Persistent cAMP signaling by TSH receptors revealed by phosphodiesterase inhibition

Elizabeth Geras-Raaka1, Susanne Neumann, Marvin C Gershengorn

  • 1Laboratory of Endocrinology and Receptor Biology, National Institute of Diabetes and Digestive and Kidney Diseases , National Institutes of Health, Bethesda, Maryland.

Abstract

Insights

Persistent thyrotropin (TSH) receptor (TSHR) signaling is not cell-type specific. Inhibiting phosphodiesterases reveals this persistent TSHR activation in various human cell types, including HEK-TSHRs.

Area of Science:

  • Endocrinology
  • Molecular Cell Biology
  • Receptor Signaling

Background:

  • The cell-type specificity of persistent thyrotropin (TSH) receptor (TSHR) signaling remains controversial.
  • Previous studies reported conflicting findings regarding persistent TSHR signaling in different cell types.

Purpose of the Study:

  • To directly test the hypothesis that persistent TSHR signaling is cell-type specific.
  • To investigate the role of phosphodiesterases in TSHR signaling dynamics.

Main Methods:

  • Utilized a chemiluminescent immunoassay to measure intracellular cAMP accumulation over time.
  • Employed an intracellular biosensor for continuous monitoring of cAMP levels.
  • Administered phosphodiesterase inhibitors (IBMX, Rolipram, Milrinone) to assess their effect on TSHR signaling.

Main Results:

  • Persistent TSHR signaling was observed in human thyrocytes and U2OS-TSHR cells using Method 1.
  • In HEK-TSHR cells, phosphodiesterase inhibition revealed sustained cAMP accumulation after TSH withdrawal.
  • Involvement of phosphodiesterases 3 and 4 in cAMP degradation was demonstrated through specific inhibitor studies.

Conclusions:

  • Persistent TSHR activation is not cell-type specific, occurring in human thyrocytes, U2OS-TSHR cells, and HEK-TSHRs.
  • Inhibition of phosphodiesterases is crucial for revealing the persistent nature of TSHR signaling.
  • These findings clarify the cell-type independent nature of TSHR persistent signaling.

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