听力正常的年轻人在噪音中的听觉皮质加工

Jennifer McCullagh, F. Musiek, J. Shinn
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引用次数: 9

摘要

摘要目的:在背景噪声环境下的听觉能力与外周听觉系统和中枢听觉神经系统(CANS)对传入声信号的处理有关。电生理测试有能力证明can潜在的神经完整性,但迄今为止缺乏文献证明背景噪声对听觉皮层电位的影响。因此,本研究的目的是系统地研究白噪声对正常听力年轻人的音调突发诱发的晚听诱发电位(N1、P2和P3)的影响。研究设计:20名听力正常的年轻人作为研究对象。比较不同信噪比(安静、+ 20、+ 10、0)下的后期听觉诱发电位(N1、P2和P3)。分别诱发N1、P2和P3,并测量每个电位的振幅和潜伏期。采用双耳刺激的标准古怪范式来诱发电位。重复测量方差分析(ANOVA)对振幅和潜伏期的实验因素与受试者内部条件因素(安静、+ 20、+ 10、0)进行了方差分析。结果:结果显示安静和+ 20信噪比条件下N1、P2、P3振幅或潜伏期无显著差异;然而,在较低信噪比下,观察到显著的N1、P2和P3振幅和/或潜伏期差异。结论:研究结果表明,高阶神经功能的变化与环境中噪音的增加有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Auditory Cortical Processing in Noise in Normal-Hearing Young Adults
Abstract Objective: The ability to hear in background noise is related to the processing of the incoming acoustic signal in the peripheral auditory system as well as the central auditory nervous system (CANS). Electrophysiological tests have the ability to demonstrate the underlying neural integrity of the CANS, but to date a lack of literature exists demonstrating the effects of background noise on auditory cortical potentials. Therefore, the purpose of this investigation was to systematically investigate the effects of white noise on tone burst-evoked late auditory evoked potentials (N1, P2, and P3) in normal hearing young adults. Study Design: Twenty young-adult normal-hearing individuals served as subjects. A comparison of the late auditory evoked potentials (N1, P2, and P3) was made at multiple signal-to-noise ratios (SNRs) (quiet, + 20, + 10, 0). N1, P2, and P3 were elicited and both amplitude and latency were measured for each of the potentials. A standard oddball paradigm with binaural stimulation was used to evoke the potentials. Repeated Measures Analyses of Variance (ANOVA) were conducted for both the experimental factors of amplitude and latency with within subjects factors of condition (quiet, + 20, + 10, 0). Results: Results indicated no significant differences in N1, P2, or P3 amplitude or latency between the quiet and + 20 SNR condition; however, at poorer SNRs significant N1, P2, and P3 amplitude and/or latency differences were observed. Conclusion: The results indicate a change in higher-order neural function related to the presence of increased noise in the environment.
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