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Updated: May 29, 2025

Author Spotlight: In Vivo Assessment of Thyroid Hormone Disruption Using the THAI Mouse Model
Published on: October 6, 2023
Increased macrophages contribute to thyroid hormone-induced cardiac alterations in mice
Nathalia Senger1,2, Gislane de Almeida-Santos3,4, Gabriela Cavazza Cerri2
1Department of Cardiology, University Hospital Heidelberg, Heidelberg, Germany.
Insights
Macrophages play a key role in hyperthyroidism-induced heart changes. Targeting macrophages may offer a new treatment for thyroid hormone-related cardiac disorders.
Area of Science:
- Cardiology
- Endocrinology
- Immunology
Background:
- Hyperthyroidism increases arrhythmia and cardiac hypertrophy risk.
- Leukocytes are crucial for cardiac homeostasis and stress responses.
Purpose of the Study:
- To investigate the role of immune cells in cardiac alterations caused by elevated triiodothyronine (T3) levels.
Main Methods:
- Hyperthyroidism was induced in mice using daily T3 injections.
- Flow cytometry analyzed immune cell populations.
- In vitro experiments assessed macrophage polarization.
- Macrophage depletion was used to evaluate their role in cardiac changes.
Main Results:
- T3 treatment increased heart rate and cardiac mass, correlating with enhanced myocardial neutrophils, dendritic cells, and inflammatory monocytes/macrophages.
- In vitro, T3 promoted pro-inflammatory polarization of bone marrow-derived macrophages (BMDM).
- Macrophage depletion prevented T3-induced hypertrophic growth, tachycardia, and IL-6 expression.
Conclusions:
- Macrophages are involved in T3-induced cardiac changes.
- Targeting macrophages could be a therapeutic strategy for hyperthyroidism-related cardiac dysfunction.
- This research offers insights into novel treatments for thyroid hormone-induced heart conditions.
Aims:
The heart is one of the main targets of thyroid hormone. Patients with hyperthyroidism, a disease with high incidence in the population, have increased arrhythmia risk and cardiac hypertrophy, which is an independent predictor of adverse cardiovascular outcomes. Recent research has revealed the essential roles of leukocytes in cardiac homeostasis and stress-induced responses. Here, we aimed to evaluate the role of immune cells in cardiac changes induced by elevated triiodothyronine (T3) levels.
Methods:
The hyperthyroid condition in mice was mimicked by daily injections (i.p.) of T3 (14 μg/100 g BW) for 7 or 14 days.
Results:
Increased heart rate and cardiac mass observed after 7 days of T3 treatment was associated with enhanced myocardial population of neutrophils, dendritic cells, and inflammatory phenotypes of monocytes and macrophages, without circulating changes in these cells, as evaluated by flow cytometry. In vitro experiments demonstrated bias toward pro-inflammatory polarization in isolated bone marrow-derived macrophages (BMDM) in response to T3. Interestingly, depletion of macrophages in mice prevented hypertrophic heart growth, tachycardia, and increased gene expression of the pro-inflammatory cytokine interleukin-(IL)-6 caused by hyperthyroid condition.
Conclusion:
Together, these new findings indicate the involvement of macrophages in the cardiac changes promoted by higher T3 levels. Considering that sustained cardiac growth and tachycardia can potentially lead to heart failure, our results suggest that targeting macrophages might be a novel therapeutic approach for attenuating cardiac disorders caused by hyperthyroidism.
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