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Neurophysiology of Cochlear Implant Users I: Effects of Stimulus Current Level and Electrode Site on the Electrical ABR, MLR, and N1-P2 Response.

机译:人工耳蜗用户的神经生理学I:刺激电流水平和电极部位对电ABR,MLR和N1-P2反应的影响。

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OBJECTIVE As the need for objective measures with cochlear implant users increases, it is critical to understand how electrical potentials behave when stimulus parameters are systematically varied. The purpose of this study was to record and evaluate the effects of implanted electrode site and stimulus current level on latency, amplitude, and threshold measures of electrically evoked auditory potentials, representing brainstem and cortical levels of the auditory system.DESIGN The electrical auditory brainstem response (EABR), electrical auditory middle latency response (EAMLR), and the electrical late auditory response (ELAR) were recorded from the same experimental subjects, 11 adult Clarion cochlear implant users. The Waves II, III, and V of the EABR, the Na-Pa complex of the EAMLR and the N1-P2 complex of the ELAR were investigated relative to electrode site (along the intra-cochlear electrode array) and stimulus current level. Evoked potential measures were examined for statistical significance using analysis of variance (ANOVA) for repeated measures.RESULTS For the EABR, Wave V latency was significantly longer for the basal electrode (7) compared with the mid (4) and apical (1) electrodes. For the EAMLR and ELAR, there were no significant differences in latency by electrode site. For all subjects and each of the evoked potentials, the apical electrodes tended to have the largest amplitude and the basal electrodes the smallest amplitude, although amplitude differences did not reach statistical significance. In general, decreases in stimulus current level resulted in statistically significant decreases in the amplitude of Wave V, Na-Pa and N1-P2. The evoked potential thresholds for Wave V, Na-Pa, and N1-P2 were significantly higher for the basal Electrode 7 than for Electrodes 4 and 1.CONCLUSIONS Electrophysiologic responses of Waves II, III, and V of the EABR, Na-Pa of the EAMLR, and N1-P2 of the ELAR were characterized as functions of current level and electrode site. Data from this study may serveas a normative reference for expected latency, amplitude and threshold values for the recording of electrically evoked auditory brainstem and cortical potentials. Responses recorded from cochlear implant users show many similar patterns, yet important distinctions, compared with auditory potentials elicited with acoustic signals.
机译:目的随着人工耳蜗使用者对客观测量的需求增加,了解当刺激参数系统变化时电势的行为至关重要。这项研究的目的是记录和评估植入的电极部位和刺激电流水平对电诱发听觉电位的潜伏期,振幅和阈值测量的影响,代表听觉系统的脑干和皮质水平。设计电听觉脑干反应(EABR),电听觉中潜伏期反应(EAMLR)和电听觉迟发反应(ELAR)来自同一实验对象,11位成人Clarion人工耳蜗使用者。相对于电极部位(沿着耳蜗内电极阵列)和刺激电流水平,研究了EABR的第II,III和V波,EAMLR的Na-Pa络合物和ELAR的N1-P2络合物。结果通过使用方差分析(ANOVA)进行重复测量,检查了诱发电位测量的统计显着性。结果对于EABR,基电极(7)的Wave V潜伏期明显长于中电极(4)和根电极(1) 。对于EAMLR和ELAR,按电极部位的潜伏期没有显着差异。对于所有受试者和每个诱发电位,尽管振幅差异未达到统计学显着性,但顶端电极倾向于具有最大振幅,而基底电极倾向于具有最小振幅。通常,刺激电流水平的降低导致波V,Na-Pa和N1-P2的振幅在统计上显着降低。基本电极7的波V,Na-Pa和N1-P2的诱发电位阈值显着高于电极4和1。结论EABR的II,III和V波的电生理反应,Na-Pa EAMLR和ELAR的N1-P2被表征为电流水平和电极位置的函数。这项研究的数据可以作为记录电诱发听觉脑干和皮质电位的预期潜伏期,幅度和阈值的标准参考。与声学信号引起的听觉电位相比,人工耳蜗使用者记录的反应显示出许多相似的模式,但有重要的区别。

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