Literature DB >> 23524969

Coordination of hypothalamic and pituitary T3 production regulates TSH expression.

Tatiana L Fonseca1, Mayrin Correa-Medina, Maira P O Campos, Gabor Wittmann, Joao P Werneck-de-Castro, Rafael Arrojo e Drigo, Magda Mora-Garzon, Cintia Bagne Ueta, Alejandro Caicedo, Csaba Fekete, Balazs Gereben, Ronald M Lechan, Antonio C Bianco.   

Abstract

Type II deiodinase (D2) activates thyroid hormone by converting thyroxine (T4) to 3,5,3'-triiodothyronine (T3). This allows plasma T4 to signal a negative feedback loop that inhibits production of thyrotropin-releasing hormone (TRH) in the mediobasal hypothalamus (MBH) and thyroid-stimulating hormone (TSH) in the pituitary. To determine the relative contributions of these D2 pathways in the feedback loop, we developed 2 mouse strains with pituitary- and astrocyte-specific D2 knockdown (pit-D2 KO and astro-D2 KO mice, respectively). The pit-D2 KO mice had normal serum T3 and were systemically euthyroid, but exhibited an approximately 3-fold elevation in serum TSH levels and a 40% reduction in biological activity. This was the result of elevated serum T4 that increased D2-mediated T3 production in the MBH, thus decreasing Trh mRNA. That tanycytes, not astrocytes, are the cells within the MBH that mediate T4-to-T3 conversion was defined by studies using the astro-D2 KO mice. Despite near-complete loss of brain D2, tanycyte D2 was preserved in astro-D2 KO mice at levels that were sufficient to maintain both the T4-dependent negative feedback loop and thyroid economy. Taken together, these data demonstrated that the hypothalamic-thyroid axis is wired to maintain normal plasma T3 levels, which is achieved through coordination of T4-to-T3 conversion between thyrotrophs and tanycytes.

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Year:  2013        PMID: 23524969      PMCID: PMC3613903          DOI: 10.1172/JCI61231

Source DB:  PubMed          Journal:  J Clin Invest        ISSN: 0021-9738            Impact factor:   14.808


  48 in total

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2.  Inhibition of the type 2 iodothyronine deiodinase underlies the elevated plasma TSH associated with amiodarone treatment.

Authors:  Matthew L Rosene; Gábor Wittmann; Rafael Arrojo e Drigo; Praful S Singru; Ronald M Lechan; Antonio C Bianco
Journal:  Endocrinology       Date:  2010-10-06       Impact factor: 4.736

Review 3.  Thermogenic mechanisms and their hormonal regulation.

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4.  Atypical expression of type 2 iodothyronine deiodinase in thyrotrophs explains the thyroxine-mediated pituitary thyrotropin feedback mechanism.

Authors:  Marcelo A Christoffolete; Rogério Ribeiro; Praful Singru; Csaba Fekete; Wagner S da Silva; David F Gordon; Stephen A Huang; Alessandra Crescenzi; John W Harney; E Chester Ridgway; P Reed Larsen; Ronald M Lechan; Antonio C Bianco
Journal:  Endocrinology       Date:  2006-01-05       Impact factor: 4.736

5.  Stabilization, partial purification, and characterization of thyrotropin receptors in solubilized guinea pig fat cell membranes.

Authors:  Y Iida; S M Amir; S H Ingbar
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6.  Regional distribution of type 2 thyroxine deiodinase messenger ribonucleic acid in rat hypothalamus and pituitary and its regulation by thyroid hormone.

Authors:  H M Tu; S W Kim; D Salvatore; T Bartha; G Legradi; P R Larsen; R M Lechan
Journal:  Endocrinology       Date:  1997-08       Impact factor: 4.736

7.  Thyroid-stimulating hormone restores bone volume, microarchitecture, and strength in aged ovariectomized rats.

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8.  Transforming growth factor-beta promotes inactivation of extracellular thyroid hormones via transcriptional stimulation of type 3 iodothyronine deiodinase.

Authors:  Stephen A Huang; Michelle A Mulcahey; Alessandra Crescenzi; Mirra Chung; Brian W Kim; Carmen Barnes; Wichert Kuijt; Helen Turano; John Harney; P Reed Larsen
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9.  Lipopolysaccharide induces type 2 iodothyronine deiodinase in the mediobasal hypothalamus: implications for the nonthyroidal illness syndrome.

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10.  Hypothyroidism in thyroid transcription factor 1 haploinsufficiency is caused by reduced expression of the thyroid-stimulating hormone receptor.

Authors:  Lars C Moeller; Shioko Kimura; Takashi Kusakabe; Xiao-Hui Liao; Jacqueline Van Sande; Samuel Refetoff
Journal:  Mol Endocrinol       Date:  2003-08-07
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  55 in total

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Review 2.  Paradigms of Dynamic Control of Thyroid Hormone Signaling.

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Review 3.  Deciphering direct and indirect influence of thyroid hormone with mouse genetics.

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5.  Effects of growth hormone on thyroid function are mediated by type 2 iodothyronine deiodinase in humans.

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Review 6.  Thyroid disease in end-stage renal disease.

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7.  Impaired swim bladder inflation in early life stage fathead minnows exposed to a deiodinase inhibitor, iopanoic acid.

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Review 8.  Thyroid functional disease: an under-recognized cardiovascular risk factor in kidney disease patients.

Authors:  Connie M Rhee; Gregory A Brent; Csaba P Kovesdy; Offie P Soldin; Danh Nguyen; Matthew J Budoff; Steven M Brunelli; Kamyar Kalantar-Zadeh
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9.  Thyroid Hormone Signaling in Male Mouse Skeletal Muscle Is Largely Independent of D2 in Myocytes.

Authors:  Joao P Werneck-de-Castro; Tatiana L Fonseca; Daniele L Ignacio; Gustavo W Fernandes; Cristina M Andrade-Feraud; Lattoya J Lartey; Marcelo B Ribeiro; Miriam O Ribeiro; Balazs Gereben; Antonio C Bianco
Journal:  Endocrinology       Date:  2015-07-27       Impact factor: 4.736

10.  A thyroid hormone challenge in hypothyroid rats identifies T3 regulated genes in the hypothalamus and in models with altered energy balance and glucose homeostasis.

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Journal:  Thyroid       Date:  2014-09-02       Impact factor: 6.568

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