Related Experiment Video
Updated: Jul 18, 2026

Cochlear Surface Preparation in the Adult Mouse
Published on: November 6, 2019
Death pathways in noise-damaged outer hair cells
Barbara A Bohne1, Gary W Harding, Steve C Lee
1Washington University School of Medicine, Department of Otolaryngology, 660 South Euclid Avenue, St. Louis, MO 63110, United States. bohneb@ent.wustl.edu
Abstract:
Using morphological criteria, death pathways in outer hair cells (OHCs) were determined in chinchilla organs of Corti that had been exposed to a high- or moderate-level octave band of noise (OBN) centered at either 0.5 or 4-kHz. The specimens were part of our large collection of plastic-embedded flat preparations of chinchilla cochleae. Three death pathways were identified: (1) oncotic - swollen, pale-staining cell with a swollen nucleus, (2) apoptotic - shrunken, dark-staining cell with a pyknotic nucleus and (3) a newly defined third pathway - no basolateral plasma membrane but cellular debris arranged in the shape of an intact OHC with a nucleus deficient in nucleoplasm. To minimize the secondary loss of OHCs from the entrance of endolymph into the organ of Corti, the specimens used for quantitative analysis of death pathways had the following characteristics: (1) the level to which they were exposed was less than or equal to 95dB SPL, (2) the exposure duration was 6-216h, (3) fixation for microscopic examination took place in vivo 1-2h post-exposure and (4) there were no focal OHC lesions in the organs of Corti. Fifty-eight noise-exposed cochleae met these criteria. In these specimens, degenerating and missing OHCs were classified as to which death pathway the cells had followed or were following. Nine non-noise-exposed cochleae were also evaluated for OHC death pathways. The number of OHCs following the third death pathway was significantly greater in the noise-exposed cochleae than the non-noise-exposed cochleae for total exposure energies greater than those produced by 75dB SPL for 216h to a 0.5-kHz OBN and 57dB SPL for 48h to a 4-kHz OBN. In cochleae exposed to either octave band, OHCs dying by oncosis or apoptosis were uncommon.
Insights
Noise exposure significantly increases outer hair cell (OHC) death via a novel pathway, distinct from oncosis or apoptosis. This finding is crucial for understanding noise-induced hearing loss.
Area of Science:
- Otoacoustic emissions
- Auditory neuroscience
- Cellular biology
Background:
- Outer hair cells (OHCs) are vital for hearing sensitivity.
- Noise exposure is a major cause of hearing impairment.
- Understanding OHC death mechanisms is key to preventing hearing loss.
Purpose of the Study:
- To identify and characterize death pathways in OHCs following noise exposure.
- To compare noise-induced OHC death with naturally occurring cell death.
- To define a newly observed OHC death pathway.
Main Methods:
- Morphological analysis of OHCs in chinchilla cochleae using light microscopy.
- Exposure to octave band noise (OBN) at various levels and durations.
- Quantitative comparison of OHC death pathways between noise-exposed and control groups.
Main Results:
- Three OHC death pathways were identified: oncosis, apoptosis, and a novel pathway characterized by loss of the basolateral membrane.
- The novel OHC death pathway was significantly more prevalent in noise-exposed cochleae compared to controls.
- Oncotic and apoptotic OHC deaths were infrequent in noise-exposed cochleae.
Conclusions:
- Noise exposure induces a unique OHC death pathway beyond traditional oncosis and apoptosis.
- This novel pathway may represent a critical mechanism in noise-induced hearing damage.
- Further research into this pathway could lead to new therapeutic strategies for hearing loss.
Related Concept Videos
Auditory Pathway
When viewed cross-sectionally, the cochlea reveals the scala vestibuli and scala tympani flanking the...
Hair Cells
Unrenewable Cells
Photoreceptors
The retina is composed of several layers and contains specialized cells called photoreceptors. The photoreceptors (rods and cones) change their membrane potential when stimulated by light energy. There are two types of photoreceptors—rods and cones—which differ in the shape of their outer...
The Cochlea
Hearing
Anatomy of the Ear

