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Summary Anatomy Item Literature (441) Expression Attributions Wiki
XB-ANAT-190

Papers associated with inner ear

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External TEA block of shaker K+ channels is coupled to the movement of K+ ions within the selectivity filter., Thompson J., J Gen Physiol. August 1, 2003; 122 (2): 239-46.            


Molecular cloning of otoconin-22 complementary deoxyribonucleic acid in the bullfrog endolymphatic sac: effect of calcitonin on otoconin-22 messenger ribonucleic acid levels., Yaoi Y., Endocrinology. August 1, 2003; 144 (8): 3287-96.  


A restrictive role for Hedgehog signalling during otic specification in Xenopus., Koebernick K., Dev Biol. August 15, 2003; 260 (2): 325-38.              


Beta1 subunits facilitate gating of BK channels by acting through the Ca2+, but not the Mg2+, activating mechanisms., Qian X., Proc Natl Acad Sci U S A. August 19, 2003; 100 (17): 10061-6.


Agonist-induced conformational changes in the extracellular domain of alpha 7 nicotinic acetylcholine receptors., Lyford LK., Mol Pharmacol. September 1, 2003; 64 (3): 650-8.


Gating competence of constitutively open CLC-0 mutants revealed by the interaction with a small organic Inhibitor., Traverso S., J Gen Physiol. September 1, 2003; 122 (3): 295-306.                                  


Tight coupling of rubidium conductance and inactivation in human KCNQ1 potassium channels., Seebohm G., J Physiol. October 15, 2003; 552 (Pt 2): 369-78.


Molecular cloning, genomic organization and developmental expression of the Xenopus laevis hyaluronan synthase 3., Vigetti D., Matrix Biol. November 1, 2003; 22 (6): 511-7.  


Requirements for FGF3 and FGF10 during inner ear formation., Alvarez Y., Development. December 1, 2003; 130 (25): 6329-38.


Molecular basis of calcium regulation in connexin-32 hemichannels., Gómez-Hernández JM., Proc Natl Acad Sci U S A. December 23, 2003; 100 (26): 16030-5.


Pharmacological properties of alpha 9 alpha 10 nicotinic acetylcholine receptors revealed by heterologous expression of subunit chimeras., Baker ER., Mol Pharmacol. February 1, 2004; 65 (2): 453-60.


Outer pore topology of the ECaC-TRPV5 channel by cysteine scan mutagenesis., Dodier Y., J Biol Chem. February 20, 2004; 279 (8): 6853-62.


Protons block BK channels by competitive inhibition with K+ and contribute to the limits of unitary currents at high voltages., Brelidze TI., J Gen Physiol. March 1, 2004; 123 (3): 305-19.                


Specification of the otic placode depends on Sox9 function in Xenopus., Saint-Germain N., Development. April 1, 2004; 131 (8): 1755-63.              


Cloning and expression of a small-conductance Ca(2+)-activated K+ channel from the mouse cochlea: coexpression with alpha9/alpha10 acetylcholine receptors., Nie L., J Neurophysiol. April 1, 2004; 91 (4): 1536-44.


Cadherin 23 is a component of the tip link in hair-cell stereocilia., Siemens J., Nature. April 29, 2004; 428 (6986): 950-5.


Developmental expression of otoconin-22 in the bullfrog endolymphatic sac and inner ear., Yaoi Y., J Histochem Cytochem. May 1, 2004; 52 (5): 663-70.  


Molecular basis of pH and Ca2+ regulation of aquaporin water permeability., Németh-Cahalan KL., J Gen Physiol. May 1, 2004; 123 (5): 573-80.            


Regulated gene expression of hyaluronan synthases during Xenopus laevis development., Nardini M., Gene Expr Patterns. May 1, 2004; 4 (3): 303-8.        


Anthraquinone polyamines: novel channel blockers to study N-methyl-D-aspartate receptors., Kashiwagi K., J Pharmacol Exp Ther. June 1, 2004; 309 (3): 884-93.


PTK7/CCK-4 is a novel regulator of planar cell polarity in vertebrates., Lu X., Nature. July 1, 2004; 430 (6995): 93-8.


Regulation of K+ flow by a ring of negative charges in the outer pore of BKCa channels. Part I: Aspartate 292 modulates K+ conduction by external surface charge effect., Haug T., J Gen Physiol. August 1, 2004; 124 (2): 173-84.              


The role of Pax2 in mouse inner ear development., Burton Q., Dev Biol. August 1, 2004; 272 (1): 161-75.


Altered gating properties of functional Cx26 mutants associated with recessive non-syndromic hearing loss., Meşe G., Hum Genet. August 1, 2004; 115 (3): 191-9.


Lidocaine: a foot in the door of the inner vestibule prevents ultra-slow inactivation of a voltage-gated sodium channel., Sandtner W., Mol Pharmacol. September 1, 2004; 66 (3): 648-57.


Three mechanisms underlie KCNQ2/3 heteromeric potassium M-channel potentiation., Etxeberria A., J Neurosci. October 13, 2004; 24 (41): 9146-52.


The MinK-related peptides., McCrossan ZA., Neuropharmacology. November 1, 2004; 47 (6): 787-821.


Regulation of CLC-Ka/barttin by the ubiquitin ligase Nedd4-2 and the serum- and glucocorticoid-dependent kinases., Embark HM., Kidney Int. November 1, 2004; 66 (5): 1918-25.


Molecular basis of inward rectification: polyamine interaction sites located by combined channel and ligand mutagenesis., Kurata HT., J Gen Physiol. November 1, 2004; 124 (5): 541-54.                


Inhibition of CFTR channels by a peptide toxin of scorpion venom., Fuller MD., Am J Physiol Cell Physiol. November 1, 2004; 287 (5): C1328-41.


[Identification of two heterozygous mutations in the SLC26A4/PDS gene in a family with Pendred-syndrome]., Birkenhäger R., Laryngorhinootologie. December 1, 2004; 83 (12): 831-5.


NeuroD: the predicted and the surprising., Chae JH., Mol Cells. December 31, 2004; 18 (3): 271-88.


Regulation of KCNQ4 potassium channel prepulse dependence and current amplitude by SGK1 in Xenopus oocytes., Seebohm G., Cell Physiol Biochem. January 1, 2005; 16 (4-6): 255-62.


Use of confocal microscopy in comparative studies of vertebrate morphology., Collazo A., Methods Enzymol. January 1, 2005; 395 521-43.


State-dependent changes in the electrostatic potential in the pore of a GluR channel., Sobolevsky AI., Biophys J. January 1, 2005; 88 (1): 235-42.


A ring of negative charges in the intracellular vestibule of Kir2.1 channel modulates K+ permeation., Chang HK., Biophys J. January 1, 2005; 88 (1): 243-54.


A multifunctional aromatic residue in the external pore vestibule of Na+ channels contributes to the local anesthetic receptor., Tsang SY., Mol Pharmacol. February 1, 2005; 67 (2): 424-34.


Small-scale molecular motions accomplish glutamate uptake in human glutamate transporters., Koch HP., J Neurosci. February 16, 2005; 25 (7): 1730-6.


Spatiotemporal pattern and isoforms of cadherin 23 in wild type and waltzer mice during inner ear hair cell development., Lagziel A., Dev Biol. April 15, 2005; 280 (2): 295-306.


Pharmacology of acetylcholine-mediated cell signaling in the lateral line organ following efferent stimulation., Dawkins R., J Neurophysiol. May 1, 2005; 93 (5): 2541-51.


Cysteine accessibility in ClC-0 supports conservation of the ClC intracellular vestibule., Engh AM., J Gen Physiol. June 1, 2005; 125 (6): 601-17.                  


Probing the geometry of the inner vestibule of BK channels with sugars., Brelidze TI., J Gen Physiol. August 1, 2005; 126 (2): 105-21.              


Slow inactivation in voltage gated potassium channels is insensitive to the binding of pore occluding peptide toxins., Oliva C., Biophys J. August 1, 2005; 89 (2): 1009-19.


A novel alpha-conotoxin, PeIA, cloned from Conus pergrandis, discriminates between rat alpha9alpha10 and alpha7 nicotinic cholinergic receptors., McIntosh JM., J Biol Chem. August 26, 2005; 280 (34): 30107-12.


Pharmacological implications of two distinct mechanisms of interaction of memantine with N-methyl-D-aspartate-gated channels., Chen HS., J Pharmacol Exp Ther. September 1, 2005; 314 (3): 961-71.


Expression and functional phenotype of mouse ERG K+ channels in the inner ear: potential role in K+ regulation in the inner ear., Nie L., J Neurosci. September 21, 2005; 25 (38): 8671-9.


EYA1 expression in the developing inner ear., Bane BC., Ann Otol Rhinol Laryngol. November 1, 2005; 114 (11): 853-8.


SoxE factors function equivalently during neural crest and inner ear development and their activity is regulated by SUMOylation., Taylor KM., Dev Cell. November 1, 2005; 9 (5): 593-603.                  


Inner ear formation during the early larval development of Xenopus laevis., Quick QA., Dev Dyn. November 1, 2005; 234 (3): 791-801.      


NGF and IL-1beta are co-localized in the developing nervous system of the frog, Xenopus laevis., Jelaso AM., Int J Dev Neurosci. November 1, 2005; 23 (7): 575-86.

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