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非典型甲状腺激素信号转导介导体内的心脏代谢效应。

Noncanonical thyroid hormone signaling mediates cardiometabolic effects in vivo.

机构信息

Department of Endocrinology, Diabetes and Metabolism, University Hospital Essen, University of Duisburg-Essen, 45147 Essen, Germany.

Molecular Endocrinology Laboratory, Department of Medicine, Imperial College London, London W12 0NN, United Kingdom.

出版信息

Proc Natl Acad Sci U S A. 2017 Dec 26;114(52):E11323-E11332. doi: 10.1073/pnas.1706801115. Epub 2017 Dec 11.

Abstract

Thyroid hormone (TH) and TH receptors (TRs) α and β act by binding to TH response elements (TREs) in regulatory regions of target genes. This nuclear signaling is established as the canonical or type 1 pathway for TH action. Nevertheless, TRs also rapidly activate intracellular second-messenger signaling pathways independently of gene expression (noncanonical or type 3 TR signaling). To test the physiological relevance of noncanonical TR signaling, we generated knockin mice with a mutation in the TR DNA-binding domain that abrogates binding to DNA and leads to complete loss of canonical TH action. We show that several important physiological TH effects are preserved despite the disruption of DNA binding of TRα and TRβ, most notably heart rate, body temperature, blood glucose, and triglyceride concentration, all of which were regulated by noncanonical TR signaling. Additionally, we confirm that TRE-binding-defective TRβ leads to disruption of the hypothalamic-pituitary-thyroid axis with resistance to TH, while mutation of TRα causes a severe delay in skeletal development, thus demonstrating tissue- and TR isoform-specific canonical signaling. These findings provide in vivo evidence that noncanonical TR signaling exerts physiologically important cardiometabolic effects that are distinct from canonical actions. These data challenge the current paradigm that in vivo physiological TH action is mediated exclusively via regulation of gene transcription at the nuclear level.

摘要

甲状腺激素 (TH) 和 TH 受体 (TRs)α 和β通过与靶基因调节区域中的 TH 反应元件 (TREs) 结合来发挥作用。这种核信号被确立为 TH 作用的经典或 1 型途径。然而,TRs 也可以独立于基因表达快速激活细胞内第二信使信号通路(非经典或 3 型 TR 信号)。为了测试非经典 TR 信号的生理相关性,我们生成了一种突变型 knockin 小鼠,该突变型在 TR DNA 结合域中发生突变,从而阻止与 DNA 的结合,并导致经典 TH 作用完全丧失。我们表明,尽管 TRα 和 TRβ 的 DNA 结合受到干扰,但几种重要的生理 TH 效应仍然得到保留,尤其是心率、体温、血糖和甘油三酯浓度,所有这些都受非经典 TR 信号的调节。此外,我们证实 TRE 结合缺陷型 TRβ 导致下丘脑-垂体-甲状腺轴紊乱,对 TH 产生抵抗,而 TRα 的突变则导致骨骼发育严重延迟,从而证明了组织和 TR 同工型特异性的经典信号。这些发现为非经典 TR 信号发挥与经典作用不同的重要生理代谢效应提供了体内证据。这些数据挑战了当前的范式,即体内生理 TH 作用仅通过核水平的基因转录调节来介导。

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