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Platelet-derived growth factor receptor mediates activation of ras through different signaling pathways in different
T Satoh1, W J Fantl, J A Escobedo
1DNAX Research Institute of Molecular and Cellular Biology, Palo Alto, California 94304.
Abstract:
A series of pieces of evidence have shown that Ras protein acts as a transducer of the platelet-derived growth factor (PDGF) receptor-mediated signaling pathway: (i) formation of Ras.GTP is detected immediately on PDGF stimulation, and (ii) a dominant inhibitory mutant Ras, as well as a neutralizing anti-Ras antibody, can interfere with PDGF-induced responses. On the other hand, several signal transducing molecules including phosphatidylinositol 3-kinase (PI3-K), GTPase-activating protein (GAP), and phospholipase C gamma (PLC gamma) bind directly to the PDGF receptor and become tyrosine phosphorylated. Recently, it was shown that specific phosphorylated tyrosines of the PDGF receptor are responsible for interaction between the receptor and each signaling molecule. However, the roles of these signaling molecules have not been elucidated, and it remains unclear which molecules are implicated in the Ras pathway. In this study, we measured Ras activation in cell lines expressing mutant PDGF receptors that are deficient in coupling with specific molecules. In fibroblast CHO cells, a mutant receptor (Y708F/Y719F [PI3-K-binding sites]) was unable to stimulate Ras, whereas another mutant (Y739F [the GAP-binding site]) could do so, suggesting an indispensable role of PI3-K or a protein that binds to the same sites as PI3-K for PDGF-stimulated Ras activation. By contrast, both of the above mutants were capable of stimulating Ras protein in a pro-B-cell line, BaF3. Furthermore, a mutant receptor (Y977F/Y989F [PLC gamma-binding sites]) could fully activate Ras, and the direct activation of protein kinase C and calcium mobilization had almost no effect on the GDP/GTP state of Ras in this cell line. These results suggest that, in the pro-B-cell transfectants, each of the above pathways (PI3-K, GAP, and PLC gamma) can be eliminated without a loss of Ras activation. It remains unclear whether another unknown essential pathway which regulates Ras protein exists within BaF3 cells. Therefore, it is likely that several different PDGF receptor-mediated signaling pathways function upstream of Ras, and the extent of the contribution of each pathway for the regulation of Ras may differ among different cell types.
Insights
Platelet-derived growth factor (PDGF) signaling activates Ras protein. This study reveals that phosphatidylinositol 3-kinase (PI3-K) is crucial for PDGF-induced Ras activation in fibroblasts, but not in pro-B cells.
Area of Science:
- Cell signaling
- Molecular biology
- Cancer research
Background:
- Ras protein acts as a transducer in platelet-derived growth factor (PDGF) receptor signaling.
- Several molecules, including PI3-K, GAP, and PLC gamma, bind to the PDGF receptor.
- The specific roles of these molecules in Ras activation remain unclear.
Purpose of the Study:
- To investigate the roles of PI3-K, GAP, and PLC gamma in PDGF-mediated Ras activation.
- To determine cell-type specific differences in PDGF signaling pathways.
Main Methods:
- Utilized mutant PDGF receptors deficient in binding specific signaling molecules.
- Measured Ras activation in CHO fibroblast and BaF3 pro-B cell lines.
- Assessed the impact of specific receptor mutations on Ras activation.
Main Results:
- In CHO cells, a mutant lacking PI3-K binding sites abolished Ras activation, while a GAP-binding site mutant retained Ras activation.
- In BaF3 cells, both PI3-K and GAP binding site mutants retained Ras activation.
- A PLC gamma binding site mutant fully activated Ras in BaF3 cells.
Conclusions:
- PI3-K is essential for PDGF-stimulated Ras activation in fibroblasts.
- Ras activation by PDGF in pro-B cells is independent of PI3-K, GAP, and PLC gamma binding sites.
- Multiple, cell-type specific signaling pathways likely regulate Ras activation downstream of the PDGF receptor.