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果蝇嗅觉触角电图的动态特性

Dynamic properties of Drosophila olfactory electroantennograms.

作者信息

Schuckel Julia, Meisner Shannon, Torkkeli Päivi H, French Andrew S

机构信息

Department of Physiology and Biophysics, Dalhousie University, B3H 1X5, Halifax, NS, Canada.

出版信息

J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2008 May;194(5):483-9. doi: 10.1007/s00359-008-0322-6. Epub 2008 Mar 5.

DOI:10.1007/s00359-008-0322-6
PMID:18320197
Abstract

Time-dependent properties of chemical signals are probably crucially important to many animals, but little is known about the dynamics of chemoreceptors. Behavioral evidence of dynamic sensitivity includes the control of moth flight by pheromone plume structure, and the ability of some blood-sucking insects to detect varying concentrations of carbon dioxide, possibly matched to host breathing rates. Measurement of chemoreceptor dynamics has been limited by the technical challenge of producing controlled, accurate modulation of olfactory and gustatory chemical concentrations over suitably wide ranges of amplitude and frequency. We used a new servo-controlled laminar flow system, combined with photoionization detection of surrogate tracer gas, to characterize electroantennograms (EAG) of Drosophila antennae during stimulation with fruit odorants or aggregation pheromone in air. Frequency response functions and coherence functions measured over a bandwidth of 0-100 Hz were well characterized by first-order low-pass linear filter functions. Filter time constant varied over almost a tenfold range, and was characteristic for each odorant, indicating that several dynamically different chemotransduction mechanisms are present. Pheromone response was delayed relative to fruit odors. Amplitude of response, and consequently signal-to-noise ratio, also varied consistently with different compounds. Accurate dynamic characterization promises to provide important new information about chemotransduction and odorant-stimulated behavior.

摘要

化学信号的时间依赖性特性可能对许多动物至关重要,但人们对化学感受器的动力学了解甚少。动态敏感性的行为证据包括性信息素羽流结构对蛾飞行的控制,以及一些吸血昆虫检测不同浓度二氧化碳的能力,这可能与宿主呼吸速率相匹配。化学感受器动力学的测量一直受到技术挑战的限制,即在适当宽的幅度和频率范围内对嗅觉和味觉化学浓度进行受控、精确的调制。我们使用了一种新的伺服控制层流系统,结合对替代示踪气体的光电离检测,来表征果蝇触角在空气中用水果气味剂或聚集性信息素刺激期间的触角电图(EAG)。在0 - 100 Hz带宽上测量的频率响应函数和相干函数通过一阶低通线性滤波器函数得到了很好的表征。滤波器时间常数在近十倍的范围内变化,并且每种气味剂都有其特征,这表明存在几种动态不同的化学转导机制。性信息素反应相对于水果气味有所延迟。反应幅度以及因此的信噪比也因不同化合物而持续变化。准确的动态表征有望提供有关化学转导和气味剂刺激行为的重要新信息。

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