首页> 美国卫生研究院文献>Frontiers in Cellular Neuroscience >Antennal lobe representations are optimized when olfactory stimuli are periodically structured to simulate natural wing beat effects
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Antennal lobe representations are optimized when olfactory stimuli are periodically structured to simulate natural wing beat effects

机译:当嗅觉刺激被周期性地构造以模拟自然的机翼拍打效果时对耳垂的表达进行了优化。

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摘要

Animals use behaviors to actively sample the environment across a broad spectrum of sensory domains. These behaviors discretize the sensory experience into unique spatiotemporal moments, minimize sensory adaptation, and enhance perception. In olfaction, behaviors such as sniffing, antennal flicking, and wing beating all act to periodically expose olfactory epithelium. In mammals, it is thought that sniffing enhances neural representations; however, the effects of insect wing beating on representations remain unknown. To determine how well the antennal lobe (AL) produces odor dependent representations when wing beating effects are simulated, we used extracellular methods to record neural units and local field potentials (LFPs) from moth AL. We recorded responses to odors presented as prolonged continuous stimuli or periodically as 20 and 25 Hz pulse trains designed to simulate the oscillating effects of wing beating around the antennae during odor guided flight. Using spectral analyses, we show that ~25% of all recorded units were able to entrain to “pulsed stimuli”; this includes pulsed blanks, which elicited the strongest overall entrainment. The strength of entrainment to pulse train stimuli was dependent on molecular features of the odorants, odor concentration, and pulse train duration. Moreover, units showing pulse tracking responses were highly phase locked to LFPs during odor stimulation, indicating that unit-LFP phase relationships are stimulus-driven. Finally, a Euclidean distance-based population vector analysis established that AL odor representations are more robust, peak more quickly, and do not show adaptation when odors were presented at the natural wing beat frequency as opposed to prolonged continuous stimulation. These results suggest a general strategy for optimizing olfactory representations, which exploits the natural rhythmicity of wing beating by integrating mechanosensory and olfactory cues at the level of the AL.
机译:动物使用行为在广泛的感觉域中主动采样环境。这些行为将感官体验离散化为独特的时空时刻,最大程度地减少了感官适应性并增强了知觉。在嗅觉中,嗅探,触角甩动和翅膀跳动等行为都会周期性地暴露嗅觉上皮。在哺乳动物中,嗅探被认为可以增强神经的表现。然而,昆虫的翅膀跳动对表征的影响仍然未知。为了确定模拟机翼跳动效果时触角叶(AL)产生与气味有关的表现的良好程度,我们使用了细胞外方法来记录来自飞蛾AL的神经单位和局部场电位(LFP)。我们记录了对气味的响应,这些气味以长时间连续刺激或周期性地以20和25 Hz脉冲序列出现,旨在模拟气味引导飞行过程中机翼在天线周围跳动的振荡效应。使用频谱分析,我们发现所有记录的单位中约有25%能够夹带“脉冲刺激”。这包括脉冲坯料,它引起了最强的整体夹带。脉冲刺激的夹带强度取决于增味剂的分子特征,气味浓度和脉冲持续时间。此外,在气味刺激过程中,显示​​脉冲跟踪响应的单元与LFP高度锁相,表明单元LFP的相位关系受刺激驱动。最后,基于欧氏距离的种群矢量分析确定,当气味以自然翼拍频率出现时,AL气味表示更健壮,峰值更快,并且不显示适应性,这与长时间连续刺激相反。这些结果提出了优化嗅觉表示的通用策略,该策略通过在AL水平上整合机械感官和嗅觉线索来利用机翼跳动的自然节奏。

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