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哺乳动物嗅球中γ和β神经集合的呼吸门控形成。

Respiration-gated formation of gamma and beta neural assemblies in the mammalian olfactory bulb.

作者信息

Cenier Tristan, David François, Litaudon Philippe, Garcia Samuel, Amat Corine, Buonviso Nathalie

机构信息

Neurosciences Sensorielles, Comportement, Cognition, Université Claude Bernard Lyon1, CNRS UMR 5020, Institut Fédératif de Neurosciences de Lyon, 50 Avenue Tony Garnier, 69366 Lyon Cedex 7, France.

出版信息

Eur J Neurosci. 2009 Mar;29(5):921-30. doi: 10.1111/j.1460-9568.2009.06651.x.

Abstract

A growing body of data suggests that information coding can be achieved not only by varying neuronal firing rate, but also by varying spike timing relative to network oscillations. In the olfactory bulb (OB) of a freely breathing anaesthetized mammal, odorant stimulation induces prominent oscillatory local field potential (LFP) activity in the beta (10-35 Hz) and gamma (40-80 Hz) ranges, which alternate during a respiratory cycle. At the same time, mitral/tufted (M/T) cells display respiration-modulated spiking patterns. Using simultaneous recordings of M/T unitary activities and LFP activity, we conducted an analysis of the temporal relationships between M/T cell spiking activity and both OB beta and gamma oscillations. We observed that M/T cells display a respiratory pattern that pre-tunes instantaneous frequencies to a gamma or beta regime. Consequently, M/T cell spikes become phase-locked to either gamma or beta LFP oscillations according to their frequency range and respiratory pattern. Our results suggest that slow respiratory dynamics pre-tune M/T cells to a preferential fast rhythm (beta or gamma) such that a spike-LFP coupling might occur when units and oscillation frequencies are in a compatible range. This double-coupling process might define two complementary beta- and gamma-neuronal assemblies along the course of a respiratory cycle.

摘要

越来越多的数据表明,信息编码不仅可以通过改变神经元放电率来实现,还可以通过改变相对于网络振荡的 spike 时间来实现。在自由呼吸的麻醉哺乳动物的嗅球(OB)中,气味刺激会在β(10 - 35Hz)和γ(40 - 80Hz)范围内诱导出突出的振荡性局部场电位(LFP)活动,这些活动在呼吸周期中交替出现。同时,二尖瓣/簇状(M/T)细胞表现出呼吸调制的放电模式。通过同时记录 M/T 单位活动和 LFP 活动,我们对 M/T 细胞放电活动与 OB 的β和γ振荡之间的时间关系进行了分析。我们观察到,M/T 细胞表现出一种呼吸模式,该模式将瞬时频率预调至γ或β状态。因此,M/T 细胞的 spike 根据其频率范围和呼吸模式与γ或β LFP 振荡锁相。我们的结果表明,缓慢的呼吸动力学将 M/T 细胞预调至优先的快速节律(β或γ),使得当单位和振荡频率处于兼容范围内时可能会发生 spike-LFP 耦合。这种双重耦合过程可能在呼吸周期过程中定义两个互补的β和γ神经元组件。

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