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Input-Output Features of Anatomically Identified CA3 Neurons during Hippocampal Sharp Wave/Ripple Oscillation In Vitro.

机译:体外海马锐波/波纹振荡过程中解剖学识别的CA3神经元的输入输出特征。

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摘要

Hippocampal sharp waves and the associated ripple oscillations (SWRs) are implicated in memory processes. These network events emerge intrinsically in the CA3 network. To understand cellular interactions that generate SWRs, we detected first spiking activity followed by recording of synaptic currents in distinct types of anatomically identified CA3 neurons during SWRs that occurred spontaneously in mouse hippocampal slices. We observed that the vast majority of interneurons fired during SWRs, whereas only a small portion of pyramidal cells was found to spike. There were substantial differences in the firing behavior among interneuron groups; parvalbumin-expressing basket cells were one of the most active GABAergic cells during SWRs, whereas ivy cells were silent. Analysis of the synaptic currents during SWRs uncovered that the dominant synaptic input to the pyramidal cell was inhibitory, whereas spiking interneurons received larger synaptic excitation than inhibition. The discharge of all interneurons was primarily determined by the magnitude and the timing of synaptic excitation. Strikingly, we observed that the temporal structure of synaptic excitation and inhibition during SWRs significantly differed between parvalbumin-containing basket cells, axoaxonic cells, and type 1 cannabinoid receptor (CB1)-expressing basket cells, which might explain their distinct recruitment to these synchronous events. Our data support the hypothesis that the active current sources restricted to the stratum pyramidale during SWRs originate from the synaptic output of parvalbumin-expressing basket cells. Thus, in addition to gamma oscillation, these GABAergic cells play a central role in SWR generation.
机译:海马尖波和相关的波纹振荡(SWR)与记忆过程有关。这些网络事件本质上出现在CA3网络中。为了了解产生SWR的细胞相互作用,我们检测到了第一个尖峰活动,随后在小鼠海马切片中自发发生的SWR中记录了不同类型的解剖学鉴定的CA3神经元中的突触电流。我们观察到绝大多数中间神经元在SWR期间发射,而仅一小部分锥体细胞被发现峰值。中间神经元组之间的射击行为存在实质性差异。表达小白蛋白的篮子细胞是SWR期间活性最高的GABA能细胞之一,而常春藤细胞则沉默。在SWRs期间对突触电流的分析发现,锥体细胞的主要突触输入具有抑制作用,而尖峰神经元的突触兴奋大于抑制作用。所有中间神经元的放电主要取决于突触激发的幅度和时间。令人惊讶地,我们观察到SWR期间突触激发和抑制的时间结构在含小白蛋白的篮状细胞,轴突细胞和表达1型大麻素受体(CB1)的篮状细胞之间显着不同,这可能解释了它们对这些同步事件的独特募集。我们的数据支持这样的假设,即在SWR期间限制于锥体层的有功电流源源自表达小白蛋白的篮子细胞的突触输出。因此,除了伽马振荡之外,这些GABA能细胞在SWR产生中也起着核心作用。

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