耳膜电极测量听神经产生包膜反应的证据。

IF 2.4 3区 医学 Q3 NEUROSCIENCES
Skyler G Jennings, Jessica Chen, Nathan Johansen, Shawn S Goodman
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引用次数: 0

摘要

稳态听觉诱发电位在研究人类听觉系统和诊断听力障碍方面具有重要意义。确定这些潜力的产生因素对于解释数据和确定适当的临床和研究应用至关重要。在这里,我们推断了从鼓膜电极测量的稳态电位的假定发生器,并将该电位与从高前额电极测量的传统包络响应(EFR)进行了比较(N = 18,10名女性)。我们假设耳膜电极的反应与刺激包络的每个周期引起的听神经复合动作电位(CAP)一致,从而产生我们称之为CAPENV的电位。稳态电位由90db peSPL, 3000hz纯酮载波诱发,其包络由频率为20 ~ 160hz或80 ~ 640hz的音调扫描调制。我们通过计算群延迟来推断潜在的生成器。我们还比较了经验测量的CAPENV和从AN反应的人源化模型模拟的CAPENV。响应延迟和模型模拟支持CAPENV是由AN而不是毛细胞或脑干发生器产生的所有调制频率测试的解释。相反,当调制频率从20赫兹增加到200赫兹时,传统EFR的潜伏期与从皮层到脑干发生器的转移是一致的。我们认为CAPENV可能是评估疑似AN纤维缺失和/或时间编码障碍患者的AN功能的有效工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evidence for the Auditory Nerve Generating Envelope Following Responses When Measured from Eardrum Electrodes.

Steady-state auditory evoked potentials are useful for studying the human auditory system and diagnosing hearing disorders. Identifying the generators of these potentials is essential for interpretation of data and for determining appropriate clinical and research applications. Here we infer putative generators of a steady-state potential measured from an electrode on the eardrum and compare this potential with the traditional envelope following response (EFR) measured from an electrode on the high forehead (N = 18, 10 female). We hypothesized that responses from the eardrum electrode would be consistent with an auditory nerve (AN) compound action potential (CAP) evoked by each cycle of the stimulus envelope, resulting in a potential we call CAPENV. Steady-state potentials were evoked by a 90 dB peSPL, 3000-Hz puretone carrier whose envelope was modulated by a tone sweep with frequencies from 20 to 160 Hz or 80 to 640 Hz. We calculated group delay to infer potential generators. We also compared the empirically measured CAPENV with simulated CAPENV from a humanized model of AN responses. Response latencies and model simulations support the interpretation that CAPENV is generated by the AN rather than hair cell or brainstem generators for all modulation frequencies tested. Conversely, latencies for the traditional EFR were consistent with a shift from cortical to brainstem generators as the modulation frequency increased from 20 to 200 Hz. We propose that CAPENV may be a fruitful tool for assessing AN function in humans with suspected AN fiber loss and/or temporal coding disorders.

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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.
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