Related Experiment Video
Updated: Oct 22, 2025

Morphological and Functional Evaluation of Ribbon Synapses at Specific Frequency Regions of the Mouse Cochlea
Published on: May 10, 2019
Cochlear Synaptic Degeneration and Regeneration After Noise: Effects of Age and Neuronal Subgroup
Tyler T Hickman1,2, Ken Hashimoto3, Leslie D Liberman1
1Eaton-Peabody Laboratories, Massachusetts Eye and Ear, Boston, MA, United States.
Abstract:
In CBA/CaJ mice, confocal analysis has shown that acoustic overexposure can immediately destroy synapses between auditory-nerve fibers (ANFs) and their peripheral targets, the inner hair cells (IHCs), and that years later, a corresponding number of ANF cell bodies degenerate. In guinea pig, post-exposure disappearance of pre-synaptic ribbons can be equally dramatic, however, post-exposure recovery to near-baseline counts has been reported. Since confocal counts are confounded by thresholding issues, the fall and rise of synaptic ribbon counts could represent "regeneration," i.e., terminal retraction, re-extension and synaptogenesis, or "recovery," i.e., down- and subsequent up-regulation of synaptic markers. To clarify, we counted pre-synaptic ribbons, assessed their juxtaposition with post-synaptic receptors, measured the extension of ANF terminals, and quantified the spatial organization and size gradients of these synaptic elements around the hair cell. Present results in guinea pigs exposed as adults (14 months), along with prior results in juveniles (1 month), suggest there is post-exposure neural regeneration in the guinea pig, but not the CBA/CaJ mouse, and that this regenerative capacity extends into adulthood. The results also show, for the first time, that the acute synaptic loss is concentrated on the modiolar side of IHCs, consistent with a selective loss of the high-threshold ANFs with low spontaneous rates. The morphological similarities between the post-exposure neurite extension and synaptogenesis, seen spontaneously in the guinea pig, and in CBA/CaJ only with forced overexpression of neurotrophins, suggest that the key difference may be in the degree of sustained or injury-induced expression of these signaling molecules in the cochlea.
Insights
Guinea pigs exhibit neural regeneration after acoustic overexposure, unlike CBA/CaJ mice. This auditory nerve regeneration capacity persists into adulthood, offering insights into cochlear repair mechanisms.
Area of Science:
- Neuroscience
- Auditory Neuroscience
- Regenerative Medicine
Background:
- Acoustic overexposure causes immediate synapse loss between auditory-nerve fibers (ANFs) and inner hair cells (IHCs) in CBA/CaJ mice, followed by ANF degeneration.
- Synaptic changes in guinea pigs post-exposure are dramatic but may involve recovery rather than true regeneration.
- Distinguishing between regeneration and recovery is crucial for understanding cochlear repair.
Purpose of the Study:
- To investigate whether guinea pigs exhibit neural regeneration after acoustic overexposure.
- To determine if this regenerative capacity extends into adulthood.
- To clarify the mechanisms underlying synaptic changes in the cochlea following noise exposure.
Main Methods:
- Counting pre-synaptic ribbons and assessing their proximity to post-synaptic receptors.
- Measuring auditory-nerve fiber terminal extension.
- Quantifying synaptic element organization and size gradients around inner hair cells.
Main Results:
- Guinea pigs, both juvenile and adult, show evidence of post-exposure neural regeneration, unlike CBA/CaJ mice.
- The regenerative capacity in guinea pigs persists into adulthood.
- Acute synaptic loss is concentrated on the modiolar side of IHCs, indicating selective loss of high-threshold ANFs.
Conclusions:
- Guinea pigs possess a greater capacity for auditory nerve regeneration following acoustic injury compared to CBA/CaJ mice.
- This regenerative ability in guinea pigs extends into adulthood.
- Differences in neurotrophin expression may underlie the distinct regenerative responses observed between species.
Related Concept Videos
Neurogenesis and Regeneration of Nervous Tissue
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...
The Cochlea
Auditory Pathway
When viewed cross-sectionally, the cochlea reveals the scala vestibuli and scala tympani flanking...

