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Cellular and Network Mechanisms Underlying Spontaneous Sharp Wave–Ripple Complexes in Mouse Hippocampal Slices

机译:小鼠海马切片中自发尖峰波波纹复合体的细胞和网络机制

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摘要

The mammalian hippocampus displays a peculiar pattern of fast (≈200 Hz) network oscillations superimposed on slower sharp waves. Such sharp wave–ripple complexes (SPW–R) have been implicated in memory consolidation. We have recently described a novel and unique method for studying SPW–R in naive slices of murine hippocampus. Here, we used this model to analyse network and cellular mechanisms of this type of network activity. SPW–R are usually generated within area CA3 but can also originate within the isolated CA1 region. Cellular synchronisation during SPW–R requires both excitatory and inhibitory synaptic transmission as well as electrical coupling, the latter being particularly important for the high-frequency component. Extracellular and intracellular recordings revealed a surprisingly strong inhibition of most CA1 pyramidal cells during SPW–R. A minority of active cells, however, increases action potential frequency and fires in strict synchrony with the field ripples. This strong separation between members and non-members of the network may serve to ensure a high signal-to-noise ratio in information processing during sharp wave–ripple complexes.
机译:哺乳动物海马体表现出特殊的快速(≈200Hz)网络振荡模式,叠加在较慢的尖波上。这种尖锐的波纹涟漪复合体(SPW-R)与内存整合有关。我们最近描述了一种新颖且独特的方法,用于研究鼠海马幼稚切片中的SPW-R。在这里,我们使用此模型来分析这种网络活动的网络和蜂窝机制。 SPW–R通常在CA3区域内生成,但也可以在隔离的CA1区域内生成。 SPW–R期间的细胞同步需要兴奋性和抑制性突触传递以及电耦合,电耦合对于高频成分尤其重要。细胞外和细胞内的记录显示,在SPW-R期间,大多数CA1锥体细胞具有令人惊讶的强烈抑制作用。然而,少数活跃细胞会增加动作电位的频率,并与磁场波动严格同步发射。网络的成员与非成员之间的这种强烈隔离可能有助于确保在尖峰波纹状复杂过程中信息处理中的高信噪比。

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