less surface area due to the absence of MRAS-specific structural features in KRAS that enhance complex stability. RAS inhibitors MRTX1133 and RMC-6236 alter Switch-I/II conformations, thereby blocking SKP assembly more effectively than they disrupt preformed complexes. These RAS inhibitors do not affect SMP formation because they do not bind MRAS. Since MRAS is upregulated in resistance to KRAS inhibition, we characterize a MRAS mutant capable of binding MRTX1133. This MRAS mutant can form an SMP complex, but MRTX1133 blocks its assembly, demonstrating the feasibility of dual SKP and SMP targeting. Overall, our findings define isoform-specific differences in SHOC2-RAS-PP1C complex formation and support a strategy to prevent both SKP and SMP assemblies to overcome resistance in RAS-driven cancers.
Insights
This study reveals how canonical RAS proteins form weaker complexes with SHOC2-PP1C, impacting cancer. Targeting both canonical RAS (SKP) and MRAS (SMP) complexes offers a strategy to overcome drug resistance in RAS-driven cancers.
Area of Science:
- Molecular Biology
- Structural Biology
- Oncology
Background:
- RAF activation, crucial for MAPK signaling, involves the SHOC2-RAS-PP1C complex.
- Canonical RAS isoforms (KRAS, HRAS, NRAS) form lower-affinity complexes than MRAS, yet drive SHOC2-dependent cancers.
Purpose of the Study:
- To elucidate the structural basis of lower-affinity SHOC2-canonical RAS-PP1C complex formation.
- To investigate the potential of dual targeting of SHOC2-RAS-PP1C complexes for cancer therapy.
Main Methods:
- Cryo-electron microscopy (cryo-EM) to determine the structure of the SHOC2-KRAS-PP1C complex.
- Biochemical assays to assess the impact of RAS inhibitors on complex formation.
- Characterization of a MRAS mutant for dual targeting strategies.
Main Results:
- The SHOC2-KRAS-PP1C (SKP) complex architecture differs from the SHOC2-MRAS-PP1C (SMP) complex, with fewer contacts and less buried surface area.
- RAS inhibitors MRTX1133 and RMC-6236 effectively block SKP assembly by altering RAS Switch-I/II conformations.
- These inhibitors do not affect SMP formation as they do not bind MRAS, but a MRAS mutant susceptible to MRTX1133 demonstrates feasibility of dual targeting.
Conclusions:
- Isoform-specific differences in SHOC2-RAS-PP1C complex formation are defined.
- Dual targeting of both SKP and SMP assemblies presents a promising strategy to overcome resistance in RAS-driven cancers.
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