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Updated: May 11, 2026

Assessing Cellular Target Engagement by SHP2 (PTPN11) Phosphatase Inhibitors
Published on: July 17, 2020
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.
Background:
It is controversial whether persistent signaling by the thyrotropin (TSH) receptor (TSHR) is cell-type specific. We reported persistent TSHR signaling in human embryonic kidney 293 (HEK293) cells expressing human TSHRs (HEK-TSHRs), whereas another group reported persistent signaling in mouse thyroid follicles but not in HEK293 cells. Herein, we test this hypothesis directly.
Methods:
We used two methods to measure persistent signaling in HEK-TSHRs and confirm our previous observations. In Method 1, we used a chemiluminescent immunoassay to measure intracellular cAMP accumulation over 30-60 min by adding a phosphodiesterase inhibitor to the incubation medium. In Method 2, we used an intracellular biosensor to record cAMP levels continuously.
Results:
Using Method 1, we show that TSHR signals persistently in human thyrocytes and human osteosarcoma U2OS-TSHR cells. Using Method 1 in HEK-TSHRs, we show that after 5 min, the phosphodiesterase inhibitor isobutylmethylxanthine (IBMX) increases cAMP to 2.5 pmol/well, TSH increases cAMP to 1.6 pmol/well, but IBMX added 30 min after TSH withdrawal increases cAMP to 105 pmol/well. Using Method 2 in HEK-TSHRs, we confirm that without IBMX, TSH causes a transient increase in cAMP and 30 min after TSH withdrawal, IBMX increases cAMP in cells pretreated with TSH more rapidly and to a higher level than IBMX added to cells not pre-exposed to TSH. Lastly, using Method 2, we show that in HEK-TSHRs phosphodiesterases types 3 and 4 are involved in degrading cAMP as the specific inhibitors Rolipram and Milrinone expose persistent TSHR signaling.
Conclusions:
We conclude that persistent TSHR activation occurs in human thyrocytes, U2OS-TSHR cells and HEK-TSHRs; it is not cell-type specific but is revealed by inhibiting phosphodiesterases.
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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