Sensory transduction in the cochlea and vestibular labyrinth depends on fluid movements that deflect the hair bundles of mechanosensitive hair cells. Mechanosensitive transducer channels at the tip of the hair cell stereocilia allow K+ to flow into cells. This unusual process relies on ionic gradients unique to the inner ear. Linking genes to deafness in humans and mice has been instrumental in identifying the ion transport machinery important for hearing and balance. Morphological analysis is difficult in patients, but mouse models have helped to investigate phenotypes at different developmental time points. This review focuses on cellular ion transport mechanisms in the stria vascularis that generate the major electrochemical gradients fo...
The function of sensory hair cells of the cochlea and vestibular organs depends on an influx of K+ t...
The Kir4.1 gene (KCNJ10) encodes an inwardly rectifying K⁺ channel subunit abundantly expressed in t...
Hypothesis: The middle ear contains homeostatic mechanisms that control the movement of ions and flu...
Sensory transduction in the cochlea and vestibular labyrinth depends on fluid movements that deflect...
The mammalian auditory sense organ is subdivided into three principle compartments, the outer-, midd...
Excitable cells use ion channels to tailor their biophysical properties to the functional demands ma...
Hearing depends on a high K(+) concentration bathing the apical membranes of sensory hair cells. K(+...
Understanding how the cochlea works as a system has become increasingly important. We need to know t...
Slc26a4D/D mice are deaf, develop an enlarged membranous labyrinth, and thereby largely resemble the...
Eps8 is involved in modulating cell signaling and receptor trafficking, via its range of protein int...
The mammalian inner ear uses its sensory hair cells to detect and amplify incoming sound. It is uncl...
The function of sensory hair cells of the cochlea and vestibular organs depends on an influx of K+ t...
The function of sensory hair cells of the cochlea and vestibular organs depends on an influx of K+ t...
The endolymphatic sac (ES) is a cystic organ that is a part of the inner ear and is connected to the...
AbstractThe isk gene is expressed in many tissues. Pharmacological evidence from the inner ear sugge...
The function of sensory hair cells of the cochlea and vestibular organs depends on an influx of K+ t...
The Kir4.1 gene (KCNJ10) encodes an inwardly rectifying K⁺ channel subunit abundantly expressed in t...
Hypothesis: The middle ear contains homeostatic mechanisms that control the movement of ions and flu...
Sensory transduction in the cochlea and vestibular labyrinth depends on fluid movements that deflect...
The mammalian auditory sense organ is subdivided into three principle compartments, the outer-, midd...
Excitable cells use ion channels to tailor their biophysical properties to the functional demands ma...
Hearing depends on a high K(+) concentration bathing the apical membranes of sensory hair cells. K(+...
Understanding how the cochlea works as a system has become increasingly important. We need to know t...
Slc26a4D/D mice are deaf, develop an enlarged membranous labyrinth, and thereby largely resemble the...
Eps8 is involved in modulating cell signaling and receptor trafficking, via its range of protein int...
The mammalian inner ear uses its sensory hair cells to detect and amplify incoming sound. It is uncl...
The function of sensory hair cells of the cochlea and vestibular organs depends on an influx of K+ t...
The function of sensory hair cells of the cochlea and vestibular organs depends on an influx of K+ t...
The endolymphatic sac (ES) is a cystic organ that is a part of the inner ear and is connected to the...
AbstractThe isk gene is expressed in many tissues. Pharmacological evidence from the inner ear sugge...
The function of sensory hair cells of the cochlea and vestibular organs depends on an influx of K+ t...
The Kir4.1 gene (KCNJ10) encodes an inwardly rectifying K⁺ channel subunit abundantly expressed in t...
Hypothesis: The middle ear contains homeostatic mechanisms that control the movement of ions and flu...