SummaryAdaptation is a hallmark of hair cell mechanotransduction, extending the sensory hair bundle dynamic range while providing mechanical filtering of incoming sound. In hair cells responsive to low frequencies, two distinct adaptation mechanisms exist, a fast component of debatable origin and a slow myosin-based component. It is generally believed that Ca2+ entry through mechano-electric transducer channels is required for both forms of adaptation. This study investigates the calcium dependence of adaptation in the mammalian auditory system. Recordings from rat cochlear hair cells demonstrate that altering Ca2+ entry or internal Ca2+ buffering has little effect on either adaptation kinetics or steady-state adaptation responses. Two addi...
Two Ca2+-dependent mechanisms have been proposed to regulate the mechanical properties of outer hair...
Calcium buffers are important for shaping and localizing cytoplasmic Ca2+ transients in neurons. We ...
Calcium ions (Ca2+) tune and control numerous diverse aspects of cochlear and vestibular physiologic...
SummaryAdaptation is a hallmark of hair cell mechanotransduction, extending the sensory hair bundle ...
Mechanotransduction in the auditory and vestibular systems depends on mechanosensitive ion channels ...
Mechanotransduction in the auditory and vestibular systems depends on mechanosensitive ion channels ...
Mechanotransduction in the auditory and vestibular systems depends on mechanosensitive ion channels ...
Mechanotransduction in the auditory and vestibular systems depends on mechanosensitive ion channels ...
AbstractSound stimuli excite cochlear hair cells by vibration of each hair bundle, which opens mecha...
AbstractSound stimuli excite cochlear hair cells by vibration of each hair bundle, which opens mecha...
AbstractThe mechanically gated transduction channels of vertebrate hair cells tend to close in ∼1ms ...
Mechanotransduction in the auditory and vestibular systems depends on mechanosensitive ion channels ...
AbstractThe mechanically gated transduction channels of vertebrate hair cells tend to close in ∼1ms ...
Calcium ions (Ca2+) tune and control numerous diverse aspects of cochlear and vestibular physiologic...
AbstractThe hair cells of the vertebrate inner ear convert mechanical stimuli to electrical signals....
Two Ca2+-dependent mechanisms have been proposed to regulate the mechanical properties of outer hair...
Calcium buffers are important for shaping and localizing cytoplasmic Ca2+ transients in neurons. We ...
Calcium ions (Ca2+) tune and control numerous diverse aspects of cochlear and vestibular physiologic...
SummaryAdaptation is a hallmark of hair cell mechanotransduction, extending the sensory hair bundle ...
Mechanotransduction in the auditory and vestibular systems depends on mechanosensitive ion channels ...
Mechanotransduction in the auditory and vestibular systems depends on mechanosensitive ion channels ...
Mechanotransduction in the auditory and vestibular systems depends on mechanosensitive ion channels ...
Mechanotransduction in the auditory and vestibular systems depends on mechanosensitive ion channels ...
AbstractSound stimuli excite cochlear hair cells by vibration of each hair bundle, which opens mecha...
AbstractSound stimuli excite cochlear hair cells by vibration of each hair bundle, which opens mecha...
AbstractThe mechanically gated transduction channels of vertebrate hair cells tend to close in ∼1ms ...
Mechanotransduction in the auditory and vestibular systems depends on mechanosensitive ion channels ...
AbstractThe mechanically gated transduction channels of vertebrate hair cells tend to close in ∼1ms ...
Calcium ions (Ca2+) tune and control numerous diverse aspects of cochlear and vestibular physiologic...
AbstractThe hair cells of the vertebrate inner ear convert mechanical stimuli to electrical signals....
Two Ca2+-dependent mechanisms have been proposed to regulate the mechanical properties of outer hair...
Calcium buffers are important for shaping and localizing cytoplasmic Ca2+ transients in neurons. We ...
Calcium ions (Ca2+) tune and control numerous diverse aspects of cochlear and vestibular physiologic...