Click here to close
Hello! We notice that you are using Internet Explorer, which is not supported by Xenbase and may cause the site to display incorrectly.
We suggest using a current version of Chrome,
FireFox, or Safari.
Comparative Analysis of Transcriptome Profiles Reveals Distinct and Organ-Dependent Genomic and Nongenomic Actions of Thyroid Hormone in Xenopus tropicalis Tadpoles.
Wang S, Shibata Y, Tanizaki Y, Zhang H, Yan W, Fu L, Shi YB.
???displayArticle.abstract???
Background: Thyroid hormone (triiodothyronine [T3]) is essential for development and organ metabolism in all vertebrates. T3 has both genomic and nongenomic effects on target cells. While much has been learnt on its genomic effects via T3 receptors (TRs) in vertebrate development, mostly through TR-knockout and TR-knockin studies, little is known about the effects of T3 on gene expression in animals in the absence of TR. We have been studying Xenopus metamorphosis as a model for mammalian postembryonic development, a period around birth when plasma T3 level peaks and many organs/tissues mature into their adult forms. We have recently generated TR double knockout (TRDKO) Xenopus tropicalis animals. This offers an opportunity to compare the effects of T3 on global gene expression in tadpole tissues in the presence or absence of TR. Methods: We analyzed the effects of T3 on gene expression in tadpoletail and intestine by using RNA-seq analysis on wild-type and TRDKO tadpoles with or without T3 treatment. Results: We observed that removing TRs reduced the number of genes regulated by T3 in both organs. Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analyses revealed that T3 affected distinct biological processes and pathways in wild-type and TRDKO tadpoles. Many GO terms and KEGG pathways that were enriched among genes regulated in wild-type tissues are likely involved in mediating the effects of T3 on metamorphosis, for example, those related to development, stem cells, apoptosis, and cell cycle/cell proliferation. However, such GO terms and pathways were not enriched among T3-regulated genes in TRDKO tadpoles. Instead, in TRDKO tadpoles, GO terms and pathways related to "metabolism" and "immune response" were highly enriched among T3-regulated genes. We further observed strong divergence in the TR-independent nongenomic effects of T3 in the intestine and tail. Conclusions: Our data suggest that T3 has distinct and organ-dependent effects on gene expression in developing tadpoles. The TR-mediated effects are consistent with the metamorphic changes, in agreement with the fact that TR is necessary and sufficient to mediate the effects of T3 on metamorphosis. T3 appears to have a major effect on metabolism and immune response via TR-independent nongenomic processes.
Barreiro Arcos,
Cooperative nongenomic and genomic actions on thyroid hormone mediated-modulation of T cell proliferation involve up-regulation of thyroid hormone receptor and inducible nitric oxide synthase expression.
2011, Pubmed
Barreiro Arcos,
Cooperative nongenomic and genomic actions on thyroid hormone mediated-modulation of T cell proliferation involve up-regulation of thyroid hormone receptor and inducible nitric oxide synthase expression.
2011,
Pubmed Børretzen,
The epithelial-mesenchymal transition regulators Twist, Slug, and Snail are associated with aggressive tumour features and poor outcome in prostate cancer patients.
2021,
Pubmed Brown,
Thyroid hormone controls multiple independent programs required for limb development in Xenopus laevis metamorphosis.
2005,
Pubmed
,
Xenbase Buchholz,
A dominant-negative thyroid hormone receptor blocks amphibian metamorphosis by retaining corepressors at target genes.
2003,
Pubmed
,
Xenbase Buchholz,
Molecular and developmental analyses of thyroid hormone receptor function in Xenopus laevis, the African clawed frog.
2006,
Pubmed
,
Xenbase Cayrol,
Non-genomic Actions of Thyroid Hormones Regulate the Growth and Angiogenesis of T Cell Lymphomas.
2019,
Pubmed Cheng,
Molecular aspects of thyroid hormone actions.
2010,
Pubmed Choi,
Unliganded thyroid hormone receptor α regulates developmental timing via gene repression in Xenopus tropicalis.
2015,
Pubmed
,
Xenbase Choi,
Growth, Development, and Intestinal Remodeling Occurs in the Absence of Thyroid Hormone Receptor α in Tadpoles of Xenopus tropicalis.
2017,
Pubmed
,
Xenbase Damiano,
Action of Thyroid Hormones, T3 and T2, on Hepatic Fatty Acids: Differences in Metabolic Effects and Molecular Mechanisms.
2017,
Pubmed Davis,
Nongenomic actions of thyroid hormone.
1996,
Pubmed Davis,
Comparison of the mechanisms of nongenomic actions of thyroid hormone and steroid hormones.
2002,
Pubmed Davis,
Molecular Basis of Nongenomic Actions of Thyroid Hormone.
2018,
Pubmed Davis,
Nongenomic actions of thyroid hormone.
2016,
Pubmed Davis,
Nongenomic actions of thyroid hormone on the heart.
2002,
Pubmed De Vito,
Nongenomic effects of thyroid hormones on the immune system cells: New targets, old players.
2012,
Pubmed Diaz Vivancos,
A nuclear glutathione cycle within the cell cycle.
2010,
Pubmed Domenichiello,
Is docosahexaenoic acid synthesis from α-linolenic acid sufficient to supply the adult brain?
2015,
Pubmed Ferdous,
FoxO1-Dio2 signaling axis governs cardiomyocyte thyroid hormone metabolism and hypertrophic growth.
2020,
Pubmed Forrest,
Functions of thyroid hormone receptors in mice.
2000,
Pubmed Franco,
Apoptosis and glutathione: beyond an antioxidant.
2009,
Pubmed Giammanco,
Genomic and Non-Genomic Mechanisms of Action of Thyroid Hormones and Their Catabolite 3,5-Diiodo-L-Thyronine in Mammals.
2020,
Pubmed Gil-Ibañez,
Global Transcriptome Analysis of Primary Cerebrocortical Cells: Identification of Genes Regulated by Triiodothyronine in Specific Cell Types.
2017,
Pubmed Göthe,
Mice devoid of all known thyroid hormone receptors are viable but exhibit disorders of the pituitary-thyroid axis, growth, and bone maturation.
1999,
Pubmed Hammes,
Overlapping nongenomic and genomic actions of thyroid hormone and steroids.
2015,
Pubmed Hasebe,
Thyroid hormone-up-regulated hedgehog interacting protein is involved in larval-to-adult intestinal remodeling by regulating sonic hedgehog signaling pathway in Xenopus laevis.
2008,
Pubmed
,
Xenbase Hedrick,
The cunning little vixen: Foxo and the cycle of life and death.
2009,
Pubmed Hiroi,
Rapid nongenomic actions of thyroid hormone.
2006,
Pubmed Kress,
The frizzled-related sFRP2 gene is a target of thyroid hormone receptor alpha1 and activates beta-catenin signaling in mouse intestine.
2009,
Pubmed Krieger,
Mutations in thyroid hormone receptor α1 cause premature neurogenesis and progenitor cell depletion in human cortical development.
2019,
Pubmed Lacy,
Cytokine release from innate immune cells: association with diverse membrane trafficking pathways.
2011,
Pubmed Lin,
Function of CSF1 and IL34 in Macrophage Homeostasis, Inflammation, and Cancer.
2019,
Pubmed Liu,
Cross-species metabolomic analysis identifies uridine as a potent regeneration promoting factor.
2022,
Pubmed Luu,
Direct Regulation of Histidine Ammonia-Lyase 2 Gene by Thyroid Hormone in the Developing Adult Intestinal Stem Cells.
2017,
Pubmed
,
Xenbase Massagué,
TGF-β control of stem cell differentiation genes.
2012,
Pubmed Medici,
Snail and Slug promote epithelial-mesenchymal transition through beta-catenin-T-cell factor-4-dependent expression of transforming growth factor-beta3.
2008,
Pubmed Mullur,
Thyroid hormone regulation of metabolism.
2014,
Pubmed Nakajima,
Thyroid Hormone Receptor α- and β-Knockout Xenopus tropicalis Tadpoles Reveal Subtype-Specific Roles During Development.
2018,
Pubmed
,
Xenbase Nappi,
Selective Inhibition of Genomic and Non-Genomic Effects of Thyroid Hormone Regulates Muscle Cell Differentiation and Metabolic Behavior.
2021,
Pubmed Pedrelli,
Thyroid hormones and thyroid hormone receptors: effects of thyromimetics on reverse cholesterol transport.
2010,
Pubmed Peng,
Foxo in the immune system.
2008,
Pubmed Ross,
Thyroid hormone-dependent regulation of metabolism and heart regeneration.
2022,
Pubmed Sakane,
Functional analysis of thyroid hormone receptor beta in Xenopus tropicalis founders using CRISPR-Cas.
2018,
Pubmed
,
Xenbase Saunders,
Thyroid hormone regulates distinct paths to maturation in pigment cell lineages.
2019,
Pubmed Schreiber,
Diverse developmental programs of Xenopus laevis metamorphosis are inhibited by a dominant negative thyroid hormone receptor.
2001,
Pubmed
,
Xenbase Shi,
Dual functions of thyroid hormone receptors in vertebrate development: the roles of histone-modifying cofactor complexes.
2009,
Pubmed
,
Xenbase Shi,
Life Without Thyroid Hormone Receptor.
2021,
Pubmed
,
Xenbase Shi,
Thyroid hormone regulation of apoptotic tissue remodeling during anuran metamorphosis.
2001,
Pubmed Shibata,
Thyroid hormone receptor beta is critical for intestinal remodeling during Xenopus tropicalis metamorphosis.
2020,
Pubmed
,
Xenbase Shibata,
Organ-Specific Requirements for Thyroid Hormone Receptor Ensure Temporal Coordination of Tissue-Specific Transformations and Completion of Xenopus Metamorphosis.
2020,
Pubmed
,
Xenbase Shibata,
Thyroid Hormone Receptor Is Essential for Larval Epithelial Apoptosis and Adult Epithelial Stem Cell Development but Not Adult Intestinal Morphogenesis during Xenopus tropicalis Metamorphosis.
2021,
Pubmed
,
Xenbase Sinclair,
What is the role of alpha-linolenic acid for mammals?
2002,
Pubmed Singh,
The thyroxine inactivating gene, type III deiodinase, suppresses multiple signaling centers in Dictyostelium discoideum.
2014,
Pubmed Sirakov,
The thyroid hormone nuclear receptor TRα1 controls the Notch signaling pathway and cell fate in murine intestine.
2015,
Pubmed Sirakov,
Thyroid hormones and their nuclear receptors: new players in intestinal epithelium stem cell biology?
2014,
Pubmed Skah,
The secreted Frizzled-Related Protein 2 modulates cell fate and the Wnt pathway in the murine intestinal epithelium.
2015,
Pubmed Takiguchi,
Wnt5a-Ror2 signaling in mesenchymal stem cells promotes proliferation of gastric cancer cells by activating CXCL16-CXCR6 axis.
2016,
Pubmed Tanizaki,
Analysis of Thyroid Hormone Receptor α-Knockout Tadpoles Reveals That the Activation of Cell Cycle Program Is Involved in Thyroid Hormone-Induced Larval Epithelial Cell Death and Adult Intestinal Stem Cell Development During Xenopus tropicalis Metamorphosis.
2021,
Pubmed
,
Xenbase Wang,
Gene Expression Program Underlying Tail Resorption During Thyroid Hormone-Dependent Metamorphosis of the Ornamented Pygmy Frog Microhyla fissipes.
2019,
Pubmed
,
Xenbase Wang,
Developmental regulation and function of thyroid hormone receptors and 9-cis retinoic acid receptors during Xenopus tropicalis metamorphosis.
2008,
Pubmed
,
Xenbase Wang,
Transcriptome profiling reveals gene regulation programs underlying tail development in the Ornamented Pygmy frog Microhyla fissipes.
2021,
Pubmed Wen,
A requirement for hedgehog signaling in thyroid hormone-induced postembryonic intestinal remodeling.
2015,
Pubmed
,
Xenbase Wen,
Unliganded thyroid hormone receptor α controls developmental timing in Xenopus tropicalis.
2015,
Pubmed
,
Xenbase Wen,
Thyroid Hormone Receptor α Controls Developmental Timing and Regulates the Rate and Coordination of Tissue-Specific Metamorphosis in Xenopus tropicalis.
2017,
Pubmed
,
Xenbase Yen,
Effects of ligand and thyroid hormone receptor isoforms on hepatic gene expression profiles of thyroid hormone receptor knockout mice.
2003,
Pubmed Yoo,
Effect of Thyroid Hormones on the Stage-specific Pigmentation of the Japanese Flounder Paralichthys olivaceus.
2000,
Pubmed Zhu,
Remarkable metabolic reorganization and altered metabolic requirements in frog metamorphic climax.
2020,
Pubmed