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Protein kinase A and B-Raf mediate extracellular signal-regulated kinase activation by thyrotropin
Lisa A Vuchak1, Oxana M Tsygankova, Gregory V Prendergast
1Department of Pharmacology, School of Medicine, University of Pennsylvania, Philadelphia, PA 19104-6061, USA.
Abstract:
Thyrotropin (TSH) regulates thyroid cell proliferation and function through cAMP-mediated signaling pathways that activate protein kinase A (PKA) and Epac/Rap1. The respective roles of PKA versus Epac/Rap1 in TSH signaling remain unclear. We set out to determine whether PKA and/or Rap1 mediate extracellular signal-regulated kinase (ERK) activation by TSH. Neither blocking Rap1 activity nor silencing the expression of Rap1 impaired TSH or forskolin-induced ERK activation in Wistar rat thyroid cells. Direct activation of Epac1 failed to stimulate ERK activity in starved cells, suggesting that Epac-induced Rap1 activity is not coupled to ERK activation in rat thyroid cells. By contrast, PKA activity was required for cAMP-stimulated ERK phosphorylation and was sufficient to increase ERK phosphorylation in starved cells. Expression of dominant-negative Ras inhibited ERK activation by TSH, forskolin, and N(6)-monobutyryl (6MB)-cAMP, a selective activator of PKA. Silencing the expression of B-Raf also inhibited ERK activation by TSH, forskolin, and 6MB-cAMP, but not that stimulated by insulin or serum. Depletion of B-Raf impaired TSH-induced DNA synthesis, indicating a functional role for B-Raf in TSH-regulated proliferation. Collectively, these results position PKA, Ras, and B-Raf as upstream regulators of ERK activation and identify B-Raf as a selective target of cAMP-elevating agents in thyroid cells. These data provide the first evidence for a functional role for B-Raf in TSH signaling.
Insights
Thyrotropin (TSH) signaling activates extracellular signal-regulated kinase (ERK) through protein kinase A (PKA), not Epac/Rap1. PKA, Ras, and B-Raf are key regulators of TSH-induced ERK activation and thyroid cell proliferation.
Area of Science:
- Endocrinology
- Molecular Cell Biology
- Signal Transduction
Background:
- Thyrotropin (TSH) controls thyroid cell growth and function via cAMP signaling.
- TSH activates protein kinase A (PKA) and Epac/Rap1 pathways.
- The specific roles of PKA and Epac/Rap1 in TSH-mediated extracellular signal-regulated kinase (ERK) activation are not fully understood.
Purpose of the Study:
- To investigate whether PKA and/or Rap1 mediate TSH-induced ERK activation.
- To elucidate the signaling pathway linking TSH to ERK activation in thyroid cells.
Main Methods:
- Utilized Wistar rat thyroid cells.
- Manipulated Rap1 activity and expression.
- Assessed ERK phosphorylation and DNA synthesis.
- Employed dominant-negative Ras and B-Raf silencing.
- Used selective PKA activator N(6)-monobutyryl (6MB)-cAMP.
Main Results:
- Rap1 activity or expression was not required for TSH or forskolin-induced ERK activation.
- PKA activation was necessary and sufficient for cAMP-stimulated ERK phosphorylation.
- Dominant-negative Ras and B-Raf silencing inhibited TSH-induced ERK activation.
- B-Raf depletion impaired TSH-induced DNA synthesis.
Conclusions:
- PKA, rather than Epac/Rap1, mediates TSH-induced ERK activation in rat thyroid cells.
- PKA, Ras, and B-Raf function as upstream regulators of ERK activation in TSH signaling.
- B-Raf plays a crucial role in TSH-regulated thyroid cell proliferation.
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