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Effect of a dominant inhibitory Ha-ras mutation on mitogenic signal transduction in NIH 3T3 cells
H Cai1, J Szeberényi, G M Cooper
1Dana-Farber Cancer Institute, Harvard Medical School, Boston, Massachusetts 02115.
Abstract:
We used a dominant inhibitory mutation of c-Ha-ras which changes Ser-17 to Asn-17 in the gene product p21 [p21(Asn-17)Ha-ras] to investigate ras function in mitogenic signal transduction. An NIH 3T3 cell line [NIH(M17)] was isolated that displayed inducible expression of the mutant Ha-ras gene (Ha-ras Asn-17) via the mouse mammary tumor virus long terminal repeat and was growth inhibited by dexamethasone. The effect of dexamethasone induction on response of quiescent NIH(M17) cells to mitogens was then analyzed. Stimulation of DNA synthesis by epidermal growth factor (EGF) and 12-O-tetradecanoylphorbol-13-acetate (TPA) was completely blocked by p21(Asn-17) expression, and stimulation by serum, fibroblast growth factor, and platelet-derived growth factor was partially inhibited. However, the induction of fos, jun, and myc by EGF and TPA was not significantly inhibited in this cell line. An effect of p21(Asn-17) on fos induction was, however, demonstrated in transient expression assays in which quiescent NIH 3T3 cells were cotransfected with a fos-cat receptor plasmid plus a Ha-ras Asn-17 expression vector. In this assay, p21(Asn-17) inhibited chloramphenicol acetyltransferase expression induced by EGF and other growth factors. In contrast to its effect on DNA synthesis, however, Ha-ras Asn-17 expression did not inhibit fos-cat expression induced by TPA. Conversely, downregulation of protein kinase C did not inhibit fos-cat induction by activated ras or other oncogenes. These results suggest that ras proteins are involved in at least two parallel mitogenic signal transduction pathways, one of which is independent of protein kinase C. Although either pathway alone appears to be sufficient to induce fos, both appear to be necessary to induce the full mitogenic response.
Insights
Ras proteins mediate cell growth through parallel pathways. Inhibiting ras (p21 Asn-17) blocks DNA synthesis but not immediate gene induction, suggesting distinct signaling routes for proliferation and early gene expression.
Area of Science:
- Molecular Biology
- Cell Signaling
- Oncogenesis
Background:
- Ras proteins are key regulators of cell growth and proliferation.
- Understanding ras function in mitogenic signal transduction is crucial for cancer research.
- Dominant inhibitory mutations offer tools to dissect complex signaling pathways.
Purpose of the Study:
- To investigate the role of ras proteins in mitogenic signal transduction pathways.
- To differentiate the signaling mechanisms controlling DNA synthesis versus immediate early gene induction.
- To explore the relationship between ras signaling, protein kinase C, and gene expression.
Main Methods:
- Utilized a dominant inhibitory c-Ha-ras mutation (Ser-17 to Asn-17) in p21(Asn-17)Ha-ras.
- Established an NIH 3T3 cell line with inducible expression of Ha-ras Asn-17.
- Analyzed the effects of p21(Asn-17) expression on DNA synthesis and gene induction (fos, jun, myc) in response to various mitogens.
- Performed transient expression assays to assess fos promoter activity.
Main Results:
- p21(Asn-17)Ha-ras expression completely blocked DNA synthesis induced by EGF and TPA, and partially inhibited other growth factors.
- Induction of fos, jun, and myc by EGF and TPA was not significantly inhibited by p21(Asn-17) in the cell line.
- Transient assays showed p21(Asn-17) inhibited EGF-induced fos promoter activity, but not TPA-induced activity.
- Downregulation of protein kinase C did not affect TPA-induced fos promoter activity by activated ras.
Conclusions:
- Ras proteins operate in at least two parallel mitogenic signal transduction pathways.
- One pathway is independent of protein kinase C, suggesting alternative signaling routes.
- Both pathways appear necessary for full mitogenic response, while either may suffice for immediate early gene induction like fos.