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Updated: Oct 3, 2026

In vivo Characterization of Endocrine Disrupting Chemical Effects via Thyroid Hormone Action Indicator Mouse
Published on: October 6, 2023
A targeted dominant negative mutation of the thyroid hormone alpha 1 receptor causes increased mortality,
M Kaneshige1, H Suzuki, K Kaneshige
1Laboratory of Molecular Biology, National Cancer Institute, Genetic Disease Research Branch, National Human Genome Research Institute, National Institutes of Health, Bethesda, MD 20892, USA.
Abstract:
Mutations in the thyroid hormone receptor beta (TRbeta) gene result in resistance to thyroid hormone. However, it is unknown whether mutations in the TRalpha gene could lead to a similar disease. To address this question, we prepared mutant mice by targeting mutant thyroid hormone receptor kindred PV (PV) mutation to the TRalpha gene locus by means of homologous recombination (TRalpha1PV mice). The PV mutation was derived from a patient with severe resistance to thyroid hormone that has a frameshift of the C-terminal 14 aa of TRbeta1. We knocked in the same PV mutation to the corresponding TRalpha gene locus to compare the phenotypes of TRalpha1(PV/+) mice with those of TRbeta(PV/+) mice. TRalpha1(PV/+) mice were viable, indicating that the mutation of the TRalpha gene is not embryonic lethal. In drastic contrast to the TRbeta(PV/+) mice, which do not exhibit a growth abnormality, TRalpha1(PV/+) mice were dwarfs. These dwarfs exhibited increased mortality and reduced fertility. In contrast to TRbeta(PV/+) mice, which have a hyperactive thyroid, TRalpha1(PV/+) mice exhibited mild thyroid failure. The in vivo pattern of abnormal regulation of T3 target genes in TRalpha1(PV/+) mice was unique from those of TRbeta(PV/+) mice. The distinct phenotypes exhibited by TRalpha1(PV/+) and TRbeta(PV/+) mice indicate that the in vivo functions of TR mutants are isoform-dependent. The TRalpha1(PV/+) mice may be used as a tool to uncover human diseases associated with mutations in the TRalpha gene and, furthermore, to understand the molecular mechanisms by which TR isoforms exert their biological activities.
Insights
Mutations in the thyroid hormone receptor alpha (TRalpha) gene cause dwarfism and reduced fertility in mice, unlike TRbeta mutations. This highlights isoform-specific functions of thyroid hormone receptors.
Area of Science:
- Endocrinology
- Molecular Biology
- Genetics
Background:
- Mutations in the thyroid hormone receptor beta (TRbeta) gene are known to cause resistance to thyroid hormone.
- The effects of TRalpha gene mutations on thyroid hormone signaling and disease remain largely unknown.
Purpose of the Study:
- To investigate whether mutations in the TRalpha gene can lead to a disease similar to resistance to thyroid hormone.
- To compare the in vivo functions and phenotypes of TRalpha and TRbeta mutants.
Main Methods:
- Homologous recombination was used to introduce a specific PV mutation into the TRalpha gene locus in mice, creating TRalpha1PV mice.
- Phenotypic analysis of TRalpha1PV mice was conducted and compared with existing data from TRbetaPV mice.
Main Results:
- TRalpha1PV mice were viable, indicating TRalpha mutations are not embryonic lethal.
- TRalpha1PV mice exhibited dwarfism, increased mortality, and reduced fertility, contrasting with TRbetaPV mice.
- TRalpha1PV mice showed mild thyroid failure and unique dysregulation of T3 target genes compared to TRbetaPV mice.
Conclusions:
- The in vivo functions of thyroid hormone receptor mutants are isoform-dependent.
- TRalpha1PV mice serve as a valuable model for studying TRalpha-associated human diseases and understanding TR isoform-specific biological activities.
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