Hugh Knowles Center, Department of Communication Sciences and Disorders, Northwestern University, Evanston, Illinois 60208-3550, USA.
J Neurosci. 2012 Aug 1;32(31):10522-9. doi: 10.1523/JNEUROSCI.1138-12.2012.
Spatial magnitude and phase profiles for inner hair cell (IHC) depolarization throughout the chinchilla cochlea were inferred from responses of auditory-nerve fibers (ANFs) to threshold- and moderate-level tones and tone complexes. Firing-rate profiles for frequencies ≤2 kHz are bimodal, with the major peak at the characteristic place and a secondary peak at 3-5 mm from the extreme base. Response-phase trajectories are synchronous with peak outward stapes displacement at the extreme cochlear base and accumulate 1.5 period lags at the characteristic places. High-frequency phase trajectories are very similar to the trajectories of basilar-membrane peak velocity toward scala tympani. Low-frequency phase trajectories undergo a polarity flip in a region, 6.5-9 mm from the cochlear base, where traveling-wave phase velocity attains a local minimum and a local maximum and where the onset latencies of near-threshold impulse responses computed from responses to near-threshold white noise exhibit a local minimum. That region is the same where frequency-threshold tuning curves of ANFs undergo a shape transition. Since depolarization of IHCs presumably indicates the mechanical stimulus to their stereocilia, the present results suggest that distinct low-frequency forward waves of organ of Corti vibration are launched simultaneously at the extreme base of the cochlea and at the 6.5-9 mm transition region, from where antiphasic reflections arise.
从听觉神经纤维(ANF)对阈上和中等强度音调及音调复合物的反应推断,在内耳毛细胞(IHC)去极化过程中,整个南美栗鼠耳蜗的空间幅度和相位分布。对于频率≤2 kHz 的频率,放电率分布呈双峰模式,主要峰值位于特征位置,次要峰值位于距极端基底 3-5 mm 处。响应相位轨迹与极顶镫骨位移的外向峰值同步,并在特征位置积累 1.5 个周期的滞后。高频相位轨迹与朝向鼓阶的基底膜峰值速度的轨迹非常相似。低频相位轨迹在一个区域发生极性翻转,该区域距耳蜗基底 6.5-9 mm,在此处行波相位速度达到局部最小值和最大值,并且从响应近阈白噪声计算得出的近阈脉冲响应的起始潜伏期在该区域表现出局部最小值。该区域与 ANF 的频率阈值调谐曲线发生形状转变的区域相同。由于 IHC 的去极化可能表明它们的静纤毛受到机械刺激,因此目前的结果表明,耳蜗基底的极顶和 6.5-9mm 的过渡区域同时发射出独特的低频正向耳蜗振动波,从而产生相反的反射。