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Ligand-induced phosphorylation of the murine interleukin 3 receptor signals its cleavage

A L Mui1, R J Kay, R K Humphries

  • 1Terry Fox Laboratory, British Columbia Cancer Research Centre, Vancouver, Canada.

Insights

Tyrosine phosphorylation of the beta IL-3 subunit of the murine interleukin 3 receptor (mIL-3R) leads to rapid degradation. This instability, caused by phosphotyrosine and phosphoserine residues, occurs quickly in cells after mIL-3 binding.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Immunology

Background:

  • The murine interleukin 3 receptor (mIL-3R) is a heterodimer composed of an alpha subunit and a beta subunit (beta IL-3 or beta c).
  • The beta IL-3 subunit binds mIL-3 directly and undergoes tyrosine phosphorylation upon ligand binding, despite the receptor lacking intrinsic tyrosine kinase activity.

Purpose of the Study:

  • To investigate the properties and stability of the tyrosine-phosphorylated beta IL-3 subunit.
  • To understand the mechanism and cellular location of beta IL-3 subunit degradation following mIL-3 stimulation.

Main Methods:

  • Purification of the beta IL-3 subunit from the B6SUtA1 cell line.
  • Comparative stability studies of phosphorylated and non-phosphorylated beta IL-3.
  • Protease susceptibility assays and phosphatase treatments.
  • Western blot analysis using an anti-N-terminal mIL-3R beta IL-3 chain antibody on intact cells and purified plasma membranes.

Main Results:

  • The tyrosine-phosphorylated 140-kDa beta IL-3 subunit is significantly less stable and rapidly degraded to a 70-kDa fragment compared to the 120-kDa non-phosphorylated form.
  • This differential stability is due to increased protease susceptibility in the phosphorylated form, caused by both phosphotyrosine and phosphoserine residues.
  • Proteolytic cleavage occurs rapidly in intact cells within minutes at 37°C after mIL-3 stimulation, at the cell surface, and is not inhibited by chloroquine.

Conclusions:

  • Tyrosine phosphorylation of the beta IL-3 subunit triggers an intrinsic instability, leading to rapid proteolytic degradation.
  • This mIL-3-induced degradation of the beta IL-3 subunit occurs rapidly at the cell surface.
  • The degradative step may be a crucial component of the mIL-3 signaling pathway.

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