Neurochemical changes in the pericalcarine cortex in congenital blindness attributable to bilateral anophthalmia.
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Ione Fine | Holly Bridge | Kate E Watkins | Uzay E Emir | H. Bridge | K. Watkins | I. Fine | U. Emir | G. Coullon | Gaelle S L Coullon
[1] D. Bavelier,et al. Cross-modal plasticity: where and how? , 2002, Nature Reviews Neuroscience.
[2] H. Yao,et al. Oxytocin mediates early experience–dependent cross-modal plasticity in the sensory cortices , 2014, Nature Neuroscience.
[3] V. Govindaraju,et al. Proton NMR chemical shifts and coupling constants for brain metabolites , 2000, NMR in biomedicine.
[4] G. Vandewalle,et al. Functional specialization for auditory–spatial processing in the occipital cortex of congenitally blind humans , 2011, Proceedings of the National Academy of Sciences.
[5] Romain Valabregue,et al. Two‐site reproducibility of cerebellar and brainstem neurochemical profiles with short‐echo, single‐voxel MRS at 3T , 2015, Magnetic resonance in medicine.
[6] Stephen M. Smith,et al. Segmentation of brain MR images through a hidden Markov random field model and the expectation-maximization algorithm , 2001, IEEE Transactions on Medical Imaging.
[7] J. Rauschecker,et al. Relationship Between Cortical Thickness and Functional Activation in the Early Blind. , 2015, Cerebral cortex.
[8] J. Frahm,et al. Regional metabolite concentrations in human brain as determined by quantitative localized proton MRS , 1998, Magnetic resonance in medicine.
[9] M. Law,et al. Magnetic resonance spectroscopy of the brain: review of metabolites and clinical applications. , 2009, Clinical radiology.
[10] Daphne Bavelier,et al. I see where you're hearing: how cross-modal plasticity may exploit homologous brain structures , 2010, Nature Neuroscience.
[11] Q. Gu. Contribution of acetylcholine to visual cortex plasticity , 2003, Neurobiology of Learning and Memory.
[12] G. Sutherland,et al. Nuclear magnetic resonance study of cerebrospinal fluid from patients with multiple sclerosis. , 1993, The Canadian journal of neurological sciences. Le journal canadien des sciences neurologiques.
[13] E. Argandoña,et al. Visual deprivation effects on the s100beta positive astrocytic population in the developing rat visual cortex: a quantitative study. , 2003, Brain research. Developmental brain research.
[14] R. Saxe,et al. Language processing in the occipital cortex of congenitally blind adults , 2011, Proceedings of the National Academy of Sciences.
[15] H. Petropoulos,et al. Neurochemical changes within human early blind occipital cortex , 2013, Neuroscience.
[16] Gülin Öz,et al. Short‐echo, single‐shot, full‐intensity proton magnetic resonance spectroscopy for neurochemical profiling at 4 T: Validation in the cerebellum and brainstem , 2011, Magnetic resonance in medicine.
[17] N. Gelman,et al. Interregional variation of longitudinal relaxation rates in human brain at 3.0 T: Relation to estimated iron and water contents , 2001, Magnetic resonance in medicine.
[18] Y. Boulanger,et al. Role of phospholipase A2 on the variations of the choline signal intensity observed by 1H magnetic resonance spectroscopy in brain diseases 1 1 Published on the World Wide Web on 10 August 2000. , 2000, Brain Research Reviews.
[19] Shi-Jiang Li,et al. Differentiation of metabolic concentrations between gray matter and white matter of human brain by in vivo 1H magnetic resonance spectroscopy , 1998, Magnetic resonance in medicine.
[20] P. Renshaw,et al. Brain proton magnetic resonance spectroscopy (1H-MRS) in Alzheimer's disease: changes after treatment with xanomeline, an M1 selective cholinergic agonist. , 1997, The American journal of psychiatry.
[21] Rolf Gruetter,et al. Quantification of the neurochemical profile using simulated macromolecule resonances at 3 T , 2013, NMR in biomedicine.
[22] William M. Stern,et al. Shape conveyed by visual-to-auditory sensory substitution activates the lateral occipital complex , 2007, Nature Neuroscience.
[23] A. Volder,et al. Glucose utilization in human visual cortex is abnormally elevated in blindness of early onset but decreased in blindness of late onset , 1990, Brain Research.
[24] L. Benevento,et al. Gamma-aminobutyric acid and somatostatin immunoreactivity in the visual cortex of normal and dark-reared rats , 1995, Brain Research.
[25] A. Cowey,et al. Imaging studies in congenital anophthalmia reveal preservation of brain architecture in 'visual' cortex. , 2009, Brain : a journal of neurology.
[26] G. Innocenti,et al. Development of projections from auditory to visual areas in the cat , 1988, The Journal of comparative neurology.
[27] B. Philpot,et al. Advances in understanding visual cortex plasticity , 2009, Current Opinion in Neurobiology.
[28] W. Singer,et al. Modulation of visual cortical plasticity by acetylcholine and noradrenaline , 1986, Nature.
[29] Emiliano Ricciardi,et al. Beyond sensory images: Object-based representation in the human ventral pathway. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[30] C. Michel,et al. High metabolic activity in the visual cortex of early blind human subjects , 1988, Brain Research.
[31] Qing Tian,et al. Correlation between Choline Signal Intensity and Acetylcholine Level in Different Brain Regions of Rat , 2008, Neurochemical Research.
[32] Ashok Panigrahy,et al. Metabolic maturation of the human brain from birth through adolescence: insights from in vivo magnetic resonance spectroscopy. , 2013, Cerebral cortex.
[33] Emiliano Ricciardi,et al. Congenital blindness affects diencephalic but not mesencephalic structures in the human brain , 2015, Brain Structure and Function.
[34] A. Cowey,et al. Early Auditory Processing in Area V5/MT+ of the Congenitally Blind Brain , 2013, The Journal of Neuroscience.
[35] E. Argandoña,et al. Physical exercise is required for environmental enrichment to offset the quantitative effects of dark‐rearing on the S‐100β astrocytic density in the rat visual cortex , 2009, Journal of anatomy.
[36] J. Movshon,et al. Visual neural development. , 1981, Annual review of psychology.
[37] S. Provencher. Estimation of metabolite concentrations from localized in vivo proton NMR spectra , 1993, Magnetic resonance in medicine.
[38] Ione Fine,et al. Mechanisms of cross-modal plasticity in early-blind subjects. , 2010, Journal of neurophysiology.
[39] M. Steiner,et al. Increased regional cerebral blood flow in inferior occipital cortex and cerebellum of early blind humans , 1993, Neuroscience Letters.
[40] Jeroen van der Grond,et al. Occipital Proton Magnetic Resonance Spectroscopy (1H-MRS) Reveals Normal Metabolite Concentrations in Retinal Visual Field Defects , 2007, PloS one.
[41] W. Lee,et al. Extended Plasticity of Visual Cortex in Dark-Reared Animals May Result from Prolonged Expression of cpg15-Like Genes , 2002, The Journal of Neuroscience.
[42] E. Quinlan,et al. Visual Deprivation Reactivates Rapid Ocular Dominance Plasticity in Adult Visual Cortex , 2006, The Journal of Neuroscience.
[43] Henry Kennedy,et al. Contribution of thalamic input to the specification of cytoarchitectonic cortical fields in the primate: Effects of bilateral enucleation in the fetal monkey on the boundaries, dimensions, and gyrification of striate and extrastriate cortex , 1996, The Journal of comparative neurology.
[44] Jens Frahm,et al. Use of phased array coils for a determination of absolute metabolite concentrations , 2005, Magnetic resonance in medicine.
[45] B. Miller. A review of chemical issues in 1H NMR spectroscopy: N‐acetyl‐l‐aspartate, creatine and choline , 1991, NMR in biomedicine.
[46] Chunshui Yu,et al. Thick Visual Cortex in the Early Blind , 2009, The Journal of Neuroscience.
[47] Stephen M Smith,et al. Fast robust automated brain extraction , 2002, Human brain mapping.
[48] P Heggelund,et al. Postnatal development of glutamatergic, GABAergic, and cholinergic neurotransmitter phenotypes in the visual cortex, lateral geniculate nucleus, pulvinar, and superior colliculus in cats , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[49] C. Müller. Dark‐rearing retards the maturation of astrocytes in restricted layers of cat visual cortex , 1990, Glia.
[50] Xinghuai Sun,et al. Metabolic Changes in the Visual Cortex of Binocular Blindness Macaque Monkeys: A Proton Magnetic Resonance Spectroscopy Study , 2013, PloS one.
[51] G. Fein,et al. Regional gray and white matter metabolite differences in subjects with AD, with subcortical ischemic vascular dementia, and elderly controls with 1H magnetic resonance spectroscopic imaging. , 1996, Archives of neurology.
[52] Eduardo Fernández,et al. Proton magnetic resonance spectroscopy (1H-MRS) reveals the presence of elevated myo-inositol in the occipital cortex of blind subjects , 2009, NeuroImage.
[53] L. Merabet,et al. Neural reorganization following sensory loss: the opportunity of change , 2010, Nature Reviews Neuroscience.
[54] E. Argandoña,et al. Increased physical activity is not enough to recover astrocytic population from dark-rearing. Synergy with multisensory enrichment is required , 2013, Front. Cell. Neurosci..
[55] Lowell O. Randall,et al. CHEMICAL TOPOGRAPHY OF THE BRAIN , 1938 .
[56] H. Bridge,et al. Subcortical functional reorganization due to early blindness. , 2015, Journal of neurophysiology.
[57] Robert J Zatorre,et al. Occipital cortical thickness predicts performance on pitch and musical tasks in blind individuals. , 2012, Cerebral cortex.
[58] P. Voss. Sensitive and critical periods in visual sensory deprivation , 2013, Front. Psychol..
[59] A. Volder,et al. Brain energy metabolism in early blind subjects: neural activity in the visual cortex , 1997, Brain Research.
[60] A. Snyder,et al. Diffusion tensor imaging reveals white matter reorganization in early blind humans. , 2006, Cerebral cortex.
[61] Nicola Filippini,et al. Language networks in anophthalmia: maintained hierarchy of processing in 'visual' cortex. , 2012, Brain : a journal of neurology.
[62] M O Leach,et al. Metabolic assessment of the action of targeted cancer therapeutics using magnetic resonance spectroscopy , 2009, British Journal of Cancer.
[63] Lewis C Cantley,et al. The phosphoinositide 3-kinase pathway. , 2002, Science.