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Mutations in unfolded protein response regulator ATF6 cause hearing and vision loss syndrome
Eun-Jin Lee, Kyle Kim, Monica Sophia Diaz-Aguilar, Hyejung Min, Eduardo Chavez, Korina J. Steinbergs, Lance A. Safarta, Guirong Zhang, Allen F. Ryan, Jonathan H. Lin
Eun-Jin Lee, Kyle Kim, Monica Sophia Diaz-Aguilar, Hyejung Min, Eduardo Chavez, Korina J. Steinbergs, Lance A. Safarta, Guirong Zhang, Allen F. Ryan, Jonathan H. Lin
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Research Article Genetics Ophthalmology

Mutations in unfolded protein response regulator ATF6 cause hearing and vision loss syndrome

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Abstract

Activating transcription factor 6 (ATF6) is a key regulator of the unfolded protein response (UPR) and is important for ER function and protein homeostasis in metazoan cells. Patients carrying loss-of-function ATF6 disease alleles develop the cone dysfunction disorder achromatopsia. The effect of loss of ATF6 function on other cell types, organs, and diseases in people remains unclear. Here, we report that progressive sensorineural hearing loss was a notable complaint in some patients carrying ATF6 disease alleles and that Atf6–/– mice also showed progressive auditory deficits affecting both sexes. In mice with hearing deficits, we found disorganized stereocilia on hair cells and focal loss of outer hair cells. Transcriptomics analysis of Atf6–/– cochleae revealed a marked induction of the UPR, especially through the protein kinase RNA-like endoplasmic reticulum kinase (PERK) arm. These findings identify ATF6 as an essential regulator of cochlear health and function. Furthermore, they support the idea that ATF6 inactivation in people causes progressive sensorineural hearing loss as part of a blindness-deafness genetic syndrome targeting hair cells and cone photoreceptors. Last, our genetic findings indicate that ER stress is an important pathomechanism underlying cochlear damage and hearing loss, with clinical implications for patient lifestyle modifications that minimize environmental and physiological sources of ER stress to the ear.

Authors

Eun-Jin Lee, Kyle Kim, Monica Sophia Diaz-Aguilar, Hyejung Min, Eduardo Chavez, Korina J. Steinbergs, Lance A. Safarta, Guirong Zhang, Allen F. Ryan, Jonathan H. Lin

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Figure 4

Atf6–/– mouse cochlear hair cells degenerate and exhibit disorganized stereocilia in the basal region at an approximate frequency of 28–32 kHz.

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Atf6–/– mouse cochlear hair cells degenerate and exhibit disorganized s...
Atf6+/+ and Atf6–/– cochleae were stained for myosin 7a (MYO7A) and phalloidin to visualize hair cells and stereocilia, respectively. (A) Immunofluorescence confocal images of 2-month-old Atf6–/– OHCs show disorganized arrangement and loss of OHCs. (B) Histogram showing the number of OHCs and IHCs in 2-month-old Atf6+/+ (n = 6) and Atf6–/– (n = 6) cochleae. Counts refer to the number of hair cells encountered within the average of 3 separate 100 linear extensions. Each dot represents the average of 2 individual measurements. Data represent the mean ± SEM. **P ≤ 0.01, Welch’s t test. (C) Atf6+/+ mice maintained organized stereocilia on IHCs, whereas Atf6–/– mice had IHC stereocilia abnormalities such as disorganized bundling (arrowheads) at 2 months of age. Bottom 2 rows are higher-power images showing stereocilia organization in Atf6+/+ versus Atf6–/– IHCs. (D) Quantitative analysis of disorganized IHC bundle reveals statistically significant disorganization of stereocilia in 2-month-old Atf6–/– mice. Dots represent individual measurements (n = 6). Data represent the mean ± SEM. **P ≤ 0.01, Welch’s t test. (E) Images of MYO7A and phalloidin staining of OC tissue from Atf6+/+ and Atf6–/– cochleae focusing on the stereocilia of the OHCs. In Atf6–/– mice (n = 6), OHC stereocilia show severe changes in morphology when compared with OHC stereocilia from Atf6+/+ mice (arrows, n = 6). Scale bars: 50 μm (A) and 10 μm (C and E).

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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