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Updated: May 24, 2026

An Ex vivo Culture System to Study Thyroid Development
Published on: June 6, 2014
Thyroid organotypic rat and human cultures used to investigate drug effects on thyroid function, hormone synthesis
Alison E M Vickers1, Jason Heale, John R Sinclair
1Drug Safety Evaluation, Allergan Inc., 2525 Dupont Dr, Irvine, CA 92612, USA. vickers_alison@allergan.com
Abstract:
Drug induced thyroid effects were evaluated in organotypic models utilizing either a rat thyroid lobe or human thyroid slices to compare rodent and human response. An inhibition of thyroid peroxidase (TPO) function led to a perturbation in the expression of key genes in thyroid hormone synthesis and release pathways. The clinically used thiourea drugs, methimazole (MMI) and 6-n-propyl-2-thioruacil (PTU), were used to evaluate thyroid drug response in these models. Inhibition of TPO occurred early as shown in rat thyroid lobes (2 h) and was sustained in both rat (24-48 h) and human (24 h) with ≥ 10 μM MMI. Thyroid from rats treated with single doses of MMI (30-1000 mg/kg) exhibited sustained TPO inhibition at 48 h. The MMI in vivo thyroid concentrations were comparable to the culture concentrations (~15-84 μM), thus demonstrating a close correlation between in vivo and ex vivo thyroid effects. A compensatory response to TPO inhibition was demonstrated in the rat thyroid lobe with significant up-regulation of genes involved in the pathway of thyroid hormone synthesis (Tpo, Dio1, Slc5a5, Tg, Tshr) and the megalin release pathway (Lrp2) by 24h with MMI (≥ 10 μM) and PTU (100 μM). Similarly, thyroid from the rat in vivo study exhibited an up-regulation of Dio1, Slc5a5, Lrp2, and Tshr. In human thyroid slices, there were few gene expression changes (Slc5a5, ~2-fold) and only at higher MMI concentrations (≥ 1500 μM, 24h). Extended exposure (48 h) resulted in up-regulation of Tpo, Dio1 and Lrp2, along with Slc5a5 and Tshr. In summary, TPO was inhibited by similar MMI concentrations in rat and human tissue, however an increased sensitivity to drug treatment in rat is indicated by the up-regulation of thyroid hormone synthesis and release gene pathways at concentrations found not to affect human tissue.
Insights
Drug-induced thyroid effects were studied in rat and human models. Methimazole (MMI) inhibited thyroid peroxidase (TPO) in both, but rats showed greater gene pathway activation, indicating higher sensitivity to thyroid drugs.
Area of Science:
- Endocrinology
- Pharmacology
- Toxicology
Background:
- Drug-induced thyroid dysfunction is a significant clinical concern.
- Organotypic thyroid models offer valuable insights into drug effects on thyroid function.
- Understanding species-specific responses is crucial for drug safety assessment.
Purpose of the Study:
- To compare the effects of thiourea drugs on rat and human thyroid function using organotypic models.
- To investigate the impact of methimazole (MMI) and 6-n-propyl-2-thioruacil (PTU) on thyroid peroxidase (TPO) activity and gene expression.
- To correlate in vivo and ex vivo findings for drug-induced thyroid effects.
Main Methods:
- Utilized organotypic models: rat thyroid lobes and human thyroid slices.
- Administered MMI and PTU to assess TPO inhibition and gene expression changes.
- Measured thyroid hormone synthesis and release pathway gene expression.
- Correlated drug concentrations in vivo and ex vivo.
Main Results:
- MMI inhibited TPO in both rat and human thyroid tissues at similar concentrations (≥ 10 μM).
- Rats exhibited significant up-regulation of thyroid hormone synthesis and release genes (Tpo, Dio1, Slc5a5, Tg, Tshr, Lrp2) at lower MMI/PTU concentrations compared to humans.
- Human thyroid slices showed minimal gene expression changes, except for Slc5a5, at higher MMI concentrations (≥ 1500 μM).
- Extended exposure (48h) in human tissue led to more gene expression changes.
Conclusions:
- Thyroid peroxidase (TPO) inhibition by MMI occurs similarly in rat and human thyroid tissues.
- Rats demonstrate increased sensitivity to MMI and PTU, with compensatory gene pathway activation at concentrations that do not significantly affect human thyroid tissue.
- Organotypic models effectively reveal species-specific differences in drug-induced thyroid responses.
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