首页> 美国卫生研究院文献>JARO: Journal of the Association for Research in Otolaryngology >Auditory-Nerve Responses to Varied Inter-Phase Gap and Phase Duration of the Electric Pulse Stimulus as Predictors for Neuronal Degeneration
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Auditory-Nerve Responses to Varied Inter-Phase Gap and Phase Duration of the Electric Pulse Stimulus as Predictors for Neuronal Degeneration

机译:听觉神经反应对不同的相间间隙和电脉冲刺激的相持续时间作为神经元变性的预测因子。

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摘要

After severe hair cell loss, secondary degeneration of spiral ganglion cells (SGCs) is observed—a gradual process that spans years in humans but only takes weeks in guinea pigs. Being the target for cochlear implants (CIs), the physiological state of the SGCs is important for the effectiveness of a CI. For assessment of the nerve’s state, focus has generally been on its response threshold. Our goal was to add a more detailed characterization of SGC functionality. To this end, the electrically evoked compound action potential (eCAP) was recorded in normal-hearing guinea pigs and guinea pigs that were deafened 2 or 6 weeks prior to the experiments. We evaluated changes in eCAP characteristics when the phase duration (PD) and inter-phase gap (IPG) of a biphasic current pulse were varied. We correlated the magnitude of these changes to quantified histological measures of neurodegeneration (SGC packing density and SGC size). The maximum eCAP amplitude, derived from the input–output function, decreased after deafening, and increased with both PD and IPG. The eCAP threshold did not change after deafening, and decreased with increasing PD and IPG. The dynamic range was wider for the 6-weeks-deaf animals than for the other two groups. Excitability increased with IPG (steeper slope of the input–output function and lower stimulation level at the half-maximum eCAP amplitude), but to a lesser extent for the deafened animals than for normal-hearing controls. The latency was shorter for the 6-weeks-deaf animals than for the other two groups. For several of these eCAP characteristics, the effect size of IPG correlated well with histological measures of degeneration, whereas effect size of PD did not. These correlations depend on the use of high current levels, which could limit clinical application. Nevertheless, their potential of these correlations towards assessment of the condition of the auditory nerve may be of great benefit to clinical diagnostics and prognosis in cochlear implant recipients.
机译:严重的毛细胞丢失后,可以观察到螺旋神经节细胞(SGC)的继发性退化-这种过程在人类中跨越了数年,而在豚鼠中仅需数周。作为人工耳蜗(CI)的目标,SGC的生理状态对于CI的有效性很重要。为了评估神经状态,通常将重点放在其反应阈值上。我们的目标是添加更详细的SGC功能描述。为此,在实验前2周或6周耳聋的正常听觉豚鼠和豚鼠中记录了电诱发的复合动作电位(eCAP)。当双相电流脉冲的相持续时间(PD)和相间间隙(IPG)发生变化时,我们评估了eCAP特性的变化。我们将这些变化的程度与量化的神经变性组织学指标(SGC堆积密度和SGC大小)相关联。从输入输出功能得出的最大eCAP振幅在震耳欲聋后降低,而在PD和IPG时均增加。耳聋后eCAP阈值未改变,但随着PD和IPG的增加而降低。 6周聋的动物的动态范围比其他两组更宽。兴奋性随IPG(输入-输出功能的陡峭斜率和最大eCAP幅度的一半的较低刺激水平)而增加,但对于失聪动物而言,其兴奋程度要低于正常听力对照组。 6周聋的动物的潜伏期短于其他两组。对于这些eCAP特征中的几个特征,IPG的作用大小与变性的组织学测量具有很好的相关性,而PD的作用大小却没有。这些相关性取决于高电流水平的使用,这可能会限制临床应用。然而,这些相关性在评估听神经状况方面的潜力可能对人工耳蜗植入受者的临床诊断和预后非常有益。

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