Related Experiment Videos
Identification of the functional components of the Ras signaling pathway regulating pituitary cell-specific gene
K E Conrad1, J M Oberwetter, R Vaillancourt
1Department of Medicine, University of Colorado Health Services Center, Denver 80262.
Abstract:
Ras, a small GTP-binding protein, is required for functional receptor tyrosine kinase signaling. Ultimately, Ras alters the activity of specific nuclear transcription factors and regulates novel patterns of gene expression. Using a rat prolactin promoter construct in transient transfection experiments, we show that both oncogenic Ras and activated forms of Raf-1 kinase selectively stimulated the cellular rat prolactin promoter in GH4 rat pituitary cells. We also show that the Ras signal is completely blocked by an expression vector encoding a dominant-negative Raf kinase. Additionally, using a molecular genetic approach, we determined that inhibitory forms of p42 mitogen-activated protein kinase and an Ets-2 transcription factor interfere with both the Ras and the Raf activation of the rat prolactin promoter. These findings define a functional requirement for these signaling constituents in the activation of the prolactin gene, a cell-specific gene which marks the lactotroph pituitary cell type. Further, this analysis allowed us to order the components in the Ras signaling pathway as it impinges on regulation of prolactin gene transcription as Ras-->Raf kinase-->mitogen-activated protein kinase-->Ets. In contrast, we show that intact c-Jun expression inhibited the Ras-induced activation of the prolactin promoter, defining it as a negative regulator of this pathway, whereas c-Jun was able to enhance the Ras activation of an AP-1-driven promoter in GH4 cells. These data show that c-Jun is not the nuclear mediator of the Ras signal for the highly specialized, pituitary cell-specific prolactin cellular promoter. Thus, we have defined a model system which provides an ideal paradigm for studying Ras/Raf signaling pathways and their effects on neuroendocrine cell-specific gene regulation.
Insights
Ras signaling activates the rat prolactin gene in pituitary cells. This pathway involves Raf kinase, mitogen-activated protein kinase, and Ets-2, but not c-Jun, revealing a model for neuroendocrine gene regulation.
Area of Science:
- Molecular Biology
- Cell Signaling
- Gene Regulation
Background:
- Ras, a small GTP-binding protein, is crucial for receptor tyrosine kinase signaling.
- Ras influences transcription factors and gene expression patterns.
Purpose of the Study:
- To investigate the Ras signaling pathway's role in regulating the rat prolactin gene in pituitary cells.
- To elucidate the order of signaling components involved in Ras-mediated prolactin gene activation.
Main Methods:
- Transient transfection experiments using a rat prolactin promoter construct in GH4 pituitary cells.
- Utilizing expression vectors for dominant-negative Raf kinase, inhibitory mitogen-activated protein kinase, and Ets-2 transcription factor.
- Employing molecular genetic approaches to assess the impact of c-Jun on promoter activity.
Main Results:
- Oncogenic Ras and activated Raf-1 kinase stimulated the rat prolactin promoter.
- The Ras signal was blocked by dominant-negative Raf kinase.
- Inhibitory mitogen-activated protein kinase and Ets-2 interfered with Ras/Raf activation of the prolactin promoter.
- The signaling order was determined as Ras-->Raf kinase-->mitogen-activated protein kinase-->Ets.
- c-Jun inhibited Ras-induced prolactin promoter activation but enhanced AP-1 promoter activity, indicating it's not the mediator for prolactin gene.
Conclusions:
- Ras signaling is functionally required for activating the prolactin gene in lactotroph pituitary cells.
- A specific signaling cascade (Ras-Raf-MAPK-Ets) regulates pituitary cell-specific gene transcription.
- c-Jun acts as a negative regulator in this specific pathway, not the nuclear mediator for prolactin gene activation.
- A model system is established for studying Ras/Raf signaling in neuroendocrine gene regulation.