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随正弦幅度调制电脉冲串刺激时长变化的听神经反应。

Changes in auditory nerve responses across the duration of sinusoidally amplitude-modulated electric pulse-train stimuli.

机构信息

Department of Otolaryngology, University of Iowa Hospitals and Clinics, Iowa City, IA 52242, USA.

出版信息

J Assoc Res Otolaryngol. 2010 Dec;11(4):641-56. doi: 10.1007/s10162-010-0225-4. Epub 2010 Jul 15.

Abstract

Response rates of auditory nerve fibers (ANFs) to electric pulse trains change over time, reflecting substantial spike-rate adaptation that depends on stimulus parameters. We hypothesize that adaptation affects the representation of amplitude-modulated pulse trains used by cochlear prostheses to transmit speech information to the auditory system. We recorded cat ANF responses to sinusoidally amplitude-modulated (SAM) trains with 5,000 pulse/s carriers. Stimuli delivered by a monopolar intracochlear electrode had fixed modulation frequency (100 Hz) and depth (10%). ANF responses were assessed by spike-rate measures, while representation of modulation was evaluated by vector strength (VS) and the fundamental component of the fast Fourier transform (F(0) amplitude). These measures were assessed across the 400 ms duration of pulse-train stimuli, a duration relevant to speech stimuli. Different stimulus levels were explored and responses were categorized into four spike-rate groups to assess level effects across ANFs. The temporal pattern of rate adaptation to modulated trains was similar to that of unmodulated trains, but with less rate adaptation. VS to the modulator increased over time and tended to saturate at lower spike rates, while F(0) amplitude typically decreased over time for low driven rates and increased for higher driven rates. VS at moderate and high spike rates and degree of F(0) amplitude temporal changes at low and moderate spike rates were positively correlated with the degree of rate adaptation. Thus, high-rate carriers will modify the ANF representation of the modulator over time. As the VS and F(0) measures were sensitive to adaptation-related changes over different spike-rate ranges, there is value in assessing both measures.

摘要

听觉神经纤维(ANF)对电脉冲序列的反应随时间而变化,反映出强烈的尖峰率适应,这种适应取决于刺激参数。我们假设适应会影响耳蜗假体用来向听觉系统传输语音信息的调幅脉冲序列的表示。我们记录了猫的 ANF 对具有 5000 个脉冲/秒载波的正弦调幅(SAM)脉冲序列的反应。由单极耳蜗内电极传递的刺激具有固定的调制频率(100 Hz)和深度(10%)。通过尖峰率测量评估 ANF 反应,而调制的表示则通过向量强度(VS)和快速傅里叶变换的基频分量(F(0)幅度)来评估。这些措施在脉冲序列刺激的 400 毫秒持续时间内进行评估,这一时间与语音刺激相关。我们探索了不同的刺激水平,并将反应分类为四个尖峰率组,以评估整个 ANF 中的水平效应。调制列车的适应率的时间模式与未调制列车相似,但适应率较低。随着时间的推移,VS 调制器增加,并趋于在较低的尖峰率下饱和,而 F(0)幅度通常随着低驱动率的时间的推移而减小,随着较高驱动率的时间的推移而增加。在中等和高尖峰率下的 VS 以及在低和中尖峰率下的 F(0)幅度时间变化的程度与适应率的程度呈正相关。因此,高尖峰率的载波会随时间改变 ANF 对调制器的表示。由于 VS 和 F(0)测量对不同尖峰率范围内的适应相关变化敏感,因此评估这两种测量方法都具有价值。

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