CIRAD, UMR PVBMT, F-97410 St Pierre, La Réunion, France; UMR PVBMT, Université de la Réunion, St Pierre, La Réunion, France.
CIRAD, UMR PVBMT, F-97410 St Pierre, La Réunion, France.
J Neurosci Methods. 2023 Apr 15;390:109842. doi: 10.1016/j.jneumeth.2023.109842. Epub 2023 Mar 24.
Electroantennography (EAG) is a basic neuroscientific tool that is widely used to measure olfactory responses in insects. It is particularly adapted to probing the olfactory systems of non-model insect species in chemical ecology and evolutionary biology. As currently practiced, EAG measures have varying degrees of correlation with olfactory responses, especially for insects whose olfactory sensory neurons (OSNs) are arranged in zones on the antennae. This limitation was shown to be partly due to the fact that only a single antennal position was recorded.
We describe a setup using triple electroantennography (EAG), whereby three antennal positions are recorded simultaneously. The spatial arrangement of the electrodes ensures the mechanical stability of the assembly. The EAG detector was coupled to a gas chromatograph (GC-EAD), customized using a Dean's switch to improve the EAG signals by chopper modulation. EAG signals were analysed through a current point model to estimate olfactory responses across the antenna.
Recordings were performed on Tephritidae and Drosophila species, which have antennae of different shapes and sizes. We confirmed that the spatio-temporal pattern of antennal activation was stimulus dependent and allowed us to quantify the antennal olfactory response.
Compared to typical single-probe EAG, we show that EAG improves response quantification and increases the range of compounds for which a sensory response is detected.
Our EAG setup is an original low-cost and easy-to-use method. It offers a useful bridge between comprehensive neurophysiological investigations and the broader themes explored in chemical ecology.
电触角电位(EAG)是一种基础神经科学工具,广泛用于测量昆虫的嗅觉反应。它特别适用于在化学生态学和进化生物学中探测非模式昆虫物种的嗅觉系统。目前,EAG 测量与嗅觉反应的相关性程度不同,特别是对于那些嗅觉感觉神经元(OSN)在触角上呈区域排列的昆虫。这种局限性部分归因于仅记录单个触角位置的事实。
我们描述了一种使用三电极电触角电位(EAG)的设置,其中同时记录三个触角位置。电极的空间布置确保了组件的机械稳定性。EAG 探测器与气相色谱仪(GC-EAD)耦合,使用 Dean 开关进行定制,通过斩波调制改善 EAG 信号。通过电流点模型分析 EAG 信号,以估计整个触角的嗅觉反应。
在桃小食心虫和果蝇物种上进行了记录,它们的触角形状和大小不同。我们证实,触角激活的时空模式是刺激依赖性的,并且允许我们量化触角嗅觉反应。
与典型的单探针 EAG 相比,我们表明 EAG 提高了响应量化,并增加了可检测到感觉响应的化合物范围。
我们的 EAG 设置是一种原始的低成本且易于使用的方法。它在综合神经生理学研究和化学生态学中探索的更广泛主题之间提供了有用的桥梁。