Literature DB >> 7400328

Phenolic and tyrosyl ring deiodination of iodothyronines in rat brain homogenates.

M M Kaplan, K A Yaskoski.   

Abstract

Conversion of thyroxine (T(4)) to 3,5,3'-triiodothyronine (T(3)) in rat brain has recently been shown in in vivo studies. This process contributes a substantial fraction of endogenous nuclear T(3) in the rat cerebral cortex and cerebellum. Production of T(4) metabolites besides T(3) in the brain has also been suggested. To determine the nature of these reactions, we studied metabolism of 0.2-1.0 nM [(125)I]T(4) and 0.1-0.3 nM [(131)I]T(3) in whole homogenates and subcellular fractions of rat cerebral cortex and cerebellum. Dithiothreitol (DTT) was required for detectable metabolic reactions: 100 mM DTT was routinely used. Ethanol extracts of incubation mixtures were analyzed by paper chromatography in t-amyl alcohol:hexane:ammonia and in 1-butanol:acetic acid. Rates of production of iodothyronines from T(4) and T(3) were greater at pH 7.5 than at 6.4 or 8.6 and greater at 37 degrees C than at 22 degrees or 4 degrees C. Lowering the pH, reducing the protein or DTT concentrations, and preheating homogenates to 100 degrees C all increased excess I(-) production but reduced iodothyronine production. In cerebral cortical homogenates from normal rats, products of T(4) degradation were as follows (percent added T(4)+/-SEM in nine experiments): T(3), 1.9+/-0.5%; 3,3',5'-triiodothyronine (rT(3)), 34.0+/-2.4%; 3,3'-diiodothyronine (3,3'-T(2)), 5.8+/-1.6%; 3'-iodothyronine (3'-T(1)), </=2.5%; and excess I(-), 4.7+/-1.2%. In the same experiments, products of T(3) degradation were 3,3'-T(2), 63.3+/-5.5%, and 3'-T(1), 12.6+/-1.4%. Cerebral cortical homogenates from hyperthyroid rats and normals were similar in regard to T(4) to T(3) deiodination. In contrast, in cerebral cortical homogenates from hypothyroid rats, phenolic ring deiodination rates were increased and tyrosyl ring deiodination rates were decreased compared with normals.T(4) to T(3) conversion rates in cerebellar homogenates were greater than rates in cerebral cortical homogenates from the same normal rats and less than rates in cerebellar homogenates from hypothyroid rats. T(4) and T(3) tyrosyl ring deiodination rates were greatly diminished in cerebellar homogenates compared with cerebral cortical homogenates in normal and hypothyroid rats. High-speed (1,000-160,000 g) pellets from cerebral cortical homogenates were enriched in phenolic and tyrosyl ring deiodinating activities relative to cytosol. Fractional conversion of T(4) to T(3) was inhibited by T(4), iopanoic acid, and rT(3), but not by T(3). Tyrosyl ring deiodination reactions were inhibited by T(3), T(4), and iopanoic acid, but not by rT(3). These studies demonstrate separate phenolic and tyrosyl ring iodothyronine deiodinase enzymes in rat brain. The brain phenolic ring deiodinase serves in vivo as a T(4) 5'-deiodinase and closely resembles anterior pituitary T(4) 5'-deiodinase in physiological and biochemical characteristics. The physiological significance of the tyrosyl ring iodothyronine deiodinase enzyme is unclear; it shares several properties with rat hepatic T(4) 5-deiodinase.

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Year:  1980        PMID: 7400328      PMCID: PMC371684          DOI: 10.1172/JCI109887

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


  48 in total

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2.  Nuclear triiodothyronine receptor sites in brain: probable identity with hepatic receptors and regional distribution.

Authors:  H L Schwartz; J H Oppenheimer
Journal:  Endocrinology       Date:  1978-07       Impact factor: 4.736

3.  Myxoedematous madness.

Authors:  R ASHER
Journal:  Br Med J       Date:  1949-09-10

4.  Iodothyronine metabolism in rat liver homogenates.

Authors:  M M Kaplan; R D Utiger
Journal:  J Clin Invest       Date:  1978-02       Impact factor: 14.808

5.  Influence of metabolic factors on brain development.

Authors:  R Balázs
Journal:  Br Med Bull       Date:  1974-05       Impact factor: 4.291

6.  Comparison of thyroxine and 3,3',5'-triiodothyronine metabolism in rat kidney and liver homogenates.

Authors:  M M Kaplan; J B Tatro; R Breitbart; P R Larsen
Journal:  Metabolism       Date:  1979-11       Impact factor: 8.694

7.  Physiological and pharmacological influences on thyroxine to 3,5,3'-triiodothyronine conversion and nuclear 3,5,3'-triiodothyronine binding in rat anterior pituitary.

Authors:  R G Cheron; M M Kaplan; P R Larsen
Journal:  J Clin Invest       Date:  1979-11       Impact factor: 14.808

8.  Concentrations of triiodo-L-thyronine in the plasma and tissues of normal rats, as determined by radioimmunoassay: comparison with results obtained by an isotopic equilibrium technique.

Authors:  M J Obregon; G Morreale de Escobar; F Escobar del Rey
Journal:  Endocrinology       Date:  1978-12       Impact factor: 4.736

9.  Investigations on the deiodination of thyroxine (T4) to 3,3'-diiodothyronine (3,3'-T2) in rat liver homogenate.

Authors:  M Hüfner; M Grussendorf
Journal:  Clin Chim Acta       Date:  1978-05-02       Impact factor: 3.786

10.  Inhibition of intrapituitary thyroxine to 3.5.3'-triiodothyronine conversion prevents the acute suppression of thyrotropin release by thyroxine in hypothyroid rats.

Authors:  P R Larsen; T E Dick; B P Markovitz; M M Kaplan; T G Gard
Journal:  J Clin Invest       Date:  1979-07       Impact factor: 14.808

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  33 in total

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2.  Guidelines for the treatment of hypothyroidism: prepared by the american thyroid association task force on thyroid hormone replacement.

Authors:  Jacqueline Jonklaas; Antonio C Bianco; Andrew J Bauer; Kenneth D Burman; Anne R Cappola; Francesco S Celi; David S Cooper; Brian W Kim; Robin P Peeters; M Sara Rosenthal; Anna M Sawka
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3.  Type 3 iodothyronine deiodinase in neonatal goats: molecular cloning, expression, localization, and methylation signature.

Authors:  Tao Zhong; Peng-Fei Jin; Wei Zhao; Lin-Jie Wang; Li Li; Hong-Ping Zhang
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4.  Adult onset of type 3 deiodinase deficiency in mice alters brain gene expression and increases locomotor activity.

Authors:  J Patrizia Stohn; M Elena Martinez; Donald L St Germain; Arturo Hernandez
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Review 5.  Thyroid Hormone Signaling in Oligodendrocytes: from Extracellular Transport to Intracellular Signal.

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6.  Iodothyronine deiodination in the brain of diabetic rats: influence of thyroid status.

Authors:  L A Gavin; R R Cavalieri
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7.  Impaired swim bladder inflation in early life stage fathead minnows exposed to a deiodinase inhibitor, iopanoic acid.

Authors:  Jenna E Cavallin; Gerald T Ankley; Brett R Blackwell; Chad A Blanksma; Kellie A Fay; Kathleen M Jensen; Michael D Kahl; Dries Knapen; Patricia A Kosian; Shane T Poole; Eric C Randolph; Anthony L Schroeder; Lucia Vergauwen; Daniel L Villeneuve
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8.  Kinetic evidence suggesting two mechanisms for iodothyronine 5'-deiodination in rat cerebral cortex.

Authors:  T J Visser; J L Leonard; M M Kaplan; P R Larsen
Journal:  Proc Natl Acad Sci U S A       Date:  1982-08       Impact factor: 11.205

9.  Evidence for two tissue-specific pathways for in vivo thyroxine 5'-deiodination in the rat.

Authors:  J E Silva; J L Leonard; F R Crantz; P R Larsen
Journal:  J Clin Invest       Date:  1982-05       Impact factor: 14.808

Review 10.  Expression of thyroid hormone receptor isoforms in the oligodendrocyte lineage.

Authors:  Louis L Sarliève; Angeles Rodríguez-Peña; Keith Langley
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