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Summary Anatomy Item Literature (12850) Expression Attributions Wiki
XB-ANAT-488

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The retinotectal projection of quarter eyes in Xenopus laevis., Degen N., Dev Biol. September 1, 1986; 394 (1): 141-3.


Inhibition of oligosaccharide processing and membrane morphogenesis in retinal rod photoreceptor cells., Fliesler SJ., Proc Natl Acad Sci U S A. September 1, 1986; 83 (17): 6435-9.


The appearance and distribution of intermediate filament proteins during differentiation of the central nervous system, skin and notochord of Xenopus laevis., Godsave SF., J Embryol Exp Morphol. September 1, 1986; 97 201-23.              


Induction of taurine responsiveness in Xenopus oocytes by messenger RNA from mouse brain., Asanuma A., Neurosci Lett. September 12, 1986; 69 (3): 249-53.


Messenger RNA coding for only the alpha subunit of the rat brain Na channel is sufficient for expression of functional channels in Xenopus oocytes., Goldin AL., Proc Natl Acad Sci U S A. October 1, 1986; 83 (19): 7503-7.


Neurites show pathway specificity but lack directional specificity or predetermined lengths in Xenopus embryos., Huang S., J Neurobiol. November 1, 1986; 17 (6): 593-603.


Prospective Neural Areas and Their Morphogenetic Movements during Neural Plate Formation of Xenopus Embryos. I. Development of Vegetal Half Embryos and Chimera Embryos: (developmental fates/cell marker, quinacrine/Xenopus embryo)., Suzuki AS., Dev Growth Differ. November 1, 1986; 28 (6): 519-529.


Neurotensin and substance P receptors expressed in Xenopus oocytes by messenger RNA from rat brain., Parker I., Proc R Soc Lond B Biol Sci. November 22, 1986; 229 (1255): 151-9.


The sexually dimorphic larynx of Xenopus laevis: development and androgen regulation., Sassoon D., Am J Anat. December 1, 1986; 177 (4): 457-72.


Eye factors and lens-forming transformations of outer cornea in Xenopus laevis larvae., Bosco L., J Exp Zool. December 1, 1986; 240 (3): 401-7.


The development of the static vestibulo-ocular reflex in the southern clawed toad, Xenopus laevis. II. Animals with acute vestibular lesions., Horn E., J Comp Physiol A. December 1, 1986; 159 (6): 879-85.


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


Involvement of a GTP-binding protein in mediation of serotonin and acetylcholine responses in Xenopus oocytes injected with rat brain messenger RNA., Dascal N., Dev Biol. December 1, 1986; 387 (3): 201-9.


A glia-derived neurite promoting factor with protease inhibitory activity belongs to the protease nexins., Gloor S., Cell. December 5, 1986; 47 (5): 687-93.


Differential and stage-related expression in embryonic tissues of a new human homoeobox gene., Mavilio F., Nature. December 18, 1986; 324 (6098): 664-8.


A mesoderm-inducing factor is produced by Xenopus cell line., Smith JC., Development. January 1, 1987; 99 (1): 3-14.              


Prevention of rod disk shedding by detachment from the retinal pigment epithelium., Williams DS., Invest Ophthalmol Vis Sci. January 1, 1987; 28 (1): 184-7.


A sharp retinal image increases the topographic precision of the goldfish retinotectal projection during optic nerve regeneration in stroboscopic light., Cook JE., Exp Brain Res. January 1, 1987; 68 (2): 319-28.


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


A comparative SEM-study on the teeth of 10 anuran species., Greven H., Anat Anz. January 1, 1987; 164 (2): 103-16.


GABA and glycine modify the balance of rod and cone inputs to horizontal cells in the Xenopus retina., Witkovsky P., Exp Biol. January 1, 1987; 47 (1): 13-22.


Center-surround organization of Xenopus horizontal cells and its modification by gamma-aminobutyric acid and strontium., Stone S., Exp Biol. January 1, 1987; 47 (1): 1-12.


The trochlear nerve of amphibians and its relation to proprioceptive fibers: a qualitative and quantitative HRP study., Fritzsch B., Anat Embryol (Berl). January 1, 1987; 177 (2): 105-14.


The histone H1(0)/H5 variant and terminal differentiation of cells during development of Xenopus laevis., Moorman AF., Differentiation. January 1, 1987; 35 (2): 100-7.            


Biosynthesis of the neurofilament heavy subunit in Xenopus oocytes microinjected with rat brain poly(A)+ RNA., Cross D., Mol Biol Rep. January 1, 1987; 12 (4): 265-71.


Cytokeratins in certain endothelial and smooth muscle cells of two taxonomically distant vertebrate species, Xenopus laevis and man., Jahn L., Differentiation. January 1, 1987; 36 (3): 234-54.                        


The use of Xenopus oocytes for the study of ion channels., Dascal N., CRC Crit Rev Biochem. January 1, 1987; 22 (4): 317-87.


Expression of rat brain excitatory amino acid receptors in Xenopus oocytes., Lampe RA., Adv Exp Med Biol. January 1, 1987; 221 201-10.


Distribution, expression and germ line transmission of exogenous DNA sequences following microinjection into Xenopus laevis eggs., Etkin LD., Development. January 1, 1987; 99 (1): 15-23.


Changes in axonal transport and glial proteins during optic nerve regeneration in Xenopus laevis., Szaro BG., Curr Top Dev Biol. January 1, 1987; 21 217-54.


Structure and function of sodium channel., Noda M., J Recept Res. January 1, 1987; 7 (1-4): 467-97.


Neurotensin and acetylcholine evoke common responses in frog oocytes injected with rat brain messenger ribonucleic acid., Hirono C., J Physiol. January 1, 1987; 382 523-35.


Patch clamp characterization of sodium channels expressed from rat brain cDNA., Stühmer W., Eur Biophys J. January 1, 1987; 14 (3): 131-8.


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.              


Signal processing technique to extract neuronal activity from noise., Chung SH., J Neurosci Methods. February 1, 1987; 19 (2): 125-39.


The midblastula cell cycle transition and the character of mesoderm in u.v.-induced nonaxial Xenopus development., Cooke J., Development. February 1, 1987; 99 (2): 197-210.              


Immunocytochemical localization and spatial relation to the adenohypophysis of a somatostatin-like and a corticotropin-releasing factor-like peptide in the brain of four amphibian species., Olivereau M., Cell Tissue Res. February 1, 1987; 247 (2): 317-24.


Oscillatory chloride current evoked by temperature jumps during muscarinic and serotonergic activation in Xenopus oocyte., Miledi R., J Physiol. February 1, 1987; 383 213-29.


A new type of glutamate receptor linked to inositol phospholipid metabolism., Sugiyama H., Nature. February 5, 1987; 325 (6104): 531-3.


Developmental and molecular analysis of Deformed; a homeotic gene controlling Drosophila head development., Regulski M., EMBO J. March 1, 1987; 6 (3): 767-77.


Dynamics of the control of body pattern in the development of Xenopus laevis. IV. Timing and pattern in the development of twinned bodies after reorientation of eggs in gravity., Cooke J., Development. March 1, 1987; 99 (3): 417-27.


Fibre organization and reorganization in the retinotectal projection of Xenopus., Taylor JS., Development. March 1, 1987; 99 (3): 393-410.


Infection of a poikilothermic cell line (XL-2) with eastern equine encephalitis and western equine encephalitis viruses., Morier L., J Med Virol. March 1, 1987; 21 (3): 277-81.


Expression of Xenopus N-CAM RNA in ectoderm is an early response to neural induction., Kintner CR., Development. March 1, 1987; 99 (3): 311-25.                  


Ca channels induced in Xenopus oocytes by rat brain mRNA., Leonard JP., J Neurosci. March 1, 1987; 7 (3): 875-81.


Xenopus oocytes injected with rat uterine RNA express very slowly activating potassium currents., Boyle MB., Science. March 6, 1987; 235 (4793): 1221-4.


Melatonin and rhythmic photoreceptor metabolism: melatonin-induced cone elongation is blocked at high light intensity., Pierce ME., Dev Biol. March 10, 1987; 405 (2): 400-4.    


Single-unit study of lateral line cells in the optic tectum of Xenopus laevis: evidence for bimodal lateral line/optic units., Lowe DA., J Comp Neurol. March 15, 1987; 257 (3): 396-404.


Fate map for the 32-cell stage of Xenopus laevis., Dale L., Development. April 1, 1987; 99 (4): 527-51.                

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