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.

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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