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昆虫触角叶中气味编码的空间分辨时频分析

Spatially resolved time-frequency analysis of odour coding in the insect antennal lobe.

作者信息

Paoli Marco, Weisz Nathan, Antolini Renzo, Haase Albrecht

机构信息

Center for Mind/Brain Sciences, University of Trento, Piazza Manifattura 1, 38068, Rovereto, Italy.

Division of Physiological Psychology, Centre for Cognitive Neuroscience, University of Salzburg, Salzburg, Austria.

出版信息

Eur J Neurosci. 2016 Sep;44(6):2387-95. doi: 10.1111/ejn.13344. Epub 2016 Aug 18.

DOI:10.1111/ejn.13344
PMID:27452956
Abstract

Antennal lobes constitute the first neurophils in the insect brain involved in coding and processing of olfactory information. With their stereotyped functional and anatomical organization, they provide an accessible model with which to investigate information processing of an external stimulus in a neural network in vivo. Here, by combining functional calcium imaging with time-frequency analysis, we have been able to monitor the oscillatory components of neural activity upon olfactory stimulation. The aim of this study is to investigate the presence of stimulus-induced oscillatory patterns in the honeybee antennal lobe, and to analyse the distribution of those patterns across the antennal lobe glomeruli. Fast two-photon calcium imaging reveals the presence of low-frequency oscillations, the intensity of which is perturbed by an incoming stimulus. Moreover, analysis of the spatial arrangement of this activity indicates that it is not homogeneous throughout the antennal lobe. On the contrary, each glomerulus displays an odorant-specific time-frequency profile, and acts as a functional unit of the oscillatory activity. The presented approach allows simultaneous recording of complex activity patterns across several nodes of the antennal lobe, providing the means to better understand the network dynamics regulating olfactory coding and leading to perception.

摘要

触角叶是昆虫大脑中参与嗅觉信息编码和处理的首个神经球。因其具有刻板的功能和解剖结构,触角叶为在体神经网络中研究外部刺激的信息处理提供了一个易于研究的模型。在此,通过将功能性钙成像与时间频率分析相结合,我们得以监测嗅觉刺激时神经活动的振荡成分。本研究的目的是探究蜜蜂触角叶中刺激诱导振荡模式的存在,并分析这些模式在触角叶小球中的分布情况。快速双光子钙成像揭示了低频振荡的存在,其强度会受到传入刺激的干扰。此外,对这种活动空间排列的分析表明,其在整个触角叶中并非均匀分布。相反,每个小球都显示出一种气味特异性的时频特征,并作为振荡活动的功能单元。所提出的方法能够同时记录触角叶多个节点的复杂活动模式,为更好地理解调节嗅觉编码并导致嗅觉感知的网络动态提供了手段。

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