Disrupting PTPRJ transmembrane-mediated oligomerization counteracts oncogenic receptor tyrosine kinase FLT3 ITD

Marie Schwarz1, Sophie Rizzo2, Walter Espinoza Paz2

  • 1Institute for Molecular Cell Biology, CMB - Center for Molecular Biomedicine, University Hospital Jena, Jena, Germany.

Frontiers in Oncology
|December 1, 2022
PubMed

Insights

Disrupting PTPRJ self-association enhances its activity, inhibiting oncogenic FLT3 signaling and leukemic cell growth in acute myeloid leukemia (AML). This offers a potential therapeutic strategy for AML.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Cancer Research

Background:

  • PTPRJ (DEP-1) negatively regulates FLT3 signaling, acting as a tumor suppressor.
  • FLT3 ITD mutations are common in acute myeloid leukemia (AML) and drive leukemogenesis.
  • PTPRJ activity is suppressed by homodimerization via its transmembrane domain (TMD).

Purpose of the Study:

  • To investigate the therapeutic potential of disrupting PTPRJ TMD-mediated homodimerization.
  • To determine the effect of PTPRJ TMD mutants on FLT3 ITD activity in AML cells.
  • To assess the impact of PTPRJ TMD mutants on leukemic cell proliferation and transformation.

Main Methods:

  • Generated AML cell lines with inactivated endogenous PTPRJ and stable expression of PTPRJ TMD mutants.
  • Assessed FLT3 autophosphorylation and downstream signaling in cells expressing PTPRJ TMD mutants.
  • Evaluated leukemic cell proliferation and in vitro transformation assays.

Main Results:

  • PTPRJ TMD mutants diminished FLT3 autophosphorylation and downstream signaling in AML cells.
  • Expression of PTPRJ TMD mutants reduced global protein tyrosine phosphorylation.
  • PTPRJ TMD mutant proteins impaired leukemic cell proliferation and in vitro transformation.
  • Mutant PTPRJ proteins showed impaired self-association but retained phosphatase activity.

Conclusions:

  • Destabilizing PTPRJ TMD-mediated self-association enhances PTPRJ activity in situ.
  • This disruption inhibits FLT3 activity and FLT3-driven phenotypes in AML cells.
  • Targeting PTPRJ oligomerization is a potential therapeutic strategy for AML.

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