Ret oncogene signal transduction via a IRS-2/PI 3-kinase/PKB and a SHC/Grb-2 dependent pathway: possible implication

A M Hennige1, R Lammers, D Arlt

  • 1Medizinische Klinik und Poliklinik, Universität Tübingen, Abt. Innere 4, Otfried-Müller-Str. 10, D-72076, Tübingen, Germany.

Insights

A specific Ret gene mutation causing Multiple Endocrine Neoplasia 2A (MEN 2A) leads to uncontrolled cell growth by activating key signaling pathways like MAPK and PI3K/AKT, promoting gene transcription.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Multiple Endocrine Neoplasia 2A (MEN 2A) is an inherited disorder linked to RET proto-oncogene mutations.
  • The precise signaling mechanisms activated by RET oncogenic mutations remain incompletely understood.

Purpose of the Study:

  • To investigate the signaling properties of a specific RET-9bp duplication (encoding amino acids 634-636) found in a MEN 2A patient.
  • To elucidate the intracellular pathways activated by this RET mutation contributing to cellular transformation.

Main Methods:

  • Utilized NIH3T3 cells expressing the RET-9bp duplication.
  • Assessed cell proliferation and transformation using thymidine incorporation and soft agar assays.
  • Analyzed intracellular signaling by Western blotting for protein phosphorylation and activation of key kinases and transcription factors.

Main Results:

  • The RET-9bp duplication resulted in constitutive RET tyrosine kinase activation, increased mitogenic and transforming activity.
  • Demonstrated RET-9bp-dependent activation of the IRS-2/PI3K/PKB(AKT) pathway.
  • Showed RET-9bp-induced SHC phosphorylation, leading to MAPK pathway activation.
  • Identified activation of c-jun and jun-D transcription factors in the nucleus.

Conclusions:

  • The oncogenic RET-9bp duplication causes ligand-independent RET activation and dimer formation.
  • This mutation activates both MAPK and IRS-2/PI3K/PKB(AKT) signaling cascades.
  • The activated pathways ultimately lead to enhanced gene transcription via the jun/AP-1 family, driving oncogenesis.

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