Yu J; Ramirez MA; Wang YZ; Edassery S; Shramuk M; Yeom S; Li CJ; Joshi Y; Cheatham MA; Rutherford MA; Welty LJ; Savas JN · 2026 · JCI insight
Paper
Noise-induced hearing loss (NIHL) is a major public health problem caused by damage to cochlear hair cells, synapses, and spiral ganglion neurons (SGNs). Since effective treatments are lacking, we investigated cellular stress responses induced by moderate and loud noise in a mouse model of cochlear synaptopathy. RNA sequencing and spatial transcriptomics revealed that noise exposure elicited a robust but transient upregulation of endoplasmic reticulum chaperones and proteasome subunits in SGNs and their supporting cells. To target this response, we administered TRC051384, a small-molecule activator of the heat shock transcription factor Hsf1, prior to noise exposure. TRC051384 crossed the blood-labyrinth barrier and reached the cochlea, induced heat shock protein gene expression, and restored ubiquitin-proteasome function in SGNs. Notably, TRC051384 treatment enhanced auditory brainstem response threshold recovery, preserved Wave I amplitudes, and maintained ribbon synapse density. Together with the existing literature, these findings identify proteotoxic stress in spiral ganglion neurons as a contributor to noise-induced hearing loss and support pharmacological activation of HSF1 as a promising therapeutic strategy.
Analysis
This study investigates the role of proteotoxic stress in spiral ganglion neurons (SGNs) in noise-induced hearing loss (NIHL) and evaluates TRC051384, an activator of the heat shock transcription factor Hsf1, as a potential therapeutic agent.
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