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The coupling of multiple signal transduction pathways with steroid response mechanisms
S K Nordeen1, M L Moyer, B J Bona
1Department of Pathology, University of Colorado Health Sciences Center, Denver 80262.
Abstract:
In a human breast carcinoma-derived cell line engineered to contain a hormone-responsive luciferase reporter gene, manipulation of cell growth conditions or cellular signal transduction in a variety of ways can enhance or impair glucocorticoid-mediated induction of a target gene. Induction may be enhanced as much as 10-fold or inhibited 90% by different treatments. For example, two different inhibitors of protein phosphatase-1 and -2A potentiated the hormone-dependent induction of luciferase. Activation of protein kinase-A via addition of 8-bromo-cAMP or forskolin also potentiated the hormonal induction, whereas 8-bromo-cGMP was ineffective. In contrast, activating protein kinase-A by inhibiting cAMP turnover with the phosphodiesterase inhibitors isobutylmethylxanthine or Ro20-1724 inhibited the hormone response rather than potentiated it. The inhibitory activity of isobutylmethylxanthine was evident even when activators of protein kinase-A are administered simultaneously. Isobutylmethylxanthine must, therefore, activate a signal transduction pathway in addition to the protein kinase-A pathway. Activation of protein kinase-C potentiated the hormone response in a cell-specific manner. Treatment with epidermal growth factor and imposition of cell stress by heat shock or inhibition of protein synthesis also enhanced the glucocorticoid response. Thus, our results suggest an elaborate coupling of the steroid response pathway with other cellular signal transduction mechanisms that permits an additional layer of control to be imposed on hormone-mediated transcriptional responses. It is proposed that cell-specific phosphorylation events influence steroid receptor interaction with the basal transcription apparatus, thereby altering receptor-mediated induction mechanisms.
Insights
Cellular signaling pathways, including protein kinase A and C, modulate glucocorticoid responses in breast cancer cells. These interactions offer new control points for hormone-mediated gene induction.
Area of Science:
- Molecular Biology
- Cell Biology
- Endocrinology
Background:
- Glucocorticoids regulate gene expression through specific receptors.
- Hormone-mediated transcriptional responses are crucial in cellular function and disease.
- Understanding signal transduction crosstalk is key to deciphering complex cellular regulation.
Purpose of the Study:
- To investigate how various cellular signal transduction pathways influence glucocorticoid receptor-mediated gene induction.
- To identify specific pathways that can enhance or inhibit hormone-dependent gene expression.
- To explore the interplay between steroid hormone signaling and other cellular communication networks.
Main Methods:
- Utilized a human breast carcinoma cell line with a hormone-responsive luciferase reporter gene.
- Manipulated cell growth conditions and signal transduction pathways using various chemical agents and treatments.
- Measured changes in luciferase activity to quantify the effects on glucocorticoid-mediated gene induction.
Main Results:
- Inhibitors of protein phosphatase-1 and -2A, along with activators of protein kinase-A (PKA), potentiated hormone induction.
- Phosphodiesterase inhibitors paradoxically inhibited PKA activation-mediated potentiation, suggesting alternative signaling.
- Activation of protein kinase-C (PKC), epidermal growth factor, heat shock, and protein synthesis inhibition enhanced glucocorticoid response.
Conclusions:
- Steroid response pathways are intricately coupled with other cellular signal transduction mechanisms.
- Cell-specific phosphorylation events likely modulate steroid receptor interactions with the transcription machinery.
- This crosstalk provides an additional regulatory layer for hormone-mediated transcriptional control.