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

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.

Related Concept Videos

Synthesis and Regulation of Thyroid Hormones01:20

Synthesis and Regulation of Thyroid Hormones

Low blood levels of the thyroid hormones — triiodothyronine (T3) and thyroxine (T4) — signal the hypothalamus to release the thyrotropin-releasing hormone (TRH). TRH then reaches the pituitary gland and stimulates the release of thyroid-stimulating hormone(TSH) into the bloodstream.
Upon reaching the thyroid gland, TSH stimulates the follicular cells' active uptake of iodide ions from the blood. The ions diffuse to the apical surface of the cells and are oxidized to iodine. The iodine is then...
Functions of Thyroid Hormones01:18

Functions of Thyroid Hormones

The thyroid hormone (TH) plays a pivotal role in the intricate orchestration of physiological processes, exerting profound effects on development, metabolism, and homeostasis throughout different life stages.
TH is indispensable for the normal development and maturation of the skeletal, muscular, and nervous systems during fetal and childhood growth. It facilitates bone mineral turnover and regulates protein synthesis in developing tissues, contributing significantly to overall growth and...
Hyperthyroidism II: Pathophysiology01:27

Hyperthyroidism II: Pathophysiology

Hyperthyroidism is a hypermetabolic state caused by elevated levels of thyroid hormones, triiodothyronine (T3) and thyroxine (T4). It results from dysregulation at the thyroid, pituitary, or immune system level and affects multiple organ systems.PathophysiologyThe most common cause of hyperthyroidism is Graves’ disease, an autoimmune disorder in which antibodies, specifically thyroid-stimulating antibodies (TSAb), a subtype of TSH receptor antibodies (TRAb), bind to and activate TSH receptors...
Hypothyroidism II: Pathophysiology01:23

Hypothyroidism II: Pathophysiology

Hypothyroidism is a disorder characterized by insufficient production of thyroid hormones, which regulate metabolism, energy balance, and multiple organ systems.TypesHypothyroidism is classified based on the level of dysfunction. Primary hypothyroidism results from intrinsic thyroid gland dysfunction, causing reduced hormone production despite normal or increased stimulation. Secondary hypothyroidism arises from inadequate thyroid-stimulating hormone (TSH) secretion by the pituitary. Tertiary...
Hyperthyroidism I: Introduction01:25

Hyperthyroidism I: Introduction

Hyperthyroidism is a type of thyrotoxicosis characterized by the thyroid gland's overproduction of the thyroid hormones triiodothyronine (T3) and thyroxine (T4). This hormone excess increases the basal metabolic rate and enhances sensitivity to catecholamines.DiagnosisDiagnosis is based on clinical features and biochemical testing. It typically shows suppressed thyroid-stimulating hormone (TSH) levels below 0.4 mIU/L, with elevated free T3 and/or T4. Additional tests, including thyroid...
The Thyroid Gland01:23

The Thyroid Gland

The thyroid gland is a small, butterfly-shaped gland located in the neck and covers the anterior surface of the trachea. The gland has two lateral lobes connected by a thin tissue mass called the isthmus. Internally, each lobe comprises many small spherical structures known as thyroid follicles, surrounded by a network of blood vessels.
The follicles have a central cavity lined by simple cuboidal to squamous epithelial cells called follicular cells. These cells produce the glycoprotein...