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Prestin介导的哺乳动物耳蜗放大快速电运动的频率依赖性

The frequency dependence of prestin-mediated fast electromotility for mammalian cochlear amplification.

作者信息

Takahashi Satoe, Zhou Yingjie, Cheatham Mary Ann, Homma Kazuaki

出版信息

bioRxiv. 2024 May 26:2024.05.22.595389. doi: 10.1101/2024.05.22.595389.

Abstract

UNLABELLED

Prestin's voltage-driven motor activity confers sound-elicited somatic electromotility in auditory outer hair cells (OHCs) and is essential for the exquisite sensitivity and frequency selectivity of mammalian hearing. Lack of prestin results in hearing threshold shifts across frequency, supporting the causal association of variants in the prestin-coding gene, , with human hearing loss, DFNB61. However, cochlear function can tolerate reductions in prestin-mediated OHC electromotility. We found that two deafness-associated prestin variants, p.A100T and p.P119S, do not deprive prestin of its fast motor function but significantly reduce membrane expression, leading to large reductions in OHC electromotility that were only ∼30% of wildtype (WT). Mice harboring these missense variants suffered congenital hearing loss that was worse at high frequencies; however, they retained WT-like auditory brainstem response thresholds at 8 kHz, which is processed at the apex of the mouse cochlea. This observation suggests the increasing importance of prestin-driven cochlear amplification at higher frequencies relevant to mammalian hearing. The observation also suggests the promising clinical possibility that small enhancements of OHC electromotility could significantly ameliorate DFNB61 hearing loss in human patients.

SIGNIFICANCE

Prestin is abundantly expressed in the auditory outer hair cells and is essential for normal cochlear operation. Hence, reduction of prestin expression is often taken as indicative of reduced cochlear function in diseased or aged ears. However, this assumption overlooks the fact that cochlear function can tolerate large reductions in prestin motor activity. DFNB61 mouse models generated and characterized in this study provide an opportunity to gauge the amount of prestin motor activity needed to sustain normal hearing sensitivity. This knowledge is crucial not only for understanding the pathogenic roles of deafness-associated variants that impair OHC electromotility but also for unraveling how prestin contributes to cochlear amplification.

摘要

未标注

Prestin的电压驱动运动活性赋予听觉外毛细胞(OHC)声音诱发的体细胞电运动性,并且对于哺乳动物听力的精细灵敏度和频率选择性至关重要。Prestin的缺失导致跨频率的听力阈值变化,支持了Prestin编码基因( )中的变异与人类听力损失DFNB61之间的因果关联。然而,耳蜗功能能够耐受Prestin介导的OHC电运动性的降低。我们发现,两个与耳聋相关的Prestin变异体p.A100T和p.P119S,并没有剥夺Prestin的快速运动功能,但显著降低了膜表达,导致OHC电运动性大幅降低,仅为野生型(WT)的约30%。携带这些错义变异体的小鼠患有先天性听力损失,在高频时更严重;然而,它们在8 kHz时保留了类似WT的听觉脑干反应阈值,该频率在小鼠耳蜗顶端进行处理。这一观察结果表明,在与哺乳动物听力相关的较高频率下,Prestin驱动的耳蜗放大作用越来越重要。该观察结果还表明了一种有前景的临床可能性,即OHC电运动性的小幅增强可能显著改善人类患者的DFNB61听力损失。

意义

Prestin在听觉外毛细胞中大量表达,对正常的耳蜗运作至关重要。因此,Prestin表达的降低通常被视为患病或衰老耳朵中耳蜗功能降低的指标。然而,这一假设忽略了耳蜗功能能够耐受Prestin运动活性大幅降低这一事实。在本研究中生成并表征的DFNB61小鼠模型提供了一个机会,来衡量维持正常听力灵敏度所需的Prestin运动活性量。这一知识不仅对于理解损害OHC电运动性的耳聋相关变异体的致病作用至关重要,而且对于阐明Prestin如何促进耳蜗放大也至关重要。

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