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Cochlear Implant Stimulation of a Hearing Ear Generates Separate Electrophonic and Electroneural Responses

机译:助听器的耳蜗植入刺激产生单独的电声和电神经反应

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摘要

Electroacoustic stimulation in subjects with residual hearing is becoming more widely used in clinical practice. However, little is known about the properties of electrically induced responses in the hearing cochlea. In the present study, normal-hearing guinea pig cochleae underwent cochlear implantation through a cochleostomy without significant loss of hearing. Using recordings of unit activity in the midbrain, we were able to investigate the excitation patterns throughout the tonotopic field determined by acoustic stimulation. With the cochlear implant and the midbrain multielectrode arrays left in place, the ears were pharmacologically deafened and electrical stimulation was repeated in the deafened condition. The results demonstrate that, in addition to direct neuronal (electroneuronal) stimulation, in the hearing cochlea excitation of the hair cells occurs (“electrophonic responses”) at the cochlear site corresponding to the dominant temporal frequency components of the electrical stimulus, provided these are < 12 kHz. The slope of the rate–level functions of the neurons in the deafened condition was steeper and the firing rate was higher than in the hearing condition at those sites that were activated in the two conditions. Finally, in a monopolar stimulation configuration, the differences between hearing status conditions were smaller than in the narrower (bipolar) configurations.>SIGNIFICANCE STATEMENT Stimulation with cochlear implants and hearing aids is becoming more widely clinically used in subjects with residual hearing. The neurophysiological characteristics underlying electroacoustic stimulation and the mechanism of its benefit remain unclear. The present study directly demonstrates that cochlear implantation does not interfere with the normal mechanical and physiological function of the cochlea. For the first time, it double-dissociates the electrical responses of hair cells (electrophonic responses) from responses of the auditory nerve fibers (electroneural responses), with separate excited cochlear locations in the same animals. We describe the condition in which these two responses spatially overlap. Finally, the study implicates that using the clinical characteristics of stimulation makes electrophonic responses unlikely in implanted subjects.
机译:具有残余听力的受试者中的电声刺激在临床实践中变得越来越广泛。然而,关于耳蜗中电感应响应的性质知之甚少。在本研究中,正常听力的豚鼠耳蜗通过耳蜗切开术进行了耳蜗植入,而没有明显的听力损失。使用中脑中单位活动的记录,我们能够研究由声刺激确定的整个tonotopic场的激发模式。保留耳蜗植入物和中脑多电极阵列后,药理学上耳聋,在耳聋的情况下重复电刺激。结果表明,除了直接的神经元(电神经元)刺激外,在耳蜗部位,与电刺激的主要时间频率成分相对应的耳蜗部位还发生了毛细胞的耳蜗激发(“电声响应”)。 <12 kHz。在这两种情况下被激活的位置,在失聪状态下神经元的速率水平功能的斜率更陡,发声速率高于听力条件。最后,在单极刺激配置中,听力状态条件之间的差异小于在较窄(双极)配置中的差异。>意义声明耳蜗植入物和助听器的刺激在临床上已越来越广泛地应用于患有眼疾的受试者。残余听力。尚不清楚电声刺激的神经生理学特征及其作用机理。本研究直接证明,人工耳蜗植入不会干扰正常的耳蜗机械和生理功能。第一次,它使毛细胞的电响应(电声响应)与听神经纤维的响应(电神经响应)发生双重分离,在同一只动物的耳蜗中具有独立的兴奋性耳蜗位置。我们描述了这两个响应在空间上重叠的情况。最后,该研究暗示使用刺激的临床特征使植入对象不可能发生电声反应。

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