人工耳蜗提供的不对称脉冲可降低豚鼠听皮层的诱发发射率和空间激活率

IF 2.5 2区 医学 Q1 AUDIOLOGY & SPEECH-LANGUAGE PATHOLOGY Hearing Research Pub Date : 2024-05-03 DOI:10.1016/j.heares.2024.109027
V. Adenis , E. Partouche , P. Stahl , D. Gnansia , C. Huetz , J-M Edeline
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引用次数: 0

摘要

尽管人工耳蜗(CI)是最成功的听力恢复神经假体设备之一,但仍有几个方面需要改进。刺激电极之间通过耳蜗内电流扩散产生的相互作用极大地限制了可分辨频率通道的数量,从而最终导致语音感知能力低下。一种潜在的解决方案是使用新的脉冲形状,如非对称脉冲,这有可能减少耳蜗内的电流扩散。本研究通过量化豚鼠初级听觉皮层(A1)的诱发发射率和空间激活,描述了从标准双相对称电脉冲形状到非对称电脉冲形状变化的影响。在电荷固定的情况下,当使用不对称脉冲激活听觉神经纤维时,A1的发射率和空间激活率降低了15%至25%,这表明耳蜗内的兴奋扩散可能会减少。研究还发现了一种强烈的 "极性顺序 "效应,当脉冲的第一阶段为高振幅阴性时,这种效应的减弱更为明显。这些结果表明,在临床环境中使用非对称脉冲形状有可能减少人工耳蜗使用者的通道相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Asymmetric pulses delivered by a cochlear implant allow a reduction in evoked firing rate and in spatial activation in the guinea pig auditory cortex

Despite that fact that the cochlear implant (CI) is one of the most successful neuro-prosthetic devices which allows hearing restoration, several aspects still need to be improved. Interactions between stimulating electrodes through current spread occurring within the cochlea drastically limit the number of discriminable frequency channels and thus can ultimately result in poor speech perception. One potential solution relies on the use of new pulse shapes, such as asymmetric pulses, which can potentially reduce the current spread within the cochlea. The present study characterized the impact of changing electrical pulse shapes from the standard biphasic symmetric to the asymmetrical shape by quantifying the evoked firing rate and the spatial activation in the guinea pig primary auditory cortex (A1). At a fixed charge, the firing rate and the spatial activation in A1 decreased by 15 to 25 % when asymmetric pulses were used to activate the auditory nerve fibers, suggesting a potential reduction of the spread of excitation inside the cochlea. A strong “polarity-order” effect was found as the reduction was more pronounced when the first phase of the pulse was cathodic with high amplitude. These results suggest that the use of asymmetrical pulse shapes in clinical settings can potentially reduce the channel interactions in CI users.

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来源期刊
Hearing Research
Hearing Research 医学-耳鼻喉科学
CiteScore
5.30
自引率
14.30%
发文量
163
审稿时长
75 days
期刊介绍: The aim of the journal is to provide a forum for papers concerned with basic peripheral and central auditory mechanisms. Emphasis is on experimental and clinical studies, but theoretical and methodological papers will also be considered. The journal publishes original research papers, review and mini- review articles, rapid communications, method/protocol and perspective articles. Papers submitted should deal with auditory anatomy, physiology, psychophysics, imaging, modeling and behavioural studies in animals and humans, as well as hearing aids and cochlear implants. Papers dealing with the vestibular system are also considered for publication. Papers on comparative aspects of hearing and on effects of drugs and environmental contaminants on hearing function will also be considered. Clinical papers will be accepted when they contribute to the understanding of normal and pathological hearing functions.
期刊最新文献
Cross-sectional screening for inflammation in tinnitus with near-normal hearing Frequency dependence and harmonic distortion of stapes displacement and intracochlear pressure in response to very high level sounds Auditory changes in awake guinea pigs exposed to overcompressed music Editorial Board Effects of ipsilateral, contralateral, and bilateral noise precursors on psychoacoustical tuning curves in humans
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