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Published on: August 25, 2022
Generation of Novel Genetic Models to Dissect Resistance to Thyroid Hormone Receptor α in Zebrafish
Cho Rong Han1, Erik Holmsen1, Blake Carrington2
1Laboratory of Molecular Biology, National Cancer Institute, National Institutes of Health, Bethesda, Maryland.
Abstract:
Patients with mutations of the thyroid hormone receptor alpha (THRA) gene show resistance to thyroid hormone alpha (RTHα). No amendable mouse models are currently available to elucidate deleterious effects of TRα1 mutants during early development. Zebrafish with transient suppressed expression by morpholino knockdown and ectopic expression of TRα1 mutants in the embryos have been reported. However, zebrafish with germline transmittable mutations have not been reported. The stable expression of thra mutants from embryos to adulthood facilitated the study of molecular actions of TRα1 mutants during development. In contrast to human and mice, the thra gene is duplicated in zebrafish, thraa, and thrab. Using CRISPR/Cas9-mediated targeted mutagenesis, we created dominant negative mutations in the two duplicated thra genes. We comprehensively analyzed the molecular and phenotypic characteristics of mutant fish during development. Adult and juvenile homozygous thrab 1-bp ins (m/m) mutants exhibited severe growth retardation, but adult homozygous thraa 8-bp ins (m/m) mutants had very mild growth impairment. Expression of the growth hormone (gh1) and insulin-like growth factor 1 was markedly suppressed in homozygous thrab 1-bp ins (m/m) mutants. Decreased messenger RNA and protein levels of triiodothyronine-regulated keratin genes and inhibited keratinocyte proliferation resulted in hypoplasia of the epidermis in adult and juvenile homozygous thrab 1-bp ins (m/m) mutants, but not homozygous thraa 8-bp ins (m/m) mutants. RNA-seq analysis showed that homozygous thrab 1-bp ins (m/m) mutation had global impact on the functions of the adult pituitary. However, no morphological defects nor any changes in the expression of gh1 and keratin genes were observed in the embryos and early larvae. Thus, mutations of either the thraa or thrab gene did not affect initiation of embryogenesis. But the mutation of the thrab gene, but not the thraa gene, is detrimental in postlarval growth and skin development. The thra duplicated genes are essential to control temporal coordination in postlarval growth and development in a tissue-specific manner. We uncovered novel functions of the duplicated thra genes in zebrafish in development. These mutant zebrafish could be used as a model for further analysis of TRα1 mutant actions and for rapid screening of therapeutics for RTHα.
Insights
Zebrafish with mutations in duplicated thyroid hormone receptor alpha genes (THRA) were developed. The thrab gene mutation caused severe growth and skin defects, unlike the thraa mutation.
Area of Science:
- Developmental Biology
- Genetics
- Endocrinology
Background:
- Patients with thyroid hormone receptor alpha (THRA) gene mutations exhibit resistance to thyroid hormone alpha (RTHα).
- Existing research lacks suitable animal models for studying TRα1 mutant effects during early development.
- Zebrafish possess duplicated THRA genes (thraa and thrab), offering a unique model system.
Purpose of the Study:
- To create and characterize zebrafish models with germline-transmittable THRA mutations.
- To investigate the developmental roles of duplicated THRA genes and TRα1 mutants.
- To establish a model for studying RTHα and screening therapeutics.
Main Methods:
- CRISPR/Cas9-mediated gene editing to introduce dominant-negative mutations in zebrafish thraa and thrab genes.
- Comprehensive analysis of molecular and phenotypic characteristics in mutant zebrafish from embryonic to adult stages.
- RNA-sequencing (RNA-seq) to assess global gene expression changes in mutant fish.
Main Results:
- Homozygous thrab mutants (thrab 1-bp ins (m/m)) showed severe growth retardation and epidermal hypoplasia due to suppressed growth hormone (gh1) and keratin gene expression.
- Homozygous thraa mutants (thraa 8-bp ins (m/m)) exhibited only mild growth impairment.
- Mutations in either thraa or thrab did not affect embryogenesis, but thrab mutations were detrimental to postlarval growth and skin development.
- RNA-seq revealed significant impacts of the thrab mutation on adult pituitary function.
Conclusions:
- The duplicated THRA genes in zebrafish are crucial for temporal coordination of postlarval growth and tissue-specific development.
- The thrab gene plays a critical role in postlarval growth and skin development, whereas thraa has a milder effect.
- These mutant zebrafish provide a valuable platform for understanding TRα1 mutant actions and developing RTHα therapies.

