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Directional Coupling From the Olfactory Bulb to the Hippocampus During a Go/No-Go Odor Discrimination Task

机译:在进行/不进行气味区分任务中从嗅球到海马的定向偶联

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摘要

The hippocampus and olfactory regions are anatomically close, and both play a major role in memory formation. However, the way they interact during odor processing is still unclear. In both areas, strong oscillations of the local field potential (LFP) can be recorded, and are modulated by behavior. In particular, in the olfactory system, the beta rhythm (15–35 Hz) is associated with cognitive processing of an olfactory stimulus. Using LFP recordings in the olfactory bulb and dorsal and ventral hippocampus during performance of an olfactory goo-go task in rats, we previously showed that beta oscillations are also present in the hippocampus, coherent with those in the olfactory bulb, during odor sampling. In this study, we provide further insight into information transfer in the olfacto-hippocampal network by using directional coherence (DCOH estimate), a method based on the temporal relation between two or more signals in the frequency domain. In the theta band (6–12 Hz), coherence between the olfactory bulb (OB) and the hippocampus (HPC) is weak and can be both in the feedback and feedforward directions. However, at this frequency, modulation of the coupling between the dorsal and ventral hippocampus is seen during stimulus expectation versus odor processing. In the beta frequency band (15–35 Hz), analysis showed a strong unidirectional coupling from the OB to dorsal and ventral HPC, indicating that, during odor processing, beta oscillations in the hippocampus are driven by the olfactory bulb.
机译:海马区和嗅觉区在解剖学上是紧密的,并且两者都在记忆形成中起主要作用。但是,它们在气味处理过程中的相互作用方式仍不清楚。在这两个区域中,可以记录局部场电势(LFP)的强烈振荡,并通过行为对其进行调制。特别是在嗅觉系统中,β节律(15-35 Hz)与嗅觉刺激的认知过程有关。使用大鼠嗅觉执行/不执行任务期间嗅球,海马背侧和腹侧海马中的LFP记录,我们先前表明在气味采样期间,海马中也存在β振荡,与嗅球中的β振荡相一致。在这项研究中,我们通过使用定向相干性(DCOH估计值),一种基于频域中两个或多个信号之间的时间关系的方法,来进一步了解嗅觉海马网络中的信息传递。在theta频段(6–12 Hz)中,嗅球(OB)与海马(HPC)之间的相干性很弱,并且可能在反馈方向和前馈方向上都存在。但是,在此频率下,在刺激预期与气味处理过程中,可以看到背侧和腹侧海马之间的耦合调节。在β频段(15–35 Hz)中,分析显示,从OB到背侧和腹侧HPC均具有很强的单向耦合,这表明在气味处理过程中,海马中的β振荡是由嗅球驱动的。

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