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Updated: Aug 9, 2026

An Ex vivo Culture System to Study Thyroid Development
Published on: June 6, 2014
Structural and functional aspects of the thyroid follicular epithelium
1Department of Anatomy, University of Göteborg, Sweden.
Insights
Thyroid epithelial cells form a tight barrier, controlling ion transport. Thyroid-stimulating hormone (TSH) and epidermal growth factor (EGF) rapidly influence this barrier and iodide transport, crucial for thyroid hormone synthesis.
Area of Science:
- Endocrinology
- Cell Biology
- Epithelial Physiology
Background:
- Thyroid epithelium exhibits apical-basolateral polarity essential for thyroid hormone synthesis.
- Thyroid hormone synthesis occurs at the apical plasma membrane in the colloid.
- Primary cultures of porcine thyroid cells in bicameral chambers allow detailed study of epithelial function.
Purpose of the Study:
- To investigate the barrier function and vectorial ion transport in polarized thyroid epithelial cells.
- To understand the influence of TSH and EGF on thyroid epithelial cell properties.
- To elucidate the mechanisms of iodide transport and its regulation.
Main Methods:
- Culturing polarized porcine thyroid epithelial cells in a bicameral chamber system.
- Measuring transepithelial resistance and potential difference.
- Investigating the effects of TSH, EGF, and calcium on cell properties and iodide transport.
Main Results:
- Thyroid epithelial cells form a tight monolayer with high transepithelial resistance and a potential difference.
- TSH and EGF rapidly influence barrier function and ion transport, primarily via apical sodium channels.
- Iodide is actively transported in a basoapical direction, regulated by TSH and EGF, with TSH increasing apical efflux and EGF reducing apical permeability.
Conclusions:
- Thyroid epithelial cells maintain strict control over follicular lumen ion content.
- The integrity and function of the thyroid barrier are modulated by TSH and EGF.
- Polarized cell culture systems are valuable for studying thyroid epithelial physiology and hormone regulation.
Abstract:
The thyroid epithelium is morphologically and functionally polarized, with an apical surface facing the follicular lumen containing colloid and a basolateral surface facing the interstitium. Iodination and thyroid hormone synthesis occur in the colloid at the apical plasma membrane. The introduction by Mauchamp et al. of primary cultures of porcine thyroid cells grown as a polarized, confluent monolayer on a filter in a bicameral chamber system has now made it possible to study in more detail the barrier function and vectorial ion transport in the thyroid epithelium. The follicular cells form a very tight monolayer (transepithelial resistance > 6000 ohm cm2) and establish a transepithelial potential difference (apical medium negative) of about 20 mV. These parameters are rapidly influenced by TSH, mainly by an action on apical sodium channels, and by EGF. The integrity of the barrier is, as in other epithelia, dependent on extracellular calcium. A calcium-dependent cell adhesion molecule, uvomorulin, is expressed at the lateral plasma membrane surface. EGF induces cell proliferation as well as migration of some of the epithelial cells to a position below the monolayer, which however maintains its polarity and barrier function. In contrast, during TPA-induced proliferation the barrier function is disrupted. Iodide is vectorially transported in basoapical direction while the epithelial layer is virtually impermeable for iodide transfer in the opposite direction. Iodide is concentrated in the cell by the basolateral "iodide-pump" and its efflux across the apical plasma membrane is rapidly and selectively increased by TSH via cAMP. EGF inhibits vectorial basoapical iodide transport mainly by reducing the iodide permeability of the apical plasma membrane. Together, these recent observations indicate that the ion content of the follicular lumen is strictly controlled by the thyroid epithelium.
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