Ras-specific exchange factor GRF: oligomerization through its Dbl homology domain and calcium-dependent activation of

P H Anborgh1, X Qian, A G Papageorge

  • 1Laboratory of Cellular Oncology, National Cancer Institute, Bethesda, Maryland 20892, USA.

Insights

Ras-GRF1 and Ras-GRF2 proteins form homo- and hetero-oligomers via their Dbl homology domains. Impaired oligomer formation in Ras-GRF1 disrupts Erk and Raf signaling pathways.

Area of Science:

  • Molecular Biology
  • Cell Signaling

Background:

  • Ras-GRF1 (GRF1) and Ras-GRF2 (GRF2) are Ras-specific exchange factors found in the brain.
  • These proteins activate Erk mitogen-activated protein kinase activity in response to ionomycin.
  • Each GRF protein contains a Dbl homology (DH) domain, crucial for protein interactions.

Purpose of the Study:

  • To investigate the role of DH domains in GRF1 and GRF2 interactions.
  • To identify proteins that associate with the DH domain of GRF1.
  • To understand the functional consequences of GRF1 oligomerization on its biological activity.

Main Methods:

  • Yeast two-hybrid screening to identify interacting partners of the GRF1 DH domain.
  • Deletion analysis and site-directed mutagenesis to map interaction domains.
  • Analysis of homo- and hetero-oligomer formation in cell extracts and cultured cells.
  • Assays for focus-forming activity and ionomycin-dependent Erk activation.

Main Results:

  • A yeast two-hybrid screen identified the GRF2 DH domain interacting with the GRF1 DH domain.
  • Oligomerization requires the DH domains, with specific mutations (L263Q) abolishing interaction.
  • GRF1 and GRF2 form homo- and hetero-oligomers in vivo.
  • Mutations disrupting oligomer formation impair GRF1's focus-forming activity and ionomycin-dependent Erk activation.

Conclusions:

  • Ras-GRF1 and Ras-GRF2 form homo- and hetero-oligomers through their DH domains.
  • Disruption of GRF1 oligomerization leads to impaired biological and signaling functions.
  • GRF1 activates Raf through Ras-dependent and ionomycin-induced pathways in 293T cells.

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