Zheng X Y, Wang J, Salvi R J, Henderson D
Hearing Research Laboratory, State University of New York at Buffalo 14214, USA.
Hear Res. 1996 May;95(1-2):161-7. doi: 10.1016/0378-5955(96)00047-0.
In absence of acoustic stimulation, the auditory nerve generates electrical noise with a spectral peak between 300 and 3000 Hz (Dolan et al., 1990). This electrical noise is eliminated when the dendrites of auditory nerve fibers are damaged by kainic acid (KA). We hypothesized that the KA-induced damage to the afferent dendrites might alter cochlear micromechanics or modify outer hair cell (OHC) electromotility. The KA-induced decrease in spontaneous electrical noise from the auditory nerve could conceivably reduce the spontaneous sounds recorded in the ear canal and the postulated change in cochlear micromechanics might alter distortion product otoacoustic emissions (DPOAE). To evaluate these hypotheses, we applied KA to the round window of the cochlea. KA reduced the spontaneous electrical noise recorded from the round window and significantly reduced the amplitude of the compound action potential (CAP) to tone bursts at 2, 4 and 8 kHz. KA caused only a slight reduction in the amplitude of the cochlear microphonic (CM) recorded from the round window: however, it had no effect on the spontaneous acoustic noise in the car canal or on 2 f1-f2 DPOAEs. These results suggest that the KA-induced reduction of electrical noise from the auditory nerve has no measurable effect on OHC electromotility as reflected in spontaneous otoacoustic emissions and that damage to the afferent dendrites has no effect on cochlear micromechanics as reflected in DPOAEs.
在没有声刺激的情况下,听神经会产生频谱峰值在300至3000赫兹之间的电噪声(多兰等人,1990年)。当听神经纤维的树突被 kainic 酸(KA)损伤时,这种电噪声就会消除。我们推测,KA 对传入树突的损伤可能会改变耳蜗微力学或改变外毛细胞(OHC)的电运动。可以想象,KA 引起的听神经自发电噪声降低可能会减少耳道中记录到的自发声音,而耳蜗微力学的假定变化可能会改变畸变产物耳声发射(DPOAE)。为了评估这些假设,我们将 KA 应用于耳蜗的圆窗。KA 降低了从圆窗记录到的自发电噪声,并显著降低了对2、4和8千赫兹纯音猝发的复合动作电位(CAP)的幅度。KA 仅使从圆窗记录到的耳蜗微音电位(CM)的幅度略有降低:然而,它对耳道中的自发声噪声或2f1 - f2 DPOAE 没有影响。这些结果表明,KA 引起的听神经电噪声降低对自发耳声发射所反映的外毛细胞电运动没有可测量的影响,并且传入树突的损伤对 DPOAE 所反映的耳蜗微力学没有影响。