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烟草天蛾(Manduca sexta)触角感受器约翰斯顿氏器官中机械感觉神经元的编码特性。

Encoding properties of the mechanosensory neurons in the Johnston's organ of the hawk moth, Manduca sexta.

作者信息

Dieudonné Alexandre, Daniel Thomas L, Sane Sanjay P

机构信息

Department of Biology, University of Washington, Seattle, WA 98195, USA

Department of Biology, University of Washington, Seattle, WA 98195, USA.

出版信息

J Exp Biol. 2014 Sep 1;217(Pt 17):3045-56. doi: 10.1242/jeb.101568. Epub 2014 Jun 19.

Abstract

Antennal mechanosensors play a key role in control and stability of insect flight. In addition to the well-established role of antennae as airflow detectors, recent studies have indicated that the sensing of antennal vibrations by Johnston's organs also provides a mechanosensory feedback relevant for flight stabilization. However, few studies have addressed how the individual units, or scolopidia, of the Johnston's organs encode these antennal vibrations and communicate it to the brain. Here, we characterize the encoding properties of individual scolopidia from the Johnston's organs in the hawk moth, Manduca sexta, through intracellular neurophysiological recordings from axons of the scolopidial neurons. We stimulated the flagellum-pedicel joint using a custom setup that delivered mechanical stimuli of various (step, sinusoidal, frequency and amplitude sweeps) waveforms. Single units of the Johnston's organs typically displayed phaso-tonic responses to step stimuli with short (3-5 ms) latencies. Their phase-locked response to sinusoidal stimuli in the 0.1-100 Hz frequency range showed high fidelity (vector strengths>0.9). The neurons were able to encode different phases of the stimulus motion and were also extremely sensitive to small amplitude (<0.05 deg) deflections with some indication of directional tuning. In many cases, the firing frequency of the neurons varied linearly as a function of the stimulus frequency at wingbeat and double wingbeat frequencies, which may be relevant to their role in flight stabilization. Iontophoretic fills of these neurons with fluorescent dyes showed that they all projected in the antennal mechanosensory and motor center (AMMC) area of the brain. Taken together, these results showcase the speed and high sensitivity of scolopidia of the Johnston's organs, and hence their ability to encode fine antennal vibrations.

摘要

触角机械传感器在昆虫飞行的控制和稳定性中起着关键作用。除了触角作为气流探测器这一已被充分证实的作用外,最近的研究表明,约翰斯顿氏器对触角振动的感知也提供了与飞行稳定相关的机械感觉反馈。然而,很少有研究探讨约翰斯顿氏器的单个单元,即 scolopidia,如何编码这些触角振动并将其传递给大脑。在这里,我们通过对 scolopidial 神经元轴突进行细胞内神经生理学记录,来表征烟草天蛾(Manduca sexta)约翰斯顿氏器中单个 scolopidia 的编码特性。我们使用定制装置刺激鞭节 - 梗节关节,该装置能传递各种(阶跃、正弦、频率和幅度扫描)波形的机械刺激。约翰斯顿氏器的单个单元通常对阶跃刺激表现出短潜伏期(3 - 5 毫秒)的相调谐反应。它们在 0.1 - 100 Hz 频率范围内对正弦刺激的锁相反应显示出高保真度(矢量强度>0.9)。这些神经元能够编码刺激运动的不同相位,并且对小幅度(<0.05 度)的偏转也极其敏感,有一些方向调谐的迹象。在许多情况下,神经元的放电频率随翅膀拍击和双翅拍击频率下的刺激频率呈线性变化,这可能与其在飞行稳定中的作用有关。用荧光染料对这些神经元进行离子电渗填充显示,它们都投射到大脑的触角机械感觉和运动中心(AMMC)区域。综上所述,这些结果展示了约翰斯顿氏器中 scolopidia 的速度和高灵敏度,以及它们编码精细触角振动的能力。

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