The Brain and Mind Research Institute, Sydney Medical School, The University of Sydney, 100 Mallett Street, Camperdown 2050, Australia.
Hear Res. 2010 Aug;267(1-2):12-26. doi: 10.1016/j.heares.2010.03.091. Epub 2010 Apr 27.
We have investigated the generation of the compound action potential (CAP) from the auditory nerve of guinea pigs. Responses to acoustic tone-bursts were recorded from the round window (RW), throughout the cochlear fluids, from the surface of the cochlear nucleus, from the central end of the auditory nerve after removal of the cochlear nucleus, from the scalp vertex, and from the contralateral ear. Responses were compared before, during and after experimental manipulations including pharmacological blockade of the auditory nerve, section of the auditory nerve, section of the efferent nerves, removal of the cochlear nucleus, and focal cooling of the cochlear nerve and/or cochlear nucleus. Regardless of the waveform changes occurring with these manipulations, the responses were similar in waveform but inverted polarity across the internal auditory meatus. The CAP waveforms were very similar before and after removal of the cochlear nucleus, apart from transient changes that could last many minutes. This suggests that the main CAP components are generated entirely by the eighth nerve. Based on previous studies and a clear understanding of the generation of extracellular potentials, we suggest that the early components in the responses recorded from the round window, from the cochlear fluids, from the surface of the cochlear nucleus, or from the scalp are a far-field or stationary potential, generated when the circulating action currents associated with each auditory neurone encounters a high extracellular resistance as it passes through the dura mater.
我们研究了豚鼠听神经复合动作电位(CAP)的产生。从圆窗(RW)、整个耳蜗液、耳蜗核表面、去除耳蜗核后的听神经中枢端、头皮顶点和对侧耳记录到对声脉冲的反应。在包括听神经药理学阻断、听神经切断、传出神经切断、耳蜗核去除以及耳蜗神经和/或耳蜗核焦点冷却等实验操作前后,对反应进行了比较。无论这些操作引起的波形变化如何,反应在形态上相似,但在内部听觉道上极性相反。除了可能持续数分钟的瞬态变化外,去除耳蜗核前后 CAP 波形非常相似。这表明主要的 CAP 成分完全由第八神经产生。基于先前的研究和对细胞外电位产生的清晰理解,我们提出,从圆窗、耳蜗液、耳蜗核表面或头皮记录的反应中的早期成分是远场或静止电位,当与每个听神经元相关的循环动作电流在通过硬脑膜时遇到高细胞外电阻时产生。