Search bioRxiv⌕ Search

Biology subjects

Panganiban, C.

Publications and source records attributed to Panganiban, C..

2 recordsLinked to original sources

Age-Related Central Gain with Degraded Neural Synchrony in the Auditory Brainstem of Mice and Humans

Aging is associated with auditory nerve (AN) functional deficits and decreased inhibition in the central auditory system, amplifying central responses in a process known as central gain. Although central gain enhances response amplitudes, central gain may not restore disrupted response timing. In this translational study, we measured responses from the AN and auditory midbrain in younger and older mice and humans. We hypothesized that older mice and humans exhibit central gain without an improvement in inter-trial synchrony in the midbrain. Our data demonstrated greater age-related deficits in AN response amplitudes than auditory midbrain response amplitudes, as shown by significant interactions between neural generator and age group, indicating central gain in auditory midbrain. However, synchrony decreases with age in both the AN and midbrain responses. These results reveal age-related central gain without concomitant improvements in synchrony, consistent with those predictions based on decreases in inhibition. Persistent decreases in synchrony may contribute to auditory processing deficits in older mice and humans.

neuroscience↗

Two distinct types of nodes of Ranvier support auditory nerve function in the mouse cochlea

Glial cells of the auditory nerve regulate formation of the nodes of Ranvier that are needed for regeneration of action potentials and proper hearing function. Here we identify and describe the distinct features of two novel types of Ranvier nodes--the axonal node and the ganglion node--in the mouse auditory nerve that change across the lifespan, including during myelination and postnatal development, and degenerate during aging. Cellular, molecular, and structure-function correlation evaluations revealed that nodal types are critical for different aspects of auditory nerve function. Specifically, the length of the axonal node is associated with neural processing speed and neural synchrony, whereas ganglion node development is associated with amplitude growth of the action potential. Moreover, our data indicate that dysregulation of glial cells and associated degeneration of the ganglion node structure are an important and new mechanism of auditory nerve dysfunction in age-related hearing loss.

neuroscience↗