Asymmetry in the Perception of Electrical Chirps Presented to Cochlear Implant Listeners.

IF 2.4 3区 医学 Q3 NEUROSCIENCES Jaro-Journal of the Association for Research in Otolaryngology Pub Date : 2024-10-01 Epub Date: 2024-08-01 DOI:10.1007/s10162-024-00952-3
Ana Šodan, Sabine Meunier, Vincent Péan, Jean-Pierre Lavieille, Stéphane Roman, Olivier Macherey
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Abstract

Introduction: Although a broadband acoustic click is physically the shortest duration sound we can hear, its peripheral neural representation is not as short because of cochlear filtering. The traveling wave imposes frequency-dependent delays to the sound waveform so that in response to a click, apical nerve fibers, coding for low frequencies, are excited several milliseconds after basal fibers, coding for high frequencies. Nevertheless, a click sounds like a click and these across-fiber delays are not perceived. This suggests that they may be compensated by the central auditory system, rendering our perception consistent with the external world. This explanation is difficult to evaluate in normal-hearing listeners because the contributions of peripheral and central auditory processing cannot easily be disentangled. Here, we test this hypothesis in cochlear implant listeners for whom cochlear mechanics is bypassed.

Method: Eight cochlear implant users ranked in perceived duration 12 electrical chirps of various physical durations and spanning the cochlea in the apex-to-base or base-to-apex direction (Exp. 1). Late-latency cortical potentials were also recorded in response to a subset of these chirps (Exp. 2).

Results: We show that an electrical chirp spanning the cochlea from base-to-apex is perceived as shorter than the same chirp spanning the cochlea in the opposite direction despite having the same physical duration. Cortical potentials also provide neural correlates of this asymmetry in perception.

Conclusion: These results demonstrate that the central auditory system processes frequency sweeps differently depending on the direction of the frequency change and that this processing difference is not simply the result of peripheral filtering.

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耳蜗植入者对电子鸣声感知的不对称性
简介尽管宽带 "咔嗒 "声是我们所能听到的物理上持续时间最短的声音,但由于耳蜗滤波的作用,其外周神经表征并没有那么短。行波会对声音波形产生频率相关的延迟,因此在听到 "咔嗒 "声时,编码低频的顶端神经纤维会比编码高频的基底神经纤维晚几毫秒被激发。然而,"咔嗒 "声听起来就像 "咔嗒 "声,这些跨纤维延迟并不会被感知到。这表明,它们可能被中枢听觉系统所补偿,使我们的感知与外部世界保持一致。这种解释很难在听力正常的听者身上进行评估,因为外周听觉处理和中枢听觉处理的贡献不易区分。在此,我们在人工耳蜗听者身上测试了这一假设:方法:八名人工耳蜗植入者对 12 个不同物理持续时间的电鸣声进行感知持续时间排序,这些电鸣声从耳尖到耳根或从耳根到耳尖的方向跨越耳蜗(实验 1)。我们还记录了这些鸣声子集所产生的晚期皮层电位(实验 2):结果:我们发现,尽管物理持续时间相同,但耳蜗内从基底到外岬方向的电子啁啾声比耳蜗内相反方向的电子啁啾声更短。皮层电位也提供了这种不对称感知的神经相关性:这些结果表明,中枢听觉系统会根据频率变化的方向对扫频进行不同的处理,而这种处理差异并不仅仅是外周滤波的结果。
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来源期刊
CiteScore
4.10
自引率
12.50%
发文量
57
审稿时长
6-12 weeks
期刊介绍: JARO is a peer-reviewed journal that publishes research findings from disciplines related to otolaryngology and communications sciences, including hearing, balance, speech and voice. JARO welcomes submissions describing experimental research that investigates the mechanisms underlying problems of basic and/or clinical significance. Authors are encouraged to familiarize themselves with the kinds of papers carried by JARO by looking at past issues. Clinical case studies and pharmaceutical screens are not likely to be considered unless they reveal underlying mechanisms. Methods papers are not encouraged unless they include significant new findings as well. Reviews will be published at the discretion of the editorial board; consult the editor-in-chief before submitting.
期刊最新文献
Evaluating the Correlation Between Stimulus Frequency Otoacoustic Emission Group Delays and Tuning Sharpness in a Cochlear Model. Tuning and Timing of Organ of Corti Vibrations at the Apex of the Intact Chinchilla Cochlea. Vital Dye Uptake of YO-PRO-1 and DASPEI Depends Upon Mechanoelectrical Transduction Function in Zebrafish Hair Cells. Investigating the Effect of Blurring and Focusing Current in Cochlear Implant Users with the Panoramic ECAP Method. Eric Daniel Young.
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