Retinoic acid delineates the topography of neuronal plasticity in postnatal cerebral cortex
暂无分享,去创建一个
[1] U. Dräger. Retinoic Acid Signaling in the Functioning Brain , 2006, Science's STKE.
[2] D. Badcock,et al. Abnormal global processing along the dorsal visual pathway in autism: a possible mechanism for weak visuospatial coherence? , 2005, Neuropsychologia.
[3] P. Chambon,et al. Retinoic Acid Signaling Affects Cortical Synchrony During Sleep , 2005, Science.
[4] Daniel P. Kennedy,et al. Autism at the beginning: Microstructural and growth abnormalities underlying the cognitive and behavioral phenotype of autism , 2005, Development and Psychopathology.
[5] D. Lewis,et al. Cortical inhibitory neurons and schizophrenia , 2005, Nature Reviews Neuroscience.
[6] G. Duester,et al. Retinoic acid generated by Raldh2 in mesoderm is required for mouse dorsal endodermal pancreas development , 2005, Developmental dynamics : an official publication of the American Association of Anatomists.
[7] M. Lane,et al. Role of retinoid signalling in the adult brain , 2005, Progress in Neurobiology.
[8] N. Craddock,et al. Structural variants in the retinoid receptor genes in patients with schizophrenia and other psychiatric diseases , 2005, American journal of medical genetics. Part B, Neuropsychiatric genetics : the official publication of the International Society of Psychiatric Genetics.
[9] A. Kimura,et al. Efferent connections of “posterodorsal” auditory area in the rat cortex: Implications for auditory spatial processing , 2004, Neuroscience.
[10] U. Dräger,et al. A retinoic-acid critical period in the early postnatal mouse brain , 2004, Biological Psychiatry.
[11] Ruth A. Carper,et al. Autism and Abnormal Development of Brain Connectivity , 2004, The Journal of Neuroscience.
[12] Helen J. Neville,et al. Asynchronies in the Development of Electrophysiological Responses to Motion and Color , 2004, Journal of Cognitive Neuroscience.
[13] I. Soltesz,et al. Plasticity of interneuronal species diversity and parameter variance in neurological diseases , 2004, Trends in Neurosciences.
[14] Pat Levitt,et al. Regulation of neocortical interneuron development and the implications for neurodevelopmental disorders , 2004, Trends in Neurosciences.
[15] Szabolcs Kéri,et al. Vernier threshold in patients with schizophrenia and in their unaffected siblings. , 2004, Neuropsychology.
[16] M. Goodale,et al. An evolving view of duplex vision: separate but interacting cortical pathways for perception and action , 2004, Current Opinion in Neurobiology.
[17] E K Perry,et al. Autism as a disorder of neural information processing: directions for research and targets for therapy* , 2004, Molecular Psychiatry.
[18] U. Dräger,et al. Retinoic acid signaling in the brain marks formation of optic projections, maturation of the dorsal telencephalon, and function of limbic sites , 2004, The Journal of comparative neurology.
[19] E. McKone,et al. Adults with dyslexia show deficits on spatial frequency doubling and visual attention tasks. , 2004, Dyslexia.
[20] J. Atkinson,et al. Normal and anomalous development of visual motion processing: motion coherence and ‘dorsal-stream vulnerability’ , 2003, Neuropsychologia.
[21] E. Grove,et al. Generating the cerebral cortical area map. , 2003, Annual review of neuroscience.
[22] P. Chambon,et al. A newborn lethal defect due to inactivation of retinaldehyde dehydrogenase type 3 is prevented by maternal retinoic acid treatment , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[23] D. Javitt,et al. Magnocellular and parvocellular contributions to backward masking dysfunction in schizophrenia , 2003, Schizophrenia Research.
[24] M. Merzenich,et al. Model of autism: increased ratio of excitation/inhibition in key neural systems , 2003, Genes, brain, and behavior.
[25] Tamás F Freund,et al. Interneuron Diversity series: Rhythm and mood in perisomatic inhibition , 2003, Trends in Neurosciences.
[26] Emily Gale,et al. Retinoic acid signalling centres in the avian embryo identified by sites of expression of synthesising and catabolising enzymes , 2003, Developmental dynamics : an official publication of the American Association of Anatomists.
[27] B. Faivre,et al. Immune Activation Rapidly Mirrored in a Secondary Sexual Trait , 2003, Science.
[28] L. Jakobson,et al. Periventricular brain injury, visual motion processing, and reading and spelling abilities in children who were extremely low birthweight. , 2003, Journal of the International Neuropsychological Society : JINS.
[29] U. Dräger,et al. Retinoic acid synthesis in the postnatal mouse brain marks distinct developmental stages and functional systems. , 2002, Cerebral cortex.
[30] S. Mcconnell,et al. Neurotrophin-3 Is Required for Appropriate Establishment of Thalamocortical Connections , 2002, Neuron.
[31] R. Dolan,et al. Emotion, Cognition, and Behavior , 2002, Science.
[32] A. Norcia,et al. Late Maturation of Visual Hyperacuity , 2002, Psychological science.
[33] U. Dräger,et al. Retinoic acid synthesis for the developing telencephalon. , 2001, Cerebral cortex.
[34] K. Willecke,et al. hGFAP‐cre transgenic mice for manipulation of glial and neuronal function in vivo , 2001, Genesis.
[35] T. Paus. Primate anterior cingulate cortex: Where motor control, drive and cognition interface , 2001, Nature Reviews Neuroscience.
[36] K. Umesono,et al. Aldehyde Dehydrogenase 6, a Cytosolic Retinaldehyde Dehydrogenase Prominently Expressed in Sensory Neuroepithelia during Development* , 2000, The Journal of Biological Chemistry.
[37] U. Dräger,et al. A retinoic acid synthesizing enzyme in ventral retina and telencephalon of the embryonic mouse , 2000, Mechanisms of Development.
[38] U. Dräger,et al. Retinoids in embryonal development. , 2000, Physiological reviews.
[39] U. Dräger,et al. Retinoic acid in the formation of the dorsoventral retina and its central projections. , 2000, Developmental biology.
[40] Z. Baquet,et al. Expression of neurotrophin‐3 in the mouse forebrain: Insights from a targeted LacZ reporter , 2000, The Journal of comparative neurology.
[41] J. Shenai. Vitamin A supplementation in very low birth weight neonates: rationale and evidence. , 1999, Pediatrics.
[42] Jean-Pierre Julien,et al. Neurofilament functions in health and disease , 1999, Current Opinion in Neurobiology.
[43] J. Michael Wyss,et al. Efferent connections of the anteromedial nucleus of the thalamus of the rat , 1999, Brain Research Reviews.
[44] P. Chambon,et al. Differential expression of retinoid receptors in the adult mouse central nervous system , 1999, Neuroscience.
[45] P. Chambon,et al. Embryonic retinoic acid synthesis is essential for early mouse post-implantation development , 1999, Nature Genetics.
[46] P. Hof,et al. Cellular distribution of the calcium-binding proteins parvalbumin, calbindin, and calretinin in the neocortex of mammals: phylogenetic and developmental patterns , 1999, Journal of Chemical Neuroanatomy.
[47] F. Gage,et al. An Essential Role for Retinoid Receptors RARβ and RXRγ In Long-Term Potentiation and Depression , 1998, Neuron.
[48] A. Ross,et al. Acute inflammation induces hyporetinemia and modifies the plasma and tissue response to vitamin A supplementation in marginally vitamin A-deficient rats. , 1998, The Journal of nutrition.
[49] P Chambon,et al. Impaired locomotion and dopamine signaling in retinoid receptor mutant mice. , 1998, Science.
[50] V. Bigl,et al. Developmental patterns of proteoglycan-containing extracellular matrix in perineuronal nets and neuropil of the postnatal rat brain , 1997, Cell and Tissue Research.
[51] L. Landmesser,et al. Polysialic acid in the vertebrate nervous system: a promoter of plasticity in cell-cell interactions , 1996, Trends in Neurosciences.
[52] W. Blaner,et al. Plasma Delivery of Retinoic Acid to Tissues in the Rat (*) , 1995, The Journal of Biological Chemistry.
[53] U. Dräger,et al. High levels of a retinoic acid-generating dehydrogenase in the meso-telencephalic dopamine system. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[54] U. Dräger,et al. Hot spots of retinoic acid synthesis in the developing spinal cord. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[55] A. Burkhalter,et al. Hierarchical organization of areas in rat visual cortex , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[56] U. Dräger,et al. Changing patterns of the retinoic acid system in the developing retina. , 1993, Developmental biology.
[57] U. Dräger,et al. Asymmetrical retinoic acid synthesis in the dorsoventral axis of the retina. , 1992, Development.
[58] U. Dräger,et al. Early posttranslational modifications of the three neurofilament subunits in mouse retinal ganglion cells: neuronal sites and time course in relation to subunit polymerization and axonal transport. , 1989, Brain research. Molecular brain research.
[59] Michael W. Miller,et al. Cortical connections between rat cingulate cortex and visual, motor, and postsubicular cortices , 1983, The Journal of comparative neurology.
[60] M. Wong-Riley. Changes in the visual system of monocularly sutured or enucleated cats demonstrable with cytochrome oxidase histochemistry , 1979, Brain Research.
[61] J. Warkany,et al. An analysis of the syndrome of malformations induced by maternal vitamin A deficiency. Effects of restoration of vitamin A at various times during gestation. , 1953, The American journal of anatomy.
[62] G. Beeson,et al. in adults with , 2019 .
[63] Paul J. Harrison,et al. Schizophrenia genes, gene expression, and neuropathology: on the matter of their convergence , 2005, Molecular Psychiatry.
[64] P. Chambon,et al. Functions of RARs and RXRs in vivo: Genetic dissection of the retinoid signaling pathway , 2003 .
[65] U. Dräger,et al. Retinoic acid synthesis and breakdown in the developing mouse retina. , 2001, Progress in brain research.
[66] John H. R. Maunsell,et al. How parallel are the primate visual pathways? , 1993, Annual review of neuroscience.
[67] U. Dräger,et al. Retinoic acid synthesis in the developing retina. , 1993, Advances in experimental medicine and biology.