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Summary Anatomy Item Literature (12667) Expression Attributions Wiki
XB-ANAT-175

Papers associated with nervous system (and gnao1)

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MiR-9 and the Midbrain-Hindbrain Boundary: A Showcase for the Limited Functional Conservation and Regulatory Complexity of MicroRNAs., Alwin Prem Anand A., Front Cell Dev Biol. January 1, 2020; 8 586158.  


Quantitative comparative analysis of the nasal chemosensory organs of anurans during larval development and metamorphosis highlights the relative importance of chemosensory subsystems in the group., Jungblut LD., J Morphol. September 1, 2017; 278 (9): 1208-1219.


Gene Expression Profiling in the Injured Spinal Cord of Trachemys scripta elegans: An Amniote with Self-Repair Capabilities., Valentin-Kahan A., Front Mol Neurosci. February 7, 2017; 10 17.              


Measuring Absolute RNA Copy Numbers at High Temporal Resolution Reveals Transcriptome Kinetics in Development., Owens ND., Cell Rep. January 26, 2016; 14 (3): 632-47.                                                  


Identification and functional characterization of a novel arginine/ornithine transporter, a member of a cationic amino acid transporter subfamily in the Trypanosoma cruzi genome., Henriques C., Parasit Vectors. June 25, 2015; 8 346.              


Identification and Bioinformatics Analyses of the Basic Helix-loop-helix Transcription Factors in Xenopus laevis., Liu W., Pak J Biol Sci. April 1, 2015; 18 (4): 149-65.


Functional interaction of nicotinic acetylcholine receptors and Na+/K+ ATPase from Locusta migratoria manilensis (Meyen)., Bao H., Sci Rep. March 6, 2015; 5 8849.            


Spatial trigger waves: positive feedback gets you a long way., Gelens L., Mol Biol Cell. November 5, 2014; 25 (22): 3486-93.              


Sema6a and Plxna2 mediate spatially regulated repulsion within the developing eye to promote eye vesicle cohesion., Ebert AM., Development. June 1, 2014; 141 (12): 2473-82.


Exotic models may offer unique opportunities to decipher specific scientific question: the case of Xenopus olfactory system., Gascuel J., Anat Rec (Hoboken). September 1, 2013; 296 (9): 1453-61.    


Flavonoid regulation of EAG1 channels., Carlson AE., J Gen Physiol. March 1, 2013; 141 (3): 347-58.                  


Melatonin receptors are anatomically organized to modulate transmission specifically to cone pathways in the retina of Xenopus laevis., Wiechmann AF., J Comp Neurol. April 15, 2012; 520 (6): 1115-27.                  


The Xenopus retinal ganglion cell as a model neuron to study the establishment of neuronal connectivity., McFarlane S., Dev Neurobiol. April 1, 2012; 72 (4): 520-36.


Ginsenoside Rg(3) decelerates hERG K(+) channel deactivation through Ser631 residue interaction., Choi SH., Eur J Pharmacol. August 1, 2011; 663 (1-3): 59-67.


Inner/Outer nuclear membrane fusion in nuclear pore assembly: biochemical demonstration and molecular analysis., Fichtman B., Mol Biol Cell. December 1, 2010; 21 (23): 4197-211.                


Dynamic expression of axon guidance cues required for optic tract development is controlled by fibroblast growth factor signaling., Atkinson-Leadbeater K., J Neurosci. January 13, 2010; 30 (2): 685-93.            


Resources and transgenesis techniques for functional genomics in Xenopus., Ogino H., Dev Growth Differ. May 1, 2009; 51 (4): 387-401.      


Pairing morphology with gene expression in thyroid hormone-induced intestinal remodeling and identification of a core set of TH-induced genes across tadpole tissues., Buchholz DR., Dev Biol. March 15, 2007; 303 (2): 576-90.


In vitro modulation of HERG channels by organochlorine solvent trichlormethane as potential explanation for proarrhythmic effects of chloroform., Scholz EP., Toxicol Lett. August 20, 2006; 165 (2): 156-66.


An atlas of differential gene expression during early Xenopus embryogenesis., Pollet N., Mech Dev. March 1, 2005; 122 (3): 365-439.                                                                                                                                                        


Molecular characterization, functional expression, and developmental profile of an ether à-go-go K+ channel in the tobacco hornworm Manduca sexta., Keyser MR., J Neurobiol. April 1, 2003; 55 (1): 73-85.


Kinetics of tethering quaternary ammonium compounds to K(+) channels., Blaustein RO., J Gen Physiol. August 1, 2002; 120 (2): 203-16.                    


Calcium/calmodulin-dependent protein kinase II phosphorylates and regulates the Drosophila eag potassium channel., Wang Z., J Biol Chem. July 5, 2002; 277 (27): 24022-9.


The antidepressant drug fluoxetine is an inhibitor of human ether-a-go-go-related gene (HERG) potassium channels., Thomas D., J Pharmacol Exp Ther. February 1, 2002; 300 (2): 543-8.


Identification of a nonmammalian Golf subtype: functional role in olfactory signaling of airborne odorants in Xenopus laevis., Mezler M., J Comp Neurol. October 29, 2001; 439 (4): 400-10.      


Molecular cloning and expression of cERG, the ether à go-go-related gene from canine myocardium., Zehelein J., Pflugers Arch. May 1, 2001; 442 (2): 188-91.


Hex is a transcriptional repressor that contributes to anterior identity and suppresses Spemann organiser function., Brickman JM., Development. June 1, 2000; 127 (11): 2303-15.                    


Preclinical pharmacology of desloratadine, a selective and nonsedating histamine H1 receptor antagonist. 2nd communication: lack of central nervous system and cardiovascular effects., Kreutner W., Arzneimittelforschung. May 1, 2000; 50 (5): 441-8.


Purification of an EH domain-binding protein from rat brain that modulates the gating of the rat ether-à-go-go channel., Piros ET., J Biol Chem. November 19, 1999; 274 (47): 33677-83.


Fate maps old and new., Clarke JD., Nat Cell Biol. August 1, 1999; 1 (4): E103-9.


Opening mechanism of a cyclic nucleotide-gated channel based on analysis of single channels locked in each liganded state., Ruiz M., J Gen Physiol. June 1, 1999; 113 (6): 873-95.                          


Shaker and ether-à-go-go K+ channel subunits fail to coassemble in Xenopus oocytes., Tang CY., Biophys J. September 1, 1998; 75 (3): 1263-70.


Interaction of the K channel beta subunit, Hyperkinetic, with eag family members., Wilson GF., J Biol Chem. March 13, 1998; 273 (11): 6389-94.


Two isoforms of the mouse ether-a-go-go-related gene coassemble to form channels with properties similar to the rapidly activating component of the cardiac delayed rectifier K+ current., London B., Circ Res. November 1, 1997; 81 (5): 870-8.


Functional expression of a rat homologue of the voltage gated either á go-go potassium channel reveals differences in selectivity and activation kinetics between the Drosophila channel and its mammalian counterpart., Ludwig J., EMBO J. October 3, 1994; 13 (19): 4451-8.


The TRH neuronal phenotype forms embryonic cell clusters that go on to establish a regionalized cell fate in forebrain., Hayes WP., J Neurobiol. September 1, 1994; 25 (9): 1095-112.


Identification and developmental expression of a novel low molecular weight neuronal intermediate filament protein expressed in Xenopus laevis., Charnas LR., J Neurosci. August 1, 1992; 12 (8): 3010-24.                      


Thyroid hormone receptors and their role in development., Chatterjee VK., Cancer Surv. January 1, 1992; 14 147-67.


Light microscopy of GTP-binding protein (Go) immunoreactivity within the retina of different vertebrates., Terashima T., Dev Biol. December 15, 1987; 436 (2): 384-9.      


The organization of mesodermal pattern in Xenopus laevis: experiments using a Xenopus mesoderm-inducing factor., Cooke J., Development. December 1, 1987; 101 (4): 893-908.            


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


Development of the lateral line system in Xenopus laevis. II. Cell multiplication and organ formation in the supraorbital system., Winklbauer R., J Embryol Exp Morphol. August 1, 1983; 76 283-96.

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