Glavin Courtney Coburn, Dhar Sumitrajit
Roxelyn and Richard Pepper Department of Communication Sciences & Disorders, Northwestern University, Evanston, IL, 60208, USA.
Department of Speech and Hearing Sciences, University of Washington, Seattle, WA, 98105, USA.
J Assoc Res Otolaryngol. 2025 Feb;26(1):17-32. doi: 10.1007/s10162-024-00969-8. Epub 2024 Nov 27.
Otoacoustic emissions (OAEs) are low-level signals generated from active processes related to outer hair cell transduction in the cochlea. In current clinical applications, OAEs are typically used to detect the presence or absence of hearing loss. However, their potential extends far beyond hearing screenings. Dr. Glenis Long realized this unfulfilled potential decades ago. She subsequently devoted a large portion of her storied scientific career to understanding OAEs and cochlear mechanics, particularly at the intersection of OAEs and perceptual measures. One specific application of OAEs that has yet to be translated from research laboratories to the clinic is using them to non-invasively characterize cochlear nonlinearity-a hallmark feature of a healthy cochlea-across a wide dynamic range. This can be done by measuring OAEs across input levels to obtain an OAE growth, or input-output (I/O), function. In this review, we describe distortion product OAE (DPOAE) growth and its relation to cochlear nonlinearity and mechanics. We then review biological and measurement factors that are known to influence OAE growth and finish with a discussion of potential applications. Throughout the review, we emphasize Dr. Long's many contributions to the field.
耳声发射(OAEs)是由与耳蜗外毛细胞转导相关的主动过程产生的低水平信号。在当前的临床应用中,耳声发射通常用于检测听力损失的存在与否。然而,它们的潜力远远超出听力筛查。格莱尼斯·朗博士几十年前就意识到了这种未被充分发掘的潜力。随后,她在其传奇的科学职业生涯中投入了很大一部分精力来理解耳声发射和耳蜗力学,特别是在耳声发射与感知测量的交叉领域。耳声发射的一个尚未从研究实验室转化到临床的具体应用是利用它们在广泛的动态范围内非侵入性地表征耳蜗非线性——健康耳蜗的一个标志性特征。这可以通过测量不同输入水平下的耳声发射来获得耳声发射增长或输入 - 输出(I/O)函数来实现。在这篇综述中,我们描述了畸变产物耳声发射(DPOAE)增长及其与耳蜗非线性和力学的关系。然后我们回顾已知影响耳声发射增长的生物学和测量因素,并以对潜在应用的讨论作为结尾。在整个综述过程中,我们强调朗博士对该领域的诸多贡献。