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A boost for hearing in mosquitoes

机译:增强蚊子的听力

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It is hard to imagine ears more different from a human's than a mosquito's. Look at a mosquito head-on, and you'll see a pair of large, wraparound eyes, and projecting from the front of its face is a pair of long, hairy antennae—its ears. Each antenna arises from a large, spheroidal base, the Johnston's organ (JO). Function follows form. Whereas human ears are pressure detectors, a mosquito's detects the particle velocity component of a sound field, which is restricted to the immediate vicinity of the sound source in acoustic near field. The mosquito's ears are insensitive to pressure fluctuations in the acoustic far field. The antenna, with its fine, interlacing network of f lagellar hairs, senses movements of air particles as they are swept to and fro by impinging acoustic waves. The antennal movements excite the sensory receptors contained within the JOs to generate action potentials that flood into the insect's brain. The bottom line of functional hearing is acuity—maximize sensitivity and sharpen the tuning of each receptor cell. This tuning goes on at the level of cell and molecular biophysics— and when it comes down to fundamentals, functional similarities are often more apparent than differences, even in animals as diverse as humans and mosquitoes. As Jackson and Robert cleverly demonstrate in this issue of PNAS, nonlinearities dominate the biomechanics of hearing that enhance acuity. Similar nonlinearities have been known in mammalian ears for several decades, where they also enhance acuity.
机译:很难想象耳朵比蚊子更不同于人类。正面朝上看蚊子,您会看到一对大而环绕的眼睛,从它的脸部前端伸出的是一对长而有毛的触角-耳朵。每个天线都来自一个巨大的球形基座,即约翰斯顿氏器官(JO)。功能遵循形式。人耳是压力检测器,而蚊子则检测声场的质点速度分量,该声速分量仅限于声近场中声源的紧邻范围。蚊子的耳朵对远场声波的压力波动不敏感。天线具有交错的细丝状交错网络,可通过撞击声波来感测空气粒子在空气中来回运动时的运动。触角运动激发了JOs中包含的感觉感受器,从而产生了潜入昆虫大脑的动作电位。功能性听力的底线是敏锐度-最大化灵敏度并锐化每个受体细胞的调音。这种调整是在细胞和分子生物物理学的层面上进行的-当涉及到基本原理时,功能相似性通常比差异更明显,即使在人类和蚊子等多种动物中也是如此。正如杰克逊(Jackson)和罗伯特(Robert)在本期PNAS中巧妙地证明的那样,非线性主导着提高敏锐度的听力生物力学。在哺乳动物的耳朵中已知类似的非线性已有几十年了,它们还可以提高敏锐度。

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