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Hidden hearing loss in a Charcot-Marie-Tooth type 1A mouse model
Luis R. Cassinotti, Lingchao Ji, M. Caroline Yuk, Aditi S. Desai, Nathan D. Cass, Zahara A. Amir, Gabriel Corfas
Luis R. Cassinotti, Lingchao Ji, M. Caroline Yuk, Aditi S. Desai, Nathan D. Cass, Zahara A. Amir, Gabriel Corfas
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Research Article Neuroscience Otology

Hidden hearing loss in a Charcot-Marie-Tooth type 1A mouse model

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Abstract

Hidden hearing loss (HHL), a recently described auditory neuropathy characterized by normal audiometric thresholds but reduced sound-evoked cochlear compound action potentials, has been proposed to contribute to hearing difficulty in noisy environments in people with normal hearing thresholds and has become a widespread complaint. While most studies on HHL pathogenesis have focused on inner hair cell (IHC) synaptopathy, we recently showed that transient auditory nerve (AN) demyelination also causes HHL in mice. To test the effect of myelinopathy on hearing in a clinically relevant model, we studied a mouse model of Charcot-Marie-Tooth type 1A (CMT1A), the most prevalent hereditary peripheral neuropathy in humans. CMT1A mice exhibited the functional hallmarks of HHL together with disorganization of AN heminodes near the IHCs with minor loss of AN fibers. These results support the hypothesis that mild disruptions of AN myelination can cause HHL and that heminodal defects contribute to the alterations in the sound-evoked cochlear compound action potentials seen in this mouse model. Furthermore, these findings suggest that patients with CMT1A or other mild peripheral neuropathies are likely to suffer from HHL. Furthermore, these results suggest that studies of hearing in patients with CMT1A might help develop robust clinical tests for HHL, which are currently lacking.

Authors

Luis R. Cassinotti, Lingchao Ji, M. Caroline Yuk, Aditi S. Desai, Nathan D. Cass, Zahara A. Amir, Gabriel Corfas

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Figure 5

CMT1A and CMT1E mice have different degrees of IHC-SGN synapse loss without hair cell loss.

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CMT1A and CMT1E mice have different degrees of IHC-SGN synapse loss with...
(A and B) Representative confocal images of hair cells (A) and IHC-SGN synapses (B) at the 16 kHz region of WT (top), CMT1A (middle), and CMT1E (bottom) cochleae immunolabeled for hair cells (MyoVIIa), presynaptic ribbons (Ctbp2), and postsynaptic receptor patches (GluR2). Scale bars: 30 μm (left), 10 μm (right). (C) Inner (left) and outer (right) hair cells survival is not affected by these 2 different CMT1 mutations. WT, n = 6 cochleae; CMT1A, n = 6 cochleae; CMT1E, n = 5 cochleae. One cochlea from each animal was imaged, with 3 adjacent Z stacks acquired at each specific cochlear region. (D) CMT1A mice have mild IHC-SGN synapse loss at 16 and 32 kHz areas, compared with WT mice. CMT1E IHC-SGN synapse density is more severely reduced than in CMT1A. WT, n = 3–7 cochleae; CMT1A, n = 3–7 cochleae; CMT1E, n = 3–7 cochleae. One cochlea from each animal was imaged, with 3 adjacent Z stacks acquired at each specific cochlear region. IHC-SGN synapse density was analyzed by 1-way ANOVA followed by Šidák’s multiple-comparison test. Quantification of inner and outer hair cells was analyzed by Kruskal-Wallis test followed by Dunn’s multiple-comparison test. *P < 0.05; **P < 0.01; ****P < 0.0001. Data are shown as mean ± SEM.

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