Click here to close Hello! We notice that you are using Internet Explorer, which is not supported by Xenbase and may cause the site to display incorrectly. We suggest using a current version of Chrome, FireFox, or Safari.

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

Papers associated with inner ear

Limit to papers also referencing gene:
???pagination.result.count???

???pagination.result.page??? 1 2 3 4 5 6 7 8 9 ???pagination.result.next???

Sort Newest To Oldest Sort Oldest To Newest

Physiological basis of cochlear transduction and sensitivity., Honrubia V., Ann Otol Rhinol Laryngol. January 1, 1976; 85 (6 PT. 1): 697-710.


[The development OF THE vestibular apparatus under conditions of weightlessness]., Vinikov IaA., Arkh Anat Gistol Embriol. January 1, 1976; 70 (1): 11-7.


[Vestibular apparatus study of the toad, Xenopus laevis, and rats under prolonged weightlessness]., Vinnikov IaA., Zh Evol Biokhim Fiziol. January 1, 1980; 16 (6): 574-9.


Suggested evolution of tonotopic organization in the frog amphibian papilla., Lewis ER., Neurosci Lett. January 20, 1981; 21 (2): 131-6.


Efferent neurons of the lateral-line system and the VIII cranial nerve in the brainstem of anurans. A comparative study using retrograde tracer methods., Will U., Cell Tissue Res. January 1, 1982; 225 (3): 673-85.


Biophysics of underwater hearing in anuran amphibians., Hetherington TE., J Exp Biol. June 1, 1982; 98 49-66.


Schooling behavior of tadpoles: a potential indicator of ototoxicity., Lum AM., Pharmacol Biochem Behav. August 1, 1982; 17 (2): 363-6.


[Development of the vestibular apparatus under conditions of weightlessness]., Vinnikov IaA., Zh Obshch Biol. January 1, 1983; 44 (2): 147-63.


[Structure of the vestibular apparatus and ionic composition of the body of Xenopus laevis larvae as affected by weightlessness]., Lychakov DV., Kosm Biol Aviakosm Med. January 1, 1985; 19 (3): 48-52.


Survey of the vestibulum, and behavior of Xenopus laevis larvae developed during a 7-days space flight., Briegleb W., Adv Space Res. January 1, 1986; 6 (12): 151-6.


Neurotransmission in the inner ear., Klinke R., Hear Res. January 1, 1986; 22 235-43.


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.


Neuroactive substances in inner ear extracts., Sewell WF., J Neurosci. August 1, 1987; 7 (8): 2465-75.


A possible neurotransmitter role for CGRP in a hair-cell sensory organ., Adams JC., Dev Biol. September 1, 1987; 419 (1-2): 347-51.


Light microscopic analysis of the gravireceptor in Xenopus larvae developed in hypogravity., Briegleb W., Adv Space Res. January 1, 1989; 9 (11): 241-4.


Comparative actions of salicylate on the amphibian lateral line and guinea pig cochlea., Puel JL., Comp Biochem Physiol C Comp Pharmacol Toxicol. January 1, 1989; 93 (1): 73-80.


Experimental reorganization in the alar plate of the clawed toad, Xenopus laevis. I. Quantitative and qualitative effects of embryonic otocyst extirpation., Fritzsch B., Brain Res Dev Brain Res. January 1, 1990; 51 (1): 113-22.


Each otoconia polymorph has a protein unique to that polymorph., Pote KG., Comp Biochem Physiol B. January 1, 1991; 98 (2-3): 287-95.


Hyaluronan as a propellant for epithelial movement: the development of semicircular canals in the inner ear of Xenopus., Haddon CM., Development. June 1, 1991; 112 (2): 541-50.                          


Distribution of type II collagen mRNA in Xenopus embryos visualized by whole-mount in situ hybridization., Bieker JJ., J Histochem Cytochem. August 1, 1992; 40 (8): 1117-20.  


Utricular otoconia of some amphibians have calcitic morphology., Pote KG., Hear Res. May 1, 1993; 67 (1-2): 189-97.


Calcium-binding proteins in the inner ear of Xenopus laevis (Daudin)., Kerschbaum HH., Dev Biol. July 16, 1993; 617 (1): 43-9.        


Block by amiloride and its derivatives of mechano-electrical transduction in outer hair cells of mouse cochlear cultures., Rüsch A., J Physiol. January 1, 1994; 474 (1): 75-86.


Images of purified Shaker potassium channels., Li M., Curr Biol. February 1, 1994; 4 (2): 110-5.


The saxitoxin/tetrodotoxin binding site on cloned rat brain IIa Na channels is in the transmembrane electric field., Satin J., Biophys J. September 1, 1994; 67 (3): 1007-14.


Electrostatic distance geometry in a K+ channel vestibule., Stocker M., Proc Natl Acad Sci U S A. September 27, 1994; 91 (20): 9509-13.


Structural determinants of the blockade of N-type calcium channels by a peptide neurotoxin., Ellinor PT., Nature. November 17, 1994; 372 (6503): 272-5.


Alpha 9: an acetylcholine receptor with novel pharmacological properties expressed in rat cochlear hair cells., Elgoyhen AB., Cell. November 18, 1994; 79 (4): 705-15.


Mosaic analysis of the embryonic origin of taste buds., Stone LM., Chem Senses. December 1, 1994; 19 (6): 725-35.


Regulation of the Xenopus labial homeodomain genes, HoxA1 and HoxD1: activation by retinoids and peptide growth factors., Kolm PJ., Dev Biol. January 1, 1995; 167 (1): 34-49.      


Side-chain accessibilities in the pore of a K+ channel probed by sulfhydryl-specific reagents after cysteine-scanning mutagenesis., Kürz LL., Biophys J. March 1, 1995; 68 (3): 900-5.


Specificity for block by saxitoxin and divalent cations at a residue which determines sensitivity of sodium channel subtypes to guanidinium toxins., Favre I., J Gen Physiol. August 1, 1995; 106 (2): 203-29.


Permeation properties and differential expression across the auditory receptor epithelium of an inward rectifier K+ channel cloned from the chick inner ear., Navaratnam DS., J Biol Chem. August 18, 1995; 270 (33): 19238-45.


Quantity, bundle types, and distribution of hair cells in the sacculus of Xenopus laevis during development., Díaz ME., Hear Res. November 1, 1995; 91 (1-2): 33-42.


Neuroanatomical and histochemical evidence for the presence of common lateral line and inner ear efferents and of efferents to the basilar papilla in a frog, Xenopus laevis., Hellmann B., Brain Behav Evol. January 1, 1996; 47 (4): 185-94.


Inductive processes leading to inner ear formation during Xenopus development., Gallagher BC., Dev Biol. April 10, 1996; 175 (1): 95-107.


The mouse homolog of the region specific homeotic gene spalt of Drosophila is expressed in the developing nervous system and in mesoderm-derived structures., Ott T., Mech Dev. May 1, 1996; 56 (1-2): 117-28.


Depth asymmetries of the pore-lining segments of the Na+ channel revealed by cysteine mutagenesis., Chiamvimonvat N., Neuron. May 1, 1996; 16 (5): 1037-47.


Probing the pore region of recombinant N-methyl-D-aspartate channels using external and internal magnesium block., Kupper J., Proc Natl Acad Sci U S A. August 6, 1996; 93 (16): 8648-53.


Differences in cholinergic responses from outer hair cells of rat and guinea pig., Chen C., Hear Res. September 1, 1996; 98 (1-2): 9-17.


The initiation of the muscle action potential., Neumann E., Arch Physiol Biochem. October 1, 1996; 104 (6): 731-44.


Spontaneous otoacoustic emissions in seven frog species., van Dijk P., Hear Res. November 1, 1996; 101 (1-2): 102-12.


The signature sequence of voltage-gated potassium channels projects into the external vestibule., Aiyar J., J Biol Chem. December 6, 1996; 271 (49): 31013-6.


The N-terminal domain of a K+ channel beta subunit increases the rate of C-type inactivation from the cytoplasmic side of the channel., Morales MJ., Proc Natl Acad Sci U S A. December 24, 1996; 93 (26): 15119-23.


Isolation of chicken alpha ENaC splice variants from a cochlear cDNA library., Killick R., Biochim Biophys Acta. January 3, 1997; 1350 (1): 33-7.


Scanning electron microscopic study of amphibians otoconia., Kido T., Auris Nasus Larynx. April 1, 1997; 24 (2): 125-30.


Properties and regulation of the minK potassium channel protein., Kaczmarek LK., Physiol Rev. July 1, 1997; 77 (3): 627-41.


Mechanically and ATP-induced currents of mouse outer hair cells are independent and differentially blocked by d-tubocurarine., Glowatzki E., Neuropharmacology. September 1, 1997; 36 (9): 1269-75.


Identification of an amino acid residue that lies between the exofacial vestibule and exofacial substrate-binding site of the Glut1 sugar permeation pathway., Mueckler M., J Biol Chem. November 28, 1997; 272 (48): 30141-6.


Expression of brain-derived neurotrophic factor and its receptor mRNA in the vestibuloauditory system of the bullfrog., Don DM., Hear Res. December 1, 1997; 114 (1-2): 10-20.        

???pagination.result.page??? 1 2 3 4 5 6 7 8 9 ???pagination.result.next???