Thyroid hormone availability in the human fetal brain: novel entry pathways and role of radial glia
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T. Visser | J. Bernal | A. Guadaño-Ferraz | D. Salvatore | Inés Gómez de la Riva | D. López-Espíndola | Á. García-Aldea | A. M. Rodríguez-García
[1] N. Saunders,et al. Physiology and molecular biology of barrier mechanisms in the fetal and neonatal brain , 2018, The Journal of physiology.
[2] V. Darras,et al. Deficiency of the Thyroid Hormone Transporter Monocarboxylate Transporter 8 in Neural Progenitors Impairs Cellular Processes Crucial for Early Corticogenesis , 2017, The Journal of Neuroscience.
[3] Sean P. Palecek,et al. Modeling Psychomotor Retardation using iPSCs from MCT8-Deficient Patients Indicates a Prominent Role for the Blood-Brain Barrier. , 2017, Cell stem cell.
[4] J. Dopazo,et al. Global Transcriptome Analysis of Primary Cerebrocortical Cells: Identification of Genes Regulated by Triiodothyronine in Specific Cell Types , 2015, Cerebral cortex.
[5] V. Darras,et al. Characterization of Chicken Thyroid Hormone Transporters. , 2016, Endocrinology.
[6] V. Darras,et al. Mosaic Expression of Thyroid Hormone Regulatory Genes Defines Cell Type-Specific Dependency in the Developing Chicken Cerebellum , 2016, The Cerebellum.
[7] Alex A. Pollen,et al. Molecular Identity of Human Outer Radial Glia during Cortical Development , 2015, Cell.
[8] J. Bernal,et al. Thyroid hormone transporters—functions and clinical implications , 2015, Nature Reviews Endocrinology.
[9] L. Bonilha,et al. Redefining the Pediatric Phenotype of X-Linked Monocarboxylate Transporter 8 (MCT8) Deficiency , 2015, Journal of child neurology.
[10] V. Darras,et al. Expression of thyroid hormone transporters and deiodinases at the brain barriers in the embryonic chicken: Insights into the regulation of thyroid hormone availability during neurodevelopment. , 2015, General and comparative endocrinology.
[11] K. Møllgård,et al. Outer brain barriers in rat and human development , 2015, Front. Neurosci..
[12] M. Marín‐padilla. Human cerebral cortex Cajal-Retzius neuron: development, structure and function. A Golgi study , 2015, Frontiers in Neuroanatomy.
[13] S. Liddelow,et al. The inner CSF–brain barrier: developmentally controlled access to the brain via intercellular junctions , 2015, Front. Neurosci..
[14] J. Bernal,et al. Thyroid hormone transporters—functions and clinical implications , 2015, Nature Reviews Endocrinology.
[15] D. Lev,et al. Mutations of the thyroid hormone transporter MCT8 cause prenatal brain damage and persistent hypomyelination. , 2014, The Journal of clinical endocrinology and metabolism.
[16] V. Darras,et al. Transporters MCT8 and OATP1C1 maintain murine brain thyroid hormone homeostasis. , 2014, The Journal of clinical investigation.
[17] J. Bernal,et al. Thyroid Hormone Action: Astrocyte–Neuron Communication , 2014, Front. Endocrinol..
[18] J. Bernal,et al. Thyroid Hormone Regulation of Gene Expression in Primary Cerebrocortical Cells: Role of Thyroid Hormone Receptor Subtypes and Interactions with Retinoic Acid and Glucocorticoids , 2014, PloS one.
[19] Wieland B. Huttner,et al. Integrin αvβ3 and thyroid hormones promote expansion of progenitors in embryonic neocortex , 2014, Development.
[20] J. Franklyn,et al. MCT8 expression in human fetal cerebral cortex is reduced in severe intrauterine growth restriction , 2013, The Journal of endocrinology.
[21] S. Refetoff,et al. The syndromes of reduced sensitivity to thyroid hormone. , 2013, Biochimica et biophysica acta.
[22] Amrita Pathak,et al. Maternal thyroid hormone deficiency affects the fetal neocorticogenesis by reducing the proliferating pool, rate of neurogenesis and indirect neurogenesis , 2012, Experimental Neurology.
[23] Stijn Van Herck,et al. Dynamic mRNA distribution pattern of thyroid hormone transporters and deiodinases during early embryonic chicken brain development , 2012, Neuroscience.
[24] Anke J. Borgers,et al. Thyroid hormone transporters and deiodinases in the developing human hypothalamus. , 2012, European journal of endocrinology.
[25] M. Palkovits,et al. A Novel Pathway Regulates Thyroid Hormone Availability in Rat and Human Hypothalamic Neurosecretory Neurons , 2012, PloS one.
[26] T. Matsushima,et al. Thyroid hormone determines the start of the sensitive period of imprinting and primes later learning , 2012, Nature Communications.
[27] A. Grüters,et al. Monocarboxylate transporter 8 deficiency: altered thyroid morphology and persistent high triiodothyronine/thyroxine ratio after thyroidectomy. , 2011, European journal of endocrinology.
[28] T. Terasaki,et al. Quantitative membrane protein expression at the blood-brain barrier of adult and younger cynomolgus monkeys. , 2011, Journal of pharmaceutical sciences.
[29] C. Martín,et al. Cerebrospinal fluid control of neurogenesis induced by retinoic acid during early brain development , 2011, Developmental dynamics : an official publication of the American Association of Anatomists.
[30] J. Franklyn,et al. The expression of thyroid hormone transporters in the human fetal cerebral cortex during early development and in N‐Tera‐2 neurodifferentiation , 2011, The Journal of physiology.
[31] M. Wachs,et al. Consumptive hypothyroidism resulting from hepatic vascular tumors in an athyreotic adult. , 2011, The Journal of clinical endocrinology and metabolism.
[32] A. Kalsbeek,et al. Expression of thyroid hormone transporters in the human hypothalamus. , 2011, The Journal of clinical endocrinology and metabolism.
[33] J. Bernal,et al. Lack of action of exogenously administered T3 on the fetal rat brain despite expression of the monocarboxylate transporter 8. , 2011, Endocrinology.
[34] Amrita Pathak,et al. Maternal thyroid hormone before the onset of fetal thyroid function regulates reelin and downstream signaling cascade affecting neocortical neuronal migration. , 2011, Cerebral cortex.
[35] Daniel E. Westholm,et al. The blood-brain barrier thyroxine transporter organic anion-transporting polypeptide 1c1 displays atypical transport kinetics. , 2009, Endocrinology.
[36] A. Peterson,et al. Retinoic Acid from the Meninges Regulates Cortical Neuron Generation , 2009, Cell.
[37] H. Fuchs,et al. Neuronal 3′,3,5-Triiodothyronine (T3) Uptake and Behavioral Phenotype of Mice Deficient in Mct8, the Neuronal T3 Transporter Mutated in Allan–Herndon–Dudley Syndrome , 2009, The Journal of Neuroscience.
[38] J. Bernal,et al. Importance of monocarboxylate transporter 8 for the blood-brain barrier-dependent availability of 3,5,3'-triiodo-L-thyronine. , 2009, Endocrinology.
[39] E. Tate,et al. Expression of the thyroid hormone transporters monocarboxylate transporter-8 (SLC16A2) and organic ion transporter-14 (SLCO1C1) at the blood-brain barrier. , 2008, Endocrinology.
[40] A. Bianco,et al. Activation and inactivation of thyroid hormone by deiodinases: Local action with general consequences , 2008, Cellular and Molecular Life Sciences.
[41] A. S. Clark,et al. Thyroid hormone homeostasis and action in the type 2 deiodinase-deficient rodent brain during development. , 2007, Endocrinology.
[42] J. Bernal. Thyroid hormone receptors in brain development and function , 2007, Nature Clinical Practice Endocrinology &Metabolism.
[43] V. Darras,et al. Abnormal thyroid hormone metabolism in mice lacking the monocarboxylate transporter 8. , 2007, The Journal of clinical investigation.
[44] K. Millen,et al. Tissue-specific thyroid hormone deprivation and excess in monocarboxylate transporter (mct) 8-deficient mice. , 2006, Endocrinology.
[45] Anneke Alkemade,et al. Hypothalamic thyroid hormone feedback in health and disease. , 2006, Progress in brain research.
[46] R. Stevenson,et al. Allan-Herndon-Dudley syndrome and the monocarboxylate transporter 8 (MCT8) gene. , 2005, American journal of human genetics.
[47] E. Fliers,et al. Neuroanatomical pathways for thyroid hormone feedback in the human hypothalamus. , 2005, The Journal of clinical endocrinology and metabolism.
[48] Joseph Altman,et al. The Human Brain During the Second Trimester , 2005 .
[49] A. Uitterlinden,et al. Association between mutations in a thyroid hormone transporter and severe X-linked psychomotor retardation , 2004, The Lancet.
[50] P. Berbel,et al. A moderate and transient deficiency of maternal thyroid function at the beginning of fetal neocorticogenesis alters neuronal migration. , 2004, Endocrinology.
[51] T. Visser,et al. Iodothyronine levels in the human developing brain: major regulatory roles of iodothyronine deiodinases in different areas. , 2004, The Journal of clinical endocrinology and metabolism.
[52] G. D. de Escobar,et al. Maternal thyroid hormones early in pregnancy and fetal brain development. , 2004, Best practice & research. Clinical endocrinology & metabolism.
[53] K. Brockmann,et al. A novel syndrome combining thyroid and neurological abnormalities is associated with mutations in a monocarboxylate transporter gene. , 2004, American journal of human genetics.
[54] Joseph Altman,et al. The Human Brain During the Third Trimester , 2003 .
[55] T. Visser,et al. Identification of Monocarboxylate Transporter 8 as a Specific Thyroid Hormone Transporter* , 2003, Journal of Biological Chemistry.
[56] P. Berbel,et al. Early maternal hypothyroxinemia alters histogenesis and cerebral cortex cytoarchitecture of the progeny. , 2003, The Journal of clinical investigation.
[57] J. Franklyn,et al. Early expression of thyroid hormone deiodinases and receptors in human fetal cerebral cortex. , 2002, Brain research. Developmental brain research.
[58] S. Mandel,et al. A 21-year-old woman with consumptive hypothyroidism due to a vascular tumor expressing type 3 iodothyronine deiodinase. , 2002, The Journal of clinical endocrinology and metabolism.
[59] J. Bernal,et al. Analysis of thyroid hormone-dependent genes in the brain by in situ hybridization. , 2002, Methods in molecular biology.
[60] U. Dräger,et al. Retinoic acid synthesis for the developing telencephalon. , 2001, Cerebral cortex.
[61] M. Álvarez-Dolado,et al. Thyroid Hormone Regulates reelin and dab1Expression During Brain Development , 1999, The Journal of Neuroscience.
[62] K. Dziegielewska,et al. BARRIER MECHANISMS IN THE BRAIN, II. IMMATURE BRAIN , 1999, Clinical and experimental pharmacology & physiology.
[63] J. Bernal,et al. The type 2 iodothyronine deiodinase is expressed primarily in glial cells in the neonatal rat brain. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[64] A. Ruiz-Marcos,et al. Early effects of iodine deficiency on radial glial cells of the hippocampus of the rat fetus. A model of neurological cretinism. , 1997, The Journal of clinical investigation.
[65] G. Innocenti,et al. The development of the anterior commissure in normal and hypothyroid rats. , 1994, Brain research. Developmental brain research.
[66] G. Delong. Effects of nutrition on brain development in humans. , 1993, American Journal of Clinical Nutrition.
[67] M. Godbole,et al. 5'-Monodeiodinase activity in developing human cerebral cortex. , 1993, The American journal of clinical nutrition.
[68] L. Braverman,et al. Role of transthyretin in the transport of thyroxine from the blood to the choroid plexus, the cerebrospinal fluid, and the brain. , 1992, Endocrinology.
[69] M. Dratman,et al. Transport of iodothyronines from bloodstream to brain: contributions by blood:brain and choroid plexus:cerebrospinal fluid barriers , 1991, Brain Research.
[70] M. Obregon,et al. Congenital hypothyroidism, as studied in rats. Crucial role of maternal thyroxine but not of 3,5,3'-triiodothyronine in the protection of the fetal brain. , 1990, The Journal of clinical investigation.
[71] N. Saunders,et al. THE DEVELOPMENT OF THE HUMAN BLOOD‐BRAIN AND BLOOD‐CSF BARRIERS , 1986, Neuropathology and applied neurobiology.
[72] J. Bernal,et al. Ontogenesis of the nuclear 3,5,3'-triiodothyronine receptor in the human fetal brain. , 1984, Endocrinology.
[73] P. Larsen,et al. An analysis of the sources and quantity of 3,5,3'-triiodothyronine specifically bound to nuclear receptors in rat cerebral cortex and cerebellum. , 1982, Endocrinology.
[74] P. Larsen,et al. Relationships between circulating and intracellular thyroid hormones: physiological and clinical implications. , 1981, Endocrine reviews.
[75] M. Adinolfi,et al. Levels of Plasma Proteins in Human and Rat Fetal CSF and the Development of the Blood-CSF Barrier , 1977, Neuropadiatrie.
[76] P. Rakić,et al. Neuronal migration, with special reference to developing human brain: a review. , 1973, Brain research.
[77] J. Altman,et al. The effects of early hypo- and hyperthyroidism on the development of the rat cerebellar cortex. II. Synaptogenesis in the molecular layer. , 1972, Brain research.