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Summary Anatomy Item Literature (1851) Expression Attributions Wiki
XB-ANAT-16

Papers associated with hindbrain

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Preservation of Xenopus laevis rDNA-containing plasmid, pXlr101A, injected into the fertilized egg of Xenopus laevis., Tashiro K., Cell Struct Funct. June 1, 1986; 11 (2): 109-14.


Descending projections and excitation during fictive swimming in Xenopus embryos: neuroanatomy and lesion experiments., Roberts A., J Comp Neurol. August 8, 1986; 250 (2): 253-61.


Control of neuron shape during development and regeneration., Cohen MJ., Neurochem Pathol. December 1, 1986; 5 (3): 331-43.


Observations on the development of cerebellar afferents in Xenopus laevis., van der Linden JA., Anat Embryol (Berl). January 1, 1987; 176 (4): 431-9.


Fates of the blastomeres of the 16-cell stage Xenopus embryo., Moody SA., Dev Biol. February 1, 1987; 119 (2): 560-78.        


Neural cell adhesion molecule expression in Xenopus embryos., Balak K., Dev Biol. February 1, 1987; 119 (2): 540-50.              


The distribution of GABA and glycine response in the mouse brain using Xenopus oocytes., Asanuma A., Neurosci Lett. April 23, 1987; 76 (1): 87-90.


Localization of Xenopus homoeo-box gene transcripts during embryogenesis and in the adult nervous system., Carrasco AE., Dev Biol. May 1, 1987; 121 (1): 69-81.              


Development of substance P-like immunoreactivity in Xenopus embryos., Gallagher BC., J Comp Neurol. June 8, 1987; 260 (2): 175-85.


The early development of neurons with GABA immunoreactivity in the CNS of Xenopus laevis embryos., Roberts A., J Comp Neurol. July 15, 1987; 261 (3): 435-49.


Axonal growth cones in the developing amphibian spinal cord., Nordlander RH., J Comp Neurol. September 22, 1987; 263 (4): 485-96.


Decreased TRH receptor mRNA activity precedes homologous downregulation: assay in oocytes., Oron Y., Science. December 4, 1987; 238 (4832): 1406-8.


Properties of the kainate channel in rat brain mRNA injected Xenopus oocytes: ionic selectivity and blockage., Randle JC., Mol Cell Biochem. January 1, 1988; 80 (1-2): 121-32.


The restrictive effect of early exposure to lithium upon body pattern in Xenopus development, studied by quantitative anatomy and immunofluorescence., Cooke J., Development. January 1, 1988; 102 (1): 85-99.          


Horseradish peroxidase study of tectal afferents in Xenopus laevis with special emphasis on their relationship to the lateral-line system., Zittlau KE., Brain Behav Evol. January 1, 1988; 32 (4): 208-19.


Reticulospinal neurons, locomotor control and the development of tailswimming in Xenopus., van Mier P., Acta Biol Hung. January 1, 1988; 39 (2-3): 161-77.


Isolation and expression of a new mouse homeobox gene., Sharpe PT., Development. February 1, 1988; 102 (2): 397-407.


Dorsal roots are absent from the tail of larval Xenopus., Nordlander RH., Dev Biol. February 9, 1988; 440 (2): 391-5.


Development and characterization of commissural interneurones in the spinal cord of Xenopus laevis embryos revealed by antibodies to glycine., Roberts A., Development. July 1, 1988; 103 (3): 447-61.


Identities, antigenic determinants, and topographic distributions of neurofilament proteins in the nervous systems of adult frogs and tadpoles of Xenopus laevis., Szaro BG., J Comp Neurol. July 15, 1988; 273 (3): 344-58.


Phylogenetic conservation of brain microtubule-associated proteins MAP2 and tau., Viereck C., Neuroscience. September 1, 1988; 26 (3): 893-904.


Excitatory amino acid receptors expressed in Xenopus oocytes: agonist pharmacology., Verdoorn TA., Mol Pharmacol. September 1, 1988; 34 (3): 298-307.


Taurine and beta-alanine act on both GABA and glycine receptors in Xenopus oocyte injected with mouse brain messenger RNA., Horikoshi T., Dev Biol. September 1, 1988; 464 (2): 97-105.


Immunocytochemical identification of non-neuronal intermediate filament proteins in the developing Xenopus laevis nervous system., Szaro BG., Dev Biol. October 1, 1988; 471 (2): 207-24.                    


Development of spinocerebellar afferents in the clawed toad, Xenopus laevis., van der Linden JA., J Comp Neurol. November 1, 1988; 277 (1): 41-52.


Characterization of a murine homeo box gene, Hox-2.6, related to the Drosophila Deformed gene., Graham A., Genes Dev. November 1, 1988; 2 (11): 1424-38.


Expression of neurotransmitter transport from rat brain mRNA in Xenopus laevis oocytes., Blakely RD., Proc Natl Acad Sci U S A. December 1, 1988; 85 (24): 9846-50.


Roles of Glycinergic Inhibition and N-Methyl-D-Aspartate Receptor Mediated Excitation in the Locomotor Rhythmicity of One Half of the Xenopus Embryo Central Nervous System., Soffe SR., Eur J Neurosci. January 1, 1989; 1 (6): 561-571.


Low-concentration N-acetylaspartylglutamate suppresses the climbing fiber response of Purkinje cells in guinea pig cerebellar slices and the responses to excitatory amino acids of Xenopus laevis oocytes injected with cerebellar mRNA., Sekiguchi M., Dev Biol. March 13, 1989; 482 (1): 87-96.


Cloning and expression of a novel rat GABAA receptor., Lolait SJ., FEBS Lett. March 27, 1989; 246 (1-2): 145-8.


Bimodal and graded expression of the Xenopus homeobox gene Xhox3 during embryonic development., Ruiz i Altaba A., Development. May 1, 1989; 106 (1): 173-83.                  


Complementary homeo protein gradients in developing limb buds., Oliver G., Genes Dev. May 1, 1989; 3 (5): 641-50.          


Morphology of afferent synapses in the Mauthner cell of larval Xenopus laevis., Cioni C., J Comp Neurol. June 8, 1989; 284 (2): 205-14.


Expression of an engrailed-related protein is induced in the anterior neural ectoderm of early Xenopus embryos., Brivanlou AH., Development. July 1, 1989; 106 (3): 611-7.                  


Composite transposable elements in the Xenopus laevis genome., Garrett JE., Mol Cell Biol. July 1, 1989; 9 (7): 3018-27.


Pharmacological profile of NPC 12626, a novel, competitive N-methyl-D-aspartate receptor antagonist., Ferkany JW., J Pharmacol Exp Ther. July 1, 1989; 250 (1): 100-9.


Spatial and temporal expression of phosphorylated and non-phosphorylated forms of neurofilament proteins in the developing nervous system of Xenopus laevis., Szaro BG., Brain Res Dev Brain Res. July 1, 1989; 48 (1): 87-103.


Angiogenesis on the optic tectum of albino Xenopus laevis tadpoles., Rovainen CM., Brain Res Dev Brain Res. August 1, 1989; 48 (2): 197-213.


Functional expression of the yes proto-oncogene protein in Xenopus oocytes injected with chicken cerebellar mRNA., Sudol M., J Neurosci Res. September 1, 1989; 24 (1): 1-8.


The appearance of neural and glial cell markers during early development of the nervous system in the amphibian embryo., Messenger NJ., Development. September 1, 1989; 107 (1): 43-54.                      


An aberrant retinal pathway and visual centers in Xenopus tadpoles share a common cell surface molecule, A5 antigen., Fujisawa H., Dev Biol. October 1, 1989; 135 (2): 231-40.                


Selective expression of an amiloride-inhibitable Na+ conductance from mRNA of respiratory epithelium in Xenopus laevis oocytes., Kroll B., Am J Physiol. October 1, 1989; 257 (4 Pt 1): L284-8.


Interference with function of a homeobox gene in Xenopus embryos produces malformations of the anterior spinal cord., Wright CV., Cell. October 6, 1989; 59 (1): 81-93.              


Phosphoroselenoate oligodeoxynucleotides: synthesis, physico-chemical characterization, anti-sense inhibitory properties and anti-HIV activity., Mori K., Nucleic Acids Res. October 25, 1989; 17 (20): 8207-19.


Regional distribution of metabotropic glutamate response in the rat brain using Xenopus oocytes., Horikoshi T., Neurosci Lett. November 6, 1989; 105 (3): 340-3.


Sequence and expression of a novel GABAA receptor alpha subunit., Ymer S., FEBS Lett. November 20, 1989; 258 (1): 119-22.


A novel alpha subunit in rat brain GABAA receptors., Khrestchatisky M., Neuron. December 1, 1989; 3 (6): 745-53.


Comparative neuroanatomy of the histaminergic system in the brain of the frog Xenopus laevis., Airaksinen MS., J Comp Neurol. February 15, 1990; 292 (3): 412-23.


RTA, a candidate G protein-coupled receptor: cloning, sequencing, and tissue distribution., Ross PC., Proc Natl Acad Sci U S A. April 1, 1990; 87 (8): 3052-6.


Neural expression of the Xenopus homeobox gene Xhox3: evidence for a patterning neural signal that spreads through the ectoderm., Ruiz i Altaba A., Development. April 1, 1990; 108 (4): 595-604.

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