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The phosphatase inhibitor okadaic acid stimulates the TSH-induced G1-S phase transition in thyroid cells
D Lazzereschi1, A Coppa, G Minicione
1Dipartimento di Medicina Sperimentale e Patologia, Facoltà di Medicinae Chirurgia, Università La Sapienza, Rome, Italy.
Abstract:
Protein phosphorylation plays an essential role in regulating many cellular processes in eukaryotes. Signal transduction mechanisms that are reversibly controlled by protein phosphorylation require also protein phosphatases (PPs). Okadaic acid (OA), which is a potent inhibitor of protein phosphatase 2A (PP2A) and protein phosphatase 1, elicits phosphorylation of many proteins in unstimulated cells and induces different cellular responses, including transcriptional activation, shape changes, and pseudomitotic state. In this study, the effects of OA on rat thyroid cells (FRTL-5 strain) were analyzed to evaluate the role of serine/threonine phosphatases in hormone-induced thyroid cell proliferation. OA at a concentration range between 0.1 and 1 nM stimulated thyroid cell growth. Furthermore, 0.25 nM OA increased about 3.5-fold the thyrotropin (TSH)-induced DNA synthesis in quiescent cells. OA treatment also stimulated cell proliferation induced by drugs that mimic TSH effect, such as 8Br-cAMP and cholera toxin, suggesting that PP2A activity was relevant in the cAMP pathway activated by the hormone. Flow cytometry experiments showed that OA significantly increased the fraction of TSH-stimulated quiescent cells entering the S phase. In order to define the mechanisms underlying the observed stimulatory effect of OA on thyroid cell growth, expression of genes relevant in the G1-S phase transition was evaluated. A 2-fold increase in the level of cyclin D1 mRNA expression was found by Northern blot analysis in OA-treated cells. Although cdk2 gene expression was not modulated by the same OA treatment, an increase in Cdk2 protein was revealed by immunoprecipitation experiments. Moreover, OA modifies the phosphorylation pattern of the tumor suppressor retinoblastoma protein, a key event in the G1-S phase transition. Therefore, these experiments reveal that PP2A phosphatases play an important role in thyroid cell growth and can act at multiple sites in the TSH pathways driving cells to S phase.
Insights
Okadaic acid (OA), a protein phosphatase 2A inhibitor, stimulates thyroid cell growth by enhancing TSH-induced DNA synthesis and promoting cell cycle progression. This highlights the crucial role of PP2A in thyroid cell proliferation.
Area of Science:
- Cellular Biology
- Molecular Biology
- Endocrinology
Background:
- Protein phosphorylation regulates eukaryotic cellular processes.
- Protein phosphatases (PPs) are crucial for reversible phosphorylation in signal transduction.
- Okadaic acid (OA) inhibits protein phosphatase 2A (PP2A) and protein phosphatase 1, inducing cellular responses.
Purpose of the Study:
- To investigate the role of serine/threonine phosphatases in hormone-induced thyroid cell proliferation.
- To analyze the effects of OA on rat thyroid cells (FRTL-5 strain).
Main Methods:
- Treatment of FRTL-5 cells with OA at varying concentrations.
- Assessment of TSH-induced DNA synthesis and cell proliferation.
- Flow cytometry to analyze cell cycle progression (S phase entry).
- Gene expression analysis (cyclin D1 mRNA) via Northern blot.
- Protein analysis (Cdk2, retinoblastoma protein) via immunoprecipitation.
Main Results:
- OA (0.1-1 nM) stimulated thyroid cell growth.
- OA significantly enhanced TSH-induced DNA synthesis and proliferation stimulated by cAMP pathway mimics.
- OA increased the proportion of cells entering S phase.
- OA upregulated cyclin D1 mRNA and Cdk2 protein levels.
- OA altered the phosphorylation of retinoblastoma protein.
Conclusions:
- PP2A plays a significant role in regulating thyroid cell growth.
- PP2A acts at multiple points within TSH pathways to drive thyroid cells into S phase.
- Serine/threonine phosphatases are key regulators of thyroid cell proliferation.
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