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Author Spotlight: In Vivo Assessment of Thyroid Hormone Disruption Using the THAI Mouse Model
Published on: October 6, 2023
Tissue-Specific Suppression of Thyroid Hormone Signaling in Various Mouse Models of Aging
W Edward Visser1, Cíntia R Bombardieri2, Chantal Zevenbergen1
1Dept of Internal Medicine, Erasmus Medical Center, Rotterdam, The Netherlands.
Abstract:
DNA damage contributes to the process of aging, as underscored by premature aging syndromes caused by defective DNA repair. Thyroid state changes during aging, but underlying mechanisms remain elusive. Since thyroid hormone (TH) is a key regulator of metabolism, changes in TH signaling have widespread effects. Here, we reveal a significant common transcriptomic signature in livers from hypothyroid mice, DNA repair-deficient mice with severe (Csbm/m/Xpa-/-) or intermediate (Ercc1-/Δ-7) progeria and naturally aged mice. A strong induction of TH-inactivating deiodinase D3 and decrease of TH-activating D1 activities are observed in Csbm/m/Xpa-/- livers. Similar findings are noticed in Ercc1-/Δ-7, in naturally aged animals and in wild-type mice exposed to a chronic subtoxic dose of DNA-damaging agents. In contrast, TH signaling in muscle, heart and brain appears unaltered. These data show a strong suppression of TH signaling in specific peripheral organs in premature and normal aging, probably lowering metabolism, while other tissues appear to preserve metabolism. D3-mediated TH inactivation is unexpected, given its expression mainly in fetal tissues. Our studies highlight the importance of DNA damage as the underlying mechanism of changes in thyroid state. Tissue-specific regulation of deiodinase activities, ensuring diminished TH signaling, may contribute importantly to the protective metabolic response in aging.
Insights
DNA damage accelerates aging and alters thyroid hormone (TH) signaling, particularly in the liver. This study reveals a common mechanism involving TH inactivation, potentially lowering metabolism during aging.
Area of Science:
- Molecular Biology
- Endocrinology
- Aging Research
Background:
- DNA damage is a known contributor to aging and premature aging syndromes.
- Thyroid hormone (TH) regulates metabolism, and its signaling changes with age, but mechanisms are unclear.
Purpose of the Study:
- To investigate the underlying mechanisms of thyroid state changes during aging.
- To identify common molecular signatures in aging and DNA repair deficiency related to thyroid hormone signaling.
Main Methods:
- Transcriptomic analysis of liver tissue from hypothyroid, DNA repair-deficient (Csbm/m/Xpa-/-, Ercc1-/Δ-7), and naturally aged mice.
- Assay of deiodinase D1 and D3 activities in various tissues.
- Exposure of wild-type mice to DNA-damaging agents.
Main Results:
- A common transcriptomic signature was found in the livers of aging and DNA repair-deficient mice.
- Increased TH-inactivating D3 and decreased TH-activating D1 activities were observed in Csbm/m/Xpa-/- mouse livers.
- These changes in deiodinase activity were also noted in other aging models and in mice exposed to DNA-damaging agents, but not in muscle, heart, or brain.
Conclusions:
- DNA damage is a significant underlying mechanism for altered thyroid state during aging.
- Tissue-specific suppression of TH signaling, mediated by D3, may represent a protective metabolic adaptation in aging.
- The findings reveal an unexpected role for D3 in aging-related metabolic changes.
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