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The platelet-derived growth factor beta-receptor kinase insert confers specific signaling properties to a chimeric
S Wennström1, E Landgren, P Blume-Jensen
1Ludwig Institute for Cancer Research, Uppsala Branch, Sweden.
Abstract:
Signal transduction by tyrosine kinase growth factor receptors involves ligand-induced phosphorylation of substrates for the kinase, resulting in mediation of common or receptor-specific biological signals. We have compared signal transduction pathways for the fibroblast growth factor receptor-1 (FGFR-1), the platelet-derived growth factor beta-receptor (PDGFR-beta), and a chimeric FGFR-1 molecule, FGFRchim, in which the FGFR-1 kinase insert was replaced with that of the PDGFR-beta. The different receptors were characterized and found to be functional as ligand-stimulatable kinases, after expression of the respective human cDNAs in porcine aortic endothelial cells. Substrates for the receptors were analyzed by ligand stimulation of [32P]orthophosphate-labeled cells and immunoprecipitation with phosphotyrosine antiserum. A number of phosphoproteins were induced in all the different types of cells, but components specifically induced after stimulation of FGFR-1 and PDGFR-beta expressing cells could also be detected. Examination of receptor-associated substrates by in vitro kinase assays revealed phosphoproteins of 65 and 85 kDa, which were associated with PDGFR-beta and FGFRchim, but not with FGFR-1. The 85-kDa phosphoprotein could correspond to the regulatory subunit of phosphatidylinositol 3' kinase (PI3-K), since phosphatidylinositol 3' kinase activity was detected after ligand stimulation of FGFRchim- and PDGFR-beta- but not FGFR-1-expressing cells. In addition, ligand stimulation of FGFRchim- and PDGFR-beta-expressing cells, but not FGFR-1-expressing cells, led to induction of actin reorganization in the form of circular membrane ruffling. Thus, replacement of a discrete segment of the intracellular domain of the FGFR-1 with the corresponding stretch from the PDGFR-beta resulted in transfer of PDGFR-beta-specific signaling properties to the chimeric molecule.
Insights
This study compares fibroblast growth factor receptor-1 (FGFR-1) and platelet-derived growth factor beta-receptor (PDGFR-beta) signaling. Replacing a segment of FGFR-1 with PDGFR-beta transferred PDGFR-beta
Area of Science:
- Cellular signaling
- Molecular biology
- Receptor tyrosine kinases
Background:
- Tyrosine kinase growth factor receptors mediate biological signals through ligand-induced phosphorylation.
- Understanding receptor-specific signaling pathways is crucial for deciphering cellular responses.
Purpose of the Study:
- To compare signal transduction pathways of FGFR-1, PDGFR-beta, and a chimeric FGFR-1 (FGFRchim) molecule.
- To investigate how replacing the kinase insert of FGFR-1 with that of PDGFR-beta affects signaling.
- To identify receptor-specific substrates and downstream effects.
Main Methods:
- Expression of human FGFR-1, PDGFR-beta, and FGFRchim cDNAs in porcine aortic endothelial cells.
- Ligand stimulation of [32P]orthophosphate-labeled cells followed by immunoprecipitation with phosphotyrosine antiserum.
- In vitro kinase assays to examine receptor-associated substrates.
- Assessing phosphatidylinositol 3' kinase (PI3-K) activity and actin reorganization.
Main Results:
- FGFR-1, PDGFR-beta, and FGFRchim were functional as ligand-stimulatable kinases.
- Specific phosphoproteins were induced by FGFR-1 and PDGFR-beta stimulation.
- Phosphoproteins of 65 and 85 kDa were associated with PDGFR-beta and FGFRchim, but not FGFR-1.
- PI3-K activity and actin reorganization (circular membrane ruffling) were induced by PDGFR-beta and FGFRchim, but not FGFR-1.
Conclusions:
- Replacement of a specific intracellular domain segment of FGFR-1 with the corresponding PDGFR-beta segment transferred PDGFR-beta-specific signaling properties.
- The chimeric molecule (FGFRchim) exhibited PDGFR-beta-like signaling, including PI3-K activation and actin reorganization.
- This highlights the role of specific kinase insert domains in determining receptor signaling specificity.