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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.
Abstract:
The murine interleukin 3 receptor (mIL-3R) is a heterodimer consisting of a 70-kDa alpha subunit and one of two alternative 120-kDa beta subunits termed beta IL-3 and beta c. beta IL-3 (originally called Aic2A) is capable of binding mIL-3 by itself, whereas beta c (Aic2B) does not bind any ligand on its own but increases the affinity of mIL-3, murine granulocyte/macrophage-colony-stimulating factor, and mIL-5 for their respective alpha subunits. Interestingly, although the mIL-3R does not possess tyrosine kinase activity, its beta IL-3 subunit does become tyrosine phosphorylated upon binding mIL-3. To further investigate the properties of this subunit, we have purified it from the cell line B6SUtA1, which expresses a high level of mIL-3R. Intriguingly, studies comparing the stability of the 140-kDa, tyrosine-phosphorylated form of this subunit with its 120-kDa, non-tyrosine-phosphorylated form reveal that the former is far less stable and is rapidly degraded to a 70-kDa fragment. Mixing experiments demonstrate that the differential stability of the two forms is due to an intrinsic difference in protease susceptibility. Phosphatase studies indicate that the higher protease susceptibility of the tyrosine-phosphorylated beta IL-3 is due to the presence of both phosphotyrosine and phosphoserine residues. Western analyses using an anti-N-terminal mIL-3R beta IL-3 chain antibody reveal that this proteolytic cleavage also occurs rapidly in intact cells following stimulation with mIL-3 and occurs at the cell surface, since it takes place within minutes at 37 degrees C, is observed with purified plasma membranes, and is not inhibited by chloroquine. This degradative step may play an important role in the mechanism of action of mIL-3.
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.