Directionality in the mechanical response to substrate vibration in a treehopper (Hemiptera: Membracidae: Umbonia crassicornis).

R B Cocroft, T D Tieu, R R Hoy, R N Miles
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引用次数: 80

Abstract

The use of substrate vibrations in communication and predator-prey interactions is widespread in arthropods. In many contexts, localization of the vibration source plays an important role. For small species on solid substrates, time and amplitude differences between receptors in different legs may be extremely small, and the mechanisms of vibration localization are unclear. Here we ask whether directional information is contained in the mechanical response of an insect's body to substrate vibration. Our study species was a membracid treehopper (Umbonia crassicornis) that communicates using bending waves in plant stems. We used a bending-wave simulator that allows precise control of the frequency, intensity and direction of the vibrational stimulus. With laser-Doppler vibrometry, we measured points on the substrate and on the insect's thorax and middle leg. Transfer functions showing the response of the body relative to the substrate revealed resonance at lower frequencies and attenuation at higher frequencies. There were two modes of vibration along the body's long axis, a translational and a rotational mode. Furthermore, the transfer functions measured on the body differed substantially depending on whether the stimulus originated in front of or behind the insect. Directional information is thus available in the mechanical response of the body of these insects to substrate vibration. These results suggest a vibration localization mechanism that could function at very small spatial scales.

树跳对基底振动的机械响应的方向性(半翅目:膜科:长角蝶)。
在节肢动物中,基底振动在交流和捕食者-猎物相互作用中的使用是广泛的。在许多情况下,振动源的局部化起着重要的作用。对于固体基质上的小型物种,不同腿上的受体之间的时间和振幅差异可能非常小,并且振动定位的机制尚不清楚。在这里,我们要问的是方向信息是否包含在昆虫身体对基底振动的机械响应中。我们的研究物种是一种利用植物茎部弯曲波进行交流的膜栖树跳虫(Umbonia crassicornis)。我们使用了一个弯曲波模拟器,可以精确控制振动刺激的频率、强度和方向。用激光多普勒振动仪,我们测量了基板上、昆虫胸部和中腿上的点。传递函数显示体相对于衬底的响应,显示低频共振和高频衰减。沿着身体的长轴有两种振动模式,一种是平移模式,一种是旋转模式。此外,根据刺激是来自昆虫的前部还是后部,在身体上测量到的传递函数有很大的不同。因此,在这些昆虫的身体对基底振动的机械反应中,可以获得方向性信息。这些结果表明,振动局部化机制可以在非常小的空间尺度上发挥作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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