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“CF-FM”蝙蝠帕氏叶鼻蝠听觉系统中用于精细分析多普勒频移回声的外周特化。

Peripheral specialization for fine analysis of doppler-shifted echoes in the auditory system of the "CF-FM" bat Pteronotus parnellii.

作者信息

Suga N, Simmons J A, Jen P H

出版信息

J Exp Biol. 1975 Aug;63(1):161-92. doi: 10.1242/jeb.63.1.161.

DOI:10.1242/jeb.63.1.161
PMID:1159359
Abstract

Pteronotus parnellii uses the second harmonic (61-62 kHz) of the CF component in its orientation sounds for Doppler-shift compensation. The bat's inner ear is mechanically specialized for fine analysis of sounds at about 61-62 kHz. Because of this specialization, cochlear microphonics (CM) evoked by 61-62 kHz tone bursts exhibit prominent transients, slow increase and decrease in amplitude at the onset and cessation of these stimuli. CM-responses to 60-61 kHz tone bursts show a prominent input-output non-linearity and transients. Accordingly, a summated response of primary auditory neurones (N1) appears not only at the onset of the stimuli, but also at the cessation. N1-off is sharply tuned at 60-61 kHz, while N1-on is tuned at 63-64 kHz, which is 2 kHz higher than the best frequency of the auditory system because of the envelope-distortion originating from sharp mechanical tuning. Single peripheral neurones sensitive to 61-62 kHz sounds have an unusually sharp tuning curve and show phase-locked responses to beats of up to 3 kHz. Information about the frequencies of Doppler-shifted echoes is thus coded by a set of sharply tuned neurones and also discharges phase-locked to beats. Neurones with a best frequency between 55 and 64 kHz show not only tonic on-responses but also off-responses which are apparently related to the mechanical off-transient occuring in the inner ear and not to a rebound from neural inhibition.

摘要

帕氏叶鼻蝠在其定向声音中利用CF成分的二次谐波(61 - 62千赫)进行多普勒频移补偿。蝙蝠的内耳在机械结构上专门用于对约61 - 62千赫的声音进行精细分析。由于这种专门化,由61 - 62千赫的短纯音诱发的耳蜗微音器电位(CM)呈现出明显的瞬态,在这些刺激的开始和结束时振幅缓慢增加和减小。对60 - 61千赫短纯音的CM反应显示出明显的输入 - 输出非线性和瞬态。因此,初级听神经元(N1)的总和反应不仅出现在刺激开始时,也出现在刺激结束时。N1 - off在60 - 61千赫处有尖锐的调谐,而N1 - on在63 - 64千赫处调谐,由于尖锐机械调谐引起的包络失真,该频率比听觉系统的最佳频率高2千赫。对61 - 62千赫声音敏感的单个外周神经元具有异常尖锐的调谐曲线,并对高达3千赫的拍频表现出锁相反应。因此,关于多普勒频移回声频率的信息由一组尖锐调谐的神经元编码,并且放电与拍频锁相。最佳频率在55至64千赫之间的神经元不仅表现出持续的on反应,还表现出off反应,这些反应显然与内耳中发生的机械off瞬态有关,而不是与神经抑制的反弹有关。

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