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螽斯(直翅目;螽斯科)的超声波惊吓行为。

Ultrasonic startle behavior in bushcrickets (Orthoptera; Tettigoniidae).

作者信息

Libersat F, Hoy R R

机构信息

Section of Neurobiology and Behavior, Cornell University, Ithaca, NY 14853.

出版信息

J Comp Physiol A. 1991 Oct;169(4):507-14. doi: 10.1007/BF00197663.

Abstract
  1. In the present work, we show that in flight, bushcrickets not previously known to respond to ultrasound alter their flight course in response to ultrasonic stimuli. Such stimuli elicit in flying Neoconocephalus ensiger an extension of the front and middle legs along the body and a rapid closure of all 4 wings (Fig. 1). This is a short latency acoustic startle response to ultrasound, consistent with acoustic startle responses of other insects. 2. The percentage of trials on which acoustic startle responses were elicited was maximum (90%) for sound frequencies ranging from 25 to at least 60 kHz. No acoustic startle response was observed at frequencies of 5 or 10 kHz (Fig. 2). The threshold for the response was roughly 76 dB between 25 to 60 kHz (Fig. 2) and the behavioral latency was 45 ms (Fig. 3). Recordings from flight muscles show that they cease discharging during the acoustic startle response (Fig. 4). 3. The characteristics of the acoustic startle response match those of an auditory interneuron called the T-neuron. The frequency sensitivity of this neuron is greatest for sound frequencies ranging from 13 to 60 kHz (Fig. 6). Moreover, we found that the neuron produces many more spikes to ultrasound (30 kHz) of increasing intensities than to a conspecific communication sound, whose dominant frequency is 14 kHz (Fig. 7).
摘要
  1. 在本研究中,我们发现,在飞行过程中,此前未知对超声波有反应的螽斯会因超声刺激而改变飞行路线。这种刺激会使正在飞行的剑角蝗科螽斯的前腿和中腿沿身体伸展,并使4只翅膀迅速闭合(图1)。这是对超声波的一种短潜伏期听觉惊吓反应,与其他昆虫的听觉惊吓反应一致。2. 对于频率范围从25 kHz到至少60 kHz的声音,引发听觉惊吓反应的试验百分比最高(90%)。在5 kHz或10 kHz的频率下未观察到听觉惊吓反应(图2)。在25 kHz至60 kHz之间,反应阈值约为76 dB(图2),行为潜伏期为45毫秒(图3)。飞行肌肉的记录显示,在听觉惊吓反应期间它们停止放电(图4)。3. 听觉惊吓反应的特征与一种名为T神经元的听觉中间神经元的特征相匹配。该神经元对频率范围从13 kHz到60 kHz的声音频率敏感性最高(图6)。此外,我们发现,与占主导频率为14 kHz的同种通讯声音相比,该神经元对强度不断增加的超声波(30 kHz)产生的尖峰要多得多(图7)。

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