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Updated: Apr 12, 2026

An Ex vivo Culture System to Study Thyroid Development
Published on: June 6, 2014
Differential and tissue-specific regulation of the multiple rat c-erbA messenger RNA species by thyroid hormone
R A Hodin1, M A Lazar, W W Chin
1Department of Medicine, Brigham and Women's Hospital, Boston, Massachusetts 02115.
Abstract:
Thyroid hormone (T3) has been shown to regulate the level of its receptor in a number of tissues and cell lines. Recently, proteins encoded by the protooncogene c-erbA have been identified as T3 receptors. In the rat, four c-erbA gene products have been isolated, three of which, r-erbA alpha-1, r-erbA beta-1, and r-erbA beta-2, encode biologically active T3 receptors; the fourth, r-erbA alpha-2, may play an inhibitory role in T3 action. The present work examines the molecular nature of T3 receptor autoregulation using probes specific for each c-erbA mRNA. Rats were rendered hypothyroid with propylthiouracil and then treated with either saline or T3. Northern blot analyses reveal marked tissue-specific and differential regulation of the multiple c-erbA mRNAs by T3. In the pituitary the levels of r-erbA beta-1 mRNA increase, whereas the levels of the pituitary-specific r-erbA beta-2 mRNA decrease with T3 treatment. In heart, kidney, liver, and brain the levels of r-erbA beta-1 are unaffected by thyroidal status. The levels of both r-erbA alpha mRNAs decrease with T3 treatment in all tissues examined except for the brain, where there is no change. In addition, we find that changes in the mRNAs encoding specific subpopulations of T3 receptors do not always parallel changes in total nuclear T3 binding. Differential regulation of the specific c-erbA mRNA species could have important consequences for T3 action.
Insights
Thyroid hormone (T3) regulates thyroid hormone receptor (c-erbA) gene expression differently across tissues. This differential regulation of specific receptor subtypes impacts T3 action.
Area of Science:
- Molecular Endocrinology
- Gene Regulation
- Thyroid Hormone Signaling
Background:
- Thyroid hormone (T3) influences cellular function by binding to its receptor.
- Protooncogene c-erbA encodes proteins identified as T3 receptors.
- Multiple c-erbA gene products exist, with varying roles in T3 action.
Purpose of the Study:
- To investigate the molecular mechanisms of T3 receptor autoregulation.
- To examine the tissue-specific regulation of different c-erbA mRNA species by T3.
Main Methods:
- Utilized Northern blot analyses with probes specific for each c-erbA mRNA.
- Studied rats rendered hypothyroid and subsequently treated with T3 or saline.
- Analyzed gene expression in various tissues including pituitary, heart, kidney, liver, and brain.
Main Results:
- T3 treatment induced tissue-specific changes in c-erbA mRNA levels.
- r-erbA beta-1 mRNA increased in the pituitary, while r-erbA beta-2 mRNA decreased.
- r-erbA alpha mRNAs decreased in most tissues, with no change observed in the brain.
- Changes in specific T3 receptor mRNAs did not always correlate with total nuclear T3 binding.
Conclusions:
- T3 exerts differential control over the expression of its various receptor subtypes.
- The distinct regulation of c-erbA mRNA species suggests complex modulation of T3 signaling pathways.
- These findings highlight the intricate autoregulation of thyroid hormone receptors and their functional implications.
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