Comparative Phenotyping of Mice Reveals Canonical and Noncanonical Physiological Functions of TRα and TRβ.

IF 3.8 3区 医学 Q2 ENDOCRINOLOGY & METABOLISM Endocrinology Pub Date : 2024-07-01 DOI:10.1210/endocr/bqae067
Georg Sebastian Hönes, Daniela Geist, Christina Wenzek, Paul Thomas Pfluger, Timo Dirk Müller, Juan Antonio Aguilar-Pimentel, Oana Veronica Amarie, Lore Becker, Natalia Dragano, Lillian Garrett, Sabine Maria Hölter, Birgit Rathkolb, Jan Rozman, Nadine Spielmann, Irina Treise, Eckhard Wolf, Wolfgang Wurst, Helmut Fuchs, Valerie Gailus-Durner, Martin Hrabe de Angelis, Dagmar Führer, Lars Christian Moeller
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Abstract

Thyroid hormone (TH) effects are mediated through TH receptors (TRs), TRα1, TRβ1, and TRβ2. The TRs bind to the DNA and regulate expression of TH target genes (canonical signaling). In addition, they mediate activation of signaling pathways (noncanonical signaling). Whether noncanonical TR action contributes to the spectrum of TH effects is largely unknown. The aim of this study was to attribute physiological effects to the TR isoforms and their canonical and noncanonical signaling. We conducted multiparameter phenotyping in male and female TR knockout mice (TRαKO, TRβKO), mice with disrupted canonical signaling due to mutations in the TR DNA binding domain (TRαGS, TRβGS), and their wild-type littermates. Perturbations in senses, especially hearing (mainly TRβ with a lesser impact of TRα), visual acuity, retinal thickness (TRα and TRβ), and in muscle metabolism (TRα) highlighted the role of canonical TR action. Strikingly, selective abrogation of canonical TR action often had little phenotypic consequence, suggesting that noncanonical TR action sufficed to maintain the wild-type phenotype for specific effects. For instance, macrocytic anemia, reduced retinal vascularization, or increased anxiety-related behavior were only observed in TRαKO but not TRαGS mice. Noncanonical TRα action improved energy utilization and prevented hyperphagia observed in female TRαKO mice. In summary, by examining the phenotypes of TRα and TRβ knockout models alongside their DNA binding-deficient mutants and wild-type counterparts, we could establish that the noncanonical actions of TRα and TRβ play a crucial role in modulating sensory, behavioral, and metabolic functions and, thus, contribute to the spectrum of physiological TH effects.

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小鼠表型比较揭示了 TRα 和 TRβ 的典型和非典型生理功能。
甲状腺激素(TH)的作用是通过TH受体(TRs)TRα1、TRβ1和TRβ2介导的。TRs 与 DNA 结合并调节 TH 靶基因的表达(典型信号)。此外,它们还介导信号通路的激活(非规范信号)。非规范 TR 作用是否对 TH 的效应范围有所贡献,目前还不十分清楚。本研究的目的是将生理效应归因于TR异构体及其规范和非规范信号转导。我们对雌雄TR基因敲除小鼠(TRαKO、TRβKO)、因TR DNA结合结构域突变而导致规范信号转导中断的小鼠(TRαGS、TRβGS)及其野生型同窝小鼠进行了多参数表型分析。对感官,尤其是听力(主要是 TRβ,TRα的影响较小)、视敏度、视网膜厚度(TRα和TRβ)和肌肉代谢(TRα)的干扰突出了典型 TR 作用的作用。令人震惊的是,选择性削弱典型 TR 作用往往对表型影响甚微,这表明非典型 TR 作用足以维持野生型表型的特定效应。例如,只有在 TRαKO 而非 TRαGS 小鼠中才能观察到巨幼红细胞性贫血、视网膜血管生成减少或焦虑相关行为增加。在雌性 TRαKO 小鼠身上观察到的非典型 TRα 作用改善了能量利用率并防止了多食。总之,通过研究TRα和TRβ基因敲除模型及其DNA结合缺陷突变体和野生型小鼠的表型,我们可以确定TRα和TRβ的非规范作用在调节感觉、行为和新陈代谢功能方面起着至关重要的作用,因而有助于TH的生理效应谱。
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来源期刊
Endocrinology
Endocrinology 医学-内分泌学与代谢
CiteScore
8.10
自引率
4.20%
发文量
195
审稿时长
2-3 weeks
期刊介绍: The mission of Endocrinology is to be the authoritative source of emerging hormone science and to disseminate that new knowledge to scientists, clinicians, and the public in a way that will enable "hormone science to health." Endocrinology welcomes the submission of original research investigating endocrine systems and diseases at all levels of biological organization, incorporating molecular mechanistic studies, such as hormone-receptor interactions, in all areas of endocrinology, as well as cross-disciplinary and integrative studies. The editors of Endocrinology encourage the submission of research in emerging areas not traditionally recognized as endocrinology or metabolism in addition to the following traditionally recognized fields: Adrenal; Bone Health and Osteoporosis; Cardiovascular Endocrinology; Diabetes; Endocrine-Disrupting Chemicals; Endocrine Neoplasia and Cancer; Growth; Neuroendocrinology; Nuclear Receptors and Their Ligands; Obesity; Reproductive Endocrinology; Signaling Pathways; and Thyroid.
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