journal article Mar 01, 2007

Thyroid hormone receptors in brain development and function

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References
71
[1]
Bernal J (2005) Thyroid hormones and brain development. Vitam Horm 71: 95–122 10.1016/s0083-6729(05)71004-9
[2]
Joffe RT and Sokolov ST (1994) Thyroid hormones, the brain, and affective disorders. Crit Rev Neurobiol 8: 45–63
[3]
Bauer M and Whybrow PC (2001) Thyroid hormone, neural tissue and mood modulation. World J Biol Psychiatry 2: 59–69 10.3109/15622970109027495
[4]
Yen PM (2001) Physiological and molecular basis of thyroid hormone action. Physiol Rev 81: 1097–1142 10.1152/physrev.2001.81.3.1097
[5]
Nagy L and Schwabe JW (2004) Mechanism of the nuclear receptor molecular switch. Trends Biochem Sci 29: 317–324 10.1016/j.tibs.2004.04.006
[6]
McKenna NJ and O'Malley BW (2002) Combinatorial control of gene expression by nuclear receptors and coregulators. Cell 108: 465–474 10.1016/s0092-8674(02)00641-4
[7]
Rosenfeld MG et al. (2006) Sensors and signals: a coactivator/corepressor/epigenetic code for integrating signal-dependent programs of transcriptional response. Genes Dev 20: 1405–1428 10.1101/gad.1424806
[8]
Davis PJ et al. (2005) Membrane receptors mediating thyroid hormone action. Trends Endocrinol Metab 16: 429–435 10.1016/j.tem.2005.09.007
[9]
Cao X et al. (2005) Thyroid hormone induces rapid activation of Akt/protein kinase B-mammalian target of rapamycin-p70S6K cascade through phosphatidylinositol 3-kinase in human fibroblasts. Mol Endocrinol 19: 102–112 10.1210/me.2004-0093
[10]
Storey NM et al. (2006) Rapid signaling at the plasma membrane by a nuclear receptor for thyroid hormone. Proc Natl Acad Sci USA 103: 5197–5201 10.1073/pnas.0600089103
[11]
Scanlan TS et al. (2004) 3-Iodothyronamine is an endogenous and rapid-acting derivative of thyroid hormone. Nat Med 10: 638–642 10.1038/nm1051
[12]
Silva JE and Matthews PS (1984) Production rates and turnover of triiodothyronine in rat-developing cerebral cortex and cerebellum. Responses to hypothyroidism. J Clin Invest 74: 1035–1049 10.1172/jci111471
[13]
Guadaño-Ferraz A et al. (1997) The type 2 iodothyronine deiodinase is expressed primarily in glial cells in the neonatal rat brain. Proc Natl Acad Sci USA 94: 10391–10396 10.1073/pnas.94.19.10391
[14]
Tu HM et al. (1997) Regional distribution of type 2 thyroxine deiodinase messenger ribonucleic acid in rat hypothalamus and pituitary and its regulation by thyroid hormone. Endocrinology 138: 3359–3368
[15]
Tu HM et al. (1999) Regional expression of the type 3 iodothyronine deiodinase messenger ribonucleic acid in the rat central nervous system and its regulation by thyroid hormone. Endocrinology 140: 784–790
[16]
Dumitrescu AM et al. (2004) A novel syndrome combining thyroid and neurological abnormalities is associated with mutations in a monocarboxylate transporter gene. Am J Hum Genet 74: 168–175 10.1086/380999
[17]
Friesema EC et al. (2004) Association between mutations in a thyroid hormone transporter and severe X-linked psychomotor retardation. Lancet 364: 1435–1437 10.1016/s0140-6736(04)17226-7
[18]
Bernal J and Pekonen F (1984) Ontogenesis of the nuclear 3,5,3′-triiodothyronine receptor in the human fetal brain. Endocrinology 114: 677–679
[19]
Morreale de Escobar G et al. (2004) Role of thyroid hormone during early brain development. Eur J Endocrinol 151 (Suppl 3): U25–U37 10.1530/eje.0.151u025
[20]
Haddow JE et al. (1999) Maternal thyroid deficiency during pregnancy and subsequent neuropsychological development of the child. N Engl J Med 341: 549–555 10.1056/nejm199908193410801
[21]
Vermiglio F et al. (2004) Attention deficit and hyperactivity disorders in the offspring of mothers exposed to mild-moderate iodine deficiency: a possible novel iodine deficiency disorder in developed countries. J Clin Endocrinol Metab 89: 6054–6060 10.1210/jc.2004-0571
[22]
Vermiglio F et al. (1995) Maternal hypothyroxinaemia during the first half of gestation in an iodine deficient area with endemic cretinism and related disorders. Clin Endocrinol Oxf 42: 409–415 10.1111/j.1365-2265.1995.tb02650.x
[23]
Fierro Benitez R et al. (1974) The clinical pattern of cretinism as seen in Highland Ecuador. Am J Clin Nutr 27: 531–543 10.1093/ajcn/27.5.531
[24]
Delong GR et al. (1985) Neurological signs in congenital iodine-deficiency disorder (endemic cretinism). Develop Med Child Neurol 27: 317–324 10.1111/j.1469-8749.1985.tb04542.x
[25]
Yasuda T et al. (1999) Outcome of a baby born from a mother with acquired juvenile hypothyroidism having undetectable thyroid hormone concentrations. J Clin Endocrinol Metab 84: 2630–2632
[26]
Kester MH et al. (2004) Iodothyronine levels in the human developing brain: major regulatory roles of iodothyronine deiodinases in different areas. J Clin Endocrinol Metab 89: 3117–3128 10.1210/jc.2003-031832
[27]
Porterfield SP and Hendrich CE (1993) The role of thyroid hormones in prenatal and neonatal neurological development. Current perspectives. Endocrine Rev 14: 94–106
[28]
Legrand J (1984) Effects of thyroid hormones on central nervous system. In Neurobehavioral Teratology, 331–363 (Ed. Yanai J) Amsterdam: Elsevier Science Publishers
[29]
Koibuchi N et al. (2003) Current perspectives on the role of thyroid hormone in growth and development of cerebellum. Cerebellum 2: 279–289 10.1080/14734220310011920
[30]
Thompson CC and Potter GB (2000) Thyroid hormone action in neural development. Cereb Cortex 10: 939–945 10.1093/cercor/10.10.939
[31]
Anderson GW et al. (2003) Control of thyroid hormone action in the developing rat brain. Thyroid 13: 1039–1056 10.1089/105072503770867219
[32]
Perez-Castillo A et al. (1985) The early ontogenesis of thyroid hormone receptor in the rat fetus. Endocrinology 117: 2457–2461
[33]
Bradley DJ et al. (1992) Spatial and temporal expression of α- and β-thyroid hormone receptor mRNAs, including the β2-subtype, in the developing mammalian nervous system. J Neurosci 12: 2288–2302 10.1523/jneurosci.12-06-02288.1992
[34]
Howdeshell KL (2002) A model of the development of the brain as a construct of the thyroid system. Environ Health Perspect 110 (Suppl 3): 337–348 10.1289/ehp.02110s3337
[35]
Morreale de Escobar G et al. (1990) Contribution of maternal thyroxine to fetal thyroxine pools in normal rats near term. Endocrinology 126: 2765–2767 10.1210/endo-126-5-2765
[36]
Vulsma T et al. (1989) Maternal-fetal transfer of thyroxine in congenital hypothyroidism due to a total organification defect or thyroid agenesis. N Engl J Med 321: 13–16 10.1056/nejm198907063210103
[37]
Calvo RM et al. (2002) Fetal tissues are exposed to biologically relevant free thyroxine concentrations during early phases of development. J Clin Endocrinol Metab 87: 1768–1777 10.1210/jcem.87.4.8434
[38]
Galton VA et al. (1999) Pregnant rat uterus expresses high levels of the type 3 iodothyronine deiodinase. J Clin Invest 103: 979–987 10.1172/jci6073
[39]
Lavado-Autric R et al. (2003) Early maternal hypothyroxinemia alters histogenesis and cerebral cortex cytoarchitecture of the progeny. J Clin Invest 111: 1073–1082 10.1172/jci200316262
[40]
Ausó E et al. (2004) A moderate and transient deficiency of maternal thyroid function at the beginning of fetal neocorticogenesis alters neuronal migration. Endocrinology 145: 4037–4047 10.1210/en.2004-0274
[41]
Utiger RD (1999) Maternal hypothyroidism and fetal development. N Engl J Med 341: 601–602 10.1056/nejm199908193410809
[42]
Morreale de Escobar G et al. (2000) Is neuropsychological development related to maternal hypothyroidism, or to maternal hypothyroxinemia? J Clin Endocrinol Metab 85: 3975–3987
[43]
Forrest D and Vennstrom B (2000) Functions of thyroid hormone receptors in mice. Thyroid 10: 41–52 10.1089/thy.2000.10.41
[44]
O'Shea PJ and Williams GR (2002) Insight into the physiological actions of thyroid hormone receptors from genetically modified mice. J Endocrinol 175: 553–570 10.1677/joe.0.1750553
[45]
Ercan-Fang S et al. (1996) Isoform specific 3,5,3′-triiodothyronine receptor binding capacity and messenger ribonucleic acid content in rat adenohypophysis: effect of thyroidal state and comparison with extrapituitary tissues. Endocrinology 137: 3228–3233
[46]
Yoshihara HA et al. (2003) Design and synthesis of receptor ligands. Methods Enzymol 364: 71–91 10.1016/s0076-6879(03)64005-x
[47]
Baxter JD et al. (2004) Selective activation of thyroid hormone signaling pathways by GC-1: a new approach to controlling cholesterol and body weight. Trends Endocrinol Metab 15: 154–157 10.1016/j.tem.2004.03.008
[48]
Morte B et al. (2002) Deletion of the thyroid hormone receptor α 1 prevents the structural alterations of the cerebellum induced by hypothyroidism. Proc Natl Acad Sci USA 99: 3985–3989 10.1073/pnas.062413299
[49]
Manzano J et al. (2003) Differential effects of triiodothyronine and the thyroid hormone receptor β-specific agonist GC-1 on thyroid hormone target genes in the brain. Endocrinology 144: 5480–5487
[50]
Roberts MR et al. (2006) Making the gradient: thyroid hormone regulates cone opsin expression in the developing mouse retina. Proc Natl Acad Sci USA 103: 6218–6223 10.1073/pnas.0509981103

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Published
Mar 01, 2007
Vol/Issue
3(3)
Pages
249-259
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Cite This Article
Juan Bernal (2007). Thyroid hormone receptors in brain development and function. Nature Clinical Practice Endocrinology & Metabolism, 3(3), 249-259. https://doi.org/10.1038/ncpendmet0424
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