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High-Frequency Oscillations in the Output Networks of the Hippocampal–Entorhinal Axis of the Freely Behaving Rat

机译:自由行为大鼠海马-内脏轴输出网络中的高频振荡

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摘要

Population bursts of the CA3 network, which occur during eating, drinking, awake immobility, and slow-wave sleep, produce a large field excitatory postsynaptic potential throughout stratum radiatum of the CA1 field (sharp wave). The CA3 burst sets into motion a short-lived, dynamic interaction between CA1 pyramidal cells and interneurons, the product of which is a 200 Hz oscillatory field potential (ripple) and phase-related discharge of the CA1 network. Although many CA1 pyramidal neurons discharge during the time frame (50–100 msec) of each sharp wave, each wave of a ripple (∼5 msec) reflects the synchronization of more discrete subsets of CA1 neurons.When we used multi-site recordings in freely behaving rats, we observed ripples throughout the longitudinal extent (∼4–5 mm) of the dorsal CA1 region that were coherent for multiple cycles of each ripple. High-frequency ripples were also observed throughout the hippocampal–entorhinal output pathway that were concurrent but less coherent on a cycle-by-cycle basis. Single and multiunit neuronal activity was phase-related to local ripples throughout the hippocampal–entorhinal output pathway. Entorhinal ripples occurred 5–30 msec after the CA1 ripples and were related to the occurrence of an entorhinal sharp wave. Thus, during each hippocampal sharp wave, there is a powerful synchronization among the neuronal networks that connect the hippocampus to the neocortex. We suggest that this population interaction (1) biologically constrains theoretical models of hippocampal function and dysfunction and (2) has the capacity to support an “off-line” memory consolidation process.
机译:在进食,饮水,清醒不动和慢波睡眠期间发生的CA3网络的群体爆发,在整个CA1场的地层半径上产生大的场兴奋性突触后突触电位(尖波)。 CA3爆发使CA1锥体细胞与中间神经元之间的短暂,动态相互作用动起来,其相互作用是200 Hz的振荡场电势(波纹)和CA1网络的相位相关放电。尽管许多CA1锥体神经元在每个尖波的时间范围(50-100毫秒)内放电,但每波波纹(〜5毫秒)反映了CA1神经元更多离散子集的同步。自由行为的大鼠,我们观察到背侧CA1区域在整个纵向范围内(约4-5 mm)的波纹,每个波纹的多个周期都具有连贯性。在整个海马-肠胃输出通道中也观察到了高频波纹,这些波纹是并发的,但在每个周期的基础上却不那么连贯。单个和多个单元的神经元活动与整个海马-肠内输出通路中的局部波纹有关。在CA1波动之后的5-30毫秒内发生内嗅波动,并且与内嗅锐波的发生有关。因此,在每个海马尖波期间,将海马体连接到新皮层的神经元网络之间存在强大的同步。我们建议这种人群相互作用(1)在生物学上限制了海马功能和功能障碍的理论模型,并且(2)具有支持“离线”记忆整合过程的能力。

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