Localized disorganization of the cochlear inner hair cell synaptic region after noise exposure
The prevalence and importance of hearing damage caused by noise levels not previously thought to cause permanent hearing impairment has become apparent in recent years. The damage to, and loss of, afferent terminals of auditory nerve fibres at the cochlear inner hair cell has been well established,...
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2019-01-01
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Online Access: | http://bio.biologists.org/content/8/1/bio038547 |
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doaj-8023dc833aba4c6ab96a387c064b41382021-06-02T18:53:52ZengThe Company of BiologistsBiology Open2046-63902019-01-018110.1242/bio.038547038547Localized disorganization of the cochlear inner hair cell synaptic region after noise exposureAnwen Bullen0Lucy Anderson1Warren Bakay2Andrew Forge3 UCL Ear Institute, London, UK WC1X 8EE UCL Ear Institute, London, UK WC1X 8EE UCL Ear Institute, London, UK WC1X 8EE UCL Ear Institute, London, UK WC1X 8EE The prevalence and importance of hearing damage caused by noise levels not previously thought to cause permanent hearing impairment has become apparent in recent years. The damage to, and loss of, afferent terminals of auditory nerve fibres at the cochlear inner hair cell has been well established, but the effects of noise exposure and terminal loss on the inner hair cell are less known. Using three-dimensional structural studies in mice we have examined the consequences of afferent terminal damage on inner hair cell morphology and intracellular structure. We identified a structural phenotype in the pre-synaptic regions of these damaged hair cells that persists for four weeks after noise exposure, and demonstrates a specific dysregulation of the synaptic vesicle recycling pathway. We show evidence of a failure in regeneration of vesicles from small membrane cisterns in damaged terminals, resulting from a failure of separation of small vesicle buds from the larger cisternal membranes.http://bio.biologists.org/content/8/1/bio038547Inner hair cellNoise exposurePre-synapticVesicle |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Anwen Bullen Lucy Anderson Warren Bakay Andrew Forge |
spellingShingle |
Anwen Bullen Lucy Anderson Warren Bakay Andrew Forge Localized disorganization of the cochlear inner hair cell synaptic region after noise exposure Biology Open Inner hair cell Noise exposure Pre-synaptic Vesicle |
author_facet |
Anwen Bullen Lucy Anderson Warren Bakay Andrew Forge |
author_sort |
Anwen Bullen |
title |
Localized disorganization of the cochlear inner hair cell synaptic region after noise exposure |
title_short |
Localized disorganization of the cochlear inner hair cell synaptic region after noise exposure |
title_full |
Localized disorganization of the cochlear inner hair cell synaptic region after noise exposure |
title_fullStr |
Localized disorganization of the cochlear inner hair cell synaptic region after noise exposure |
title_full_unstemmed |
Localized disorganization of the cochlear inner hair cell synaptic region after noise exposure |
title_sort |
localized disorganization of the cochlear inner hair cell synaptic region after noise exposure |
publisher |
The Company of Biologists |
series |
Biology Open |
issn |
2046-6390 |
publishDate |
2019-01-01 |
description |
The prevalence and importance of hearing damage caused by noise levels not previously thought to cause permanent hearing impairment has become apparent in recent years. The damage to, and loss of, afferent terminals of auditory nerve fibres at the cochlear inner hair cell has been well established, but the effects of noise exposure and terminal loss on the inner hair cell are less known. Using three-dimensional structural studies in mice we have examined the consequences of afferent terminal damage on inner hair cell morphology and intracellular structure. We identified a structural phenotype in the pre-synaptic regions of these damaged hair cells that persists for four weeks after noise exposure, and demonstrates a specific dysregulation of the synaptic vesicle recycling pathway. We show evidence of a failure in regeneration of vesicles from small membrane cisterns in damaged terminals, resulting from a failure of separation of small vesicle buds from the larger cisternal membranes. |
topic |
Inner hair cell Noise exposure Pre-synaptic Vesicle |
url |
http://bio.biologists.org/content/8/1/bio038547 |
work_keys_str_mv |
AT anwenbullen localizeddisorganizationofthecochlearinnerhaircellsynapticregionafternoiseexposure AT lucyanderson localizeddisorganizationofthecochlearinnerhaircellsynapticregionafternoiseexposure AT warrenbakay localizeddisorganizationofthecochlearinnerhaircellsynapticregionafternoiseexposure AT andrewforge localizeddisorganizationofthecochlearinnerhaircellsynapticregionafternoiseexposure |
_version_ |
1721402082715500544 |