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Geist, D.

Publications and source records attributed to Geist, D..

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Comparative phenotyping of mice reveals canonical and noncanonical physiological functions of TRα and TRβ

Thyroid hormone (TH) effects are mediated through TH receptors (TRs) TR1, TR{beta}1, and TR{beta}2. The TRs bind to thyroid hormone responsive elements on the DNA and regulate expression of TH target genes as ligand dependent transcription factors (canonical signaling). In addition, the TRs and {beta} mediate activation of signaling pathways, e.g. the PI3K/AKT and MAPK/ERK pathways (noncanonical signaling). Whether such DNA-binding independent TR action contributes to the spectrum of physiological TH effects is largely unknown. The aim of this study was to attribute physiological effects to the two TR isoforms and {beta} and their canonical and noncanonical signaling. We conducted multi-parameter phenotyping in male and female TR knockout mice (TRKO, TR{beta}KO), mice with disrupted canonical signaling due to a mutation in the TR DNA-binding domain (TRGS, TR{beta}GS) and their respective wild-type littermates. Perturbations in senses, especially hearing (mainly TR{beta} with a lesser impact of TR), visual acuity and retinal thickness (TR and TR{beta}), in muscle metabolism (TR) and in heart rate (TR) highlighted the role of canonical TR action. Strikingly, selective abrogation of canonical TR action often had little to no 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 TRKO, but not TRGS mice. Noncanonical TR action increased the efficiency of energy utilization and prevented hyperphagia observed in TRKO mice. In summary, by examining the phenotypes of TR and TR{beta} knockout models alongside their DNA-binding-deficient GS mutants and wildtype counterparts, we could establish that the independent noncanonical actions of TR and TR{beta} play a crucial role in modulating sensory, behavioral, and metabolic functions. This comparison underscores the significance of the TRs in orchestrating a spectrum of physiological processes beyond their traditional genomic pathways.

physiology↗

Canonical and noncanonical contribution of thyroid hormone receptor isoforms alpha and beta to cardiac hypertrophy and heart rate in male mice

BackgroundStimulation of ventricular hypertrophy and heart rate are two major cardiac effects of thyroid hormone (TH). Aim of this study was to determine in vivo which TH receptor (TR), or {beta}, and which mode of TR action, canonical gene expression or DNA-binding independent noncanonical action, mediate these effects. Material and methodsWe compared global TR and TR{beta} knockout mice (TRKO; TR{beta}KO) with WT mice to determine the TR isoform responsible for T3 effects. The relevance of TR DNA- binding was studied in mice with a mutation in the DNA-binding domain that selectively abrogates DNA binding and canonical TR action (TRGS; TR{beta}GS). Hearts were studied with echocardiography at baseline and after seven weeks T3-treatment. Gene expression was measured with real-time PCR. Heart rate was recorded with radiotelemetry transmitters for seven weeks in untreated, hypothyroid and T3-treated mice. ResultsT3 induced ventricular hypertrophy in WT and TR{beta}KO mice, but not in TRKO mice. Hypertrophy was also induced in TRGS mice. Thus, hypertrophy is mostly mediated by noncanonical TR action. Similarly, repression of Mhy7 occurred in WT and TRGS mice. Basal heart rate was largely dependent on canonical TR action. But responsiveness to hypothyroidism and T3-treatment as well as expression of pacemaker gene Hcn2 were still preserved in TRKO mice, demonstrating that TR{beta} could compensate for absence of TR. ConclusionT3-induced cardiac hypertrophy could be attributed to noncanonical TR action, whereas heart rate regulation was mediated by canonical TR action. TR{beta} could substitute for canonical, but not noncanonical TR action.

physiology↗