Functional Recovery in the Avian Ear after Hair Cell Regeneration
- 24 September 1999
- journal article
- review article
- Published by S. Karger AG in Audiology and Neurotology
- Vol. 4 (6) , 286-302
- https://doi.org/10.1159/000013853
Abstract
Trauma to the inner ear in birds, due to acoustic overstimulation or ototoxic aminoglycosides, can lead to hair cell loss which is followed by regeneration of new hair cells. These processes are paralleled by hearing loss followed by significant functional recovery. After acoustic trauma, functional recovery is rapid and nearly complete. The early and major part of functional recovery after sound trauma occurs before regenerated hair cells become functional. Even very intense sound trauma causes loss of only a proportion of the hair cell population, mainly so-called short hair cells residing on the abneural mobile part of the avian basilar membrane. Uncoupling of the tectorial membrane from the hair cells during sound overexposure may serve as a protection mechanism. The rapid functional recovery after sound trauma appears not to be associated with regeneration of the lost hair cells, but with repair processes involving the surviving hair cells. Small residual functional deficits after recovery are most likely associated with the missing upper fibrous layer of the tectorial membrane which fails to regenerate after sound trauma. After aminoglycoside trauma, functional recovery is slower and parallels the structural regeneration more closely. Aminoglycosides cause damage to both types of hair cells, starting at the basal (high frequency) part of the basilar papilla. However, functional hearing loss and recovery also occur at lower frequencies, associated with areas of the papilla where hair cells survive. Functional recovery in these low frequency areas is complete, whereas functional recovery in high frequency areas with complete hair cell loss is incomplete, despite regeneration of the hair cells. Permanent residual functional deficits remain. This indicates that in low frequency regions functional recovery after aminoglycosides involves repair of nonlethal injury to hair cells and/or hair cell-neural synapses. In the high frequency regions functional recovery involves regenerated hair cells. The permanent functional deficits after the regeneration process in these areas are most likely associated with functional deficits in the regenerated hair cells or shortcomings in the synaptic reconnections of nerve fibers with the regenerated hair cells. In conclusion, the avian inner ear appears to be much more resistant to trauma than the mammalian ear and possesses a considerable capacity for functional recovery based on repair processes along with its capacity to regenerate hair cells. The functional recovery in areas with regenerated hair cells is considerable but incomplete.Keywords
This publication has 51 references indexed in Scilit:
- Speech Sound Perception and Learning: Biologic BasesScandinavian Audiology, 1998
- Otoacoustic emissions, hair cells, and myosin motorsThe Journal of the Acoustical Society of America, 1997
- Activity of primary auditory neurons in the cochlear ganglion of the emu Dromaius novaehollandiae: Spontaneous discharge, frequency tuning, and phase lockingThe Journal of the Acoustical Society of America, 1997
- New hair cells arise from supporting cell conversion in the acoustically damaged chick inner earNeuroscience Letters, 1996
- Auditory illusions and the single hair cellNature, 1993
- Hair cell regeneration in the chicken cochlea following aminoglycoside toxicityHearing Research, 1991
- Auditory Hair Cells: Structure, Function, Development, And RegenerationAnnual Review of Neuroscience, 1991
- Hair cell damage produced by acoustic trauma in the chick cochleaHearing Research, 1987
- Changes in middle-ear input admittance during postnatal auditory development in chicksHearing Research, 1986
- Discharge patterns of single fibers in the pigeon auditory nerveBrain Research, 1974