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DPOAE Intensity Increase at Individual Dominant Frequency after Short-Term Auditory Exposure

机译:短期听觉接触后DPOAE强度以个体显性频率增加

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摘要

Previous experiments suggested the possibility of a short-term sound stimulus-evoked and transient increase in DPOAE amplitudes. This phenomenon is possibly due to the complexity of the outer hair cells and their efferent control system and the different time scales of regulatory processes. A total of 100 healthy subjects ranging from 18 to 40 years of age with normal hearing and normal DPOAE values in the range of 781–4000 Hz were recruited in the study. Diagnostic DPOAE measurements were performed after short-term sound exposure. We proposed a 10 sec, 50 dB sound impulse as the most effective stimulus for clinical practice between 40 and 60 sec poststimulus time to detect the aforementioned transient DPOAE increase. We developed a procedure for detection of this transient increase in DPOAE by the application of a short-term sound exposure. The phenomenon was consistent and well detectable. Based on our findings, a new aspect of cochlear adaptation can be established that might be introduced as a routine clinical diagnostic tool. A mathematical model was provided that summarizes various factors that determine electromotility of OHCs and serves as a possible clinical application using this phenomenon for the prediction of individual noise susceptibility.
机译:先前的实验表明,DPOAE振幅可能会引起短期的声音刺激和瞬时增加。这种现象可能是由于外部毛细胞及其传出的控制系统的复杂性以及调节过程的不同时标造成的。该研究共招募了100名健康受试者,年龄在18至40岁之间,听力正常且DPOAE值在781–4000 Hz范围内。在短期暴露于声音后进行诊断性DPOAE测量。我们提出了一个10微秒,50微分贝的声音脉冲,作为刺激后40至60微秒的临床实践中检测上述DPOAE短暂升高的最有效刺激。我们开发了一种通过短期声暴露检测DPOAE瞬时增加的程序。该现象是一致的并且可以很好地检测到。根据我们的发现,可以建立耳蜗适应的新方面,可以将其引入作为常规临床诊断工具。提供了一个数学模型,该数学模型总结了确定OHCs电动性的各种因素,并将此现象用作预测个体噪声敏感性的可能临床应用。

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