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Spiking in auditory cortex following thalamic stimulation is dominated by cortical network activity

机译:丘脑刺激后听觉皮层的刺突主要由皮层网络活动决定

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摘要

The state of the sensory cortical network can have a profound impact on neural responses and perception. In rodent auditory cortex, sensory responses are reported to occur in the context of network events, similar to brief UP states, that produce “packets” of spikes and are associated with synchronized synaptic input (Bathellier et al., ; Hromadka et al., ; Luczak et al., ). However, traditional models based on data from visual and somatosensory cortex predict that ascending sensory thalamocortical (TC) pathways sequentially activate cells in layers 4 (L4), L2/3, and L5. The relationship between these two spatio-temporal activity patterns is unclear. Here, we used calcium imaging and electrophysiological recordings in murine auditory TC brain slices to investigate the laminar response pattern to stimulation of TC afferents. We show that although monosynaptically driven spiking in response to TC afferents occurs, the vast majority of spikes fired following TC stimulation occurs during brief UP states and outside the context of the L4>L2/3>L5 activation sequence. Specifically, monosynaptic subthreshold TC responses with similar latencies were observed throughout layers 2–6, presumably via synapses onto dendritic processes located in L3 and L4. However, monosynaptic spiking was rare, and occurred primarily in L4 and L5 non-pyramidal cells. By contrast, during brief, TC-induced UP states, spiking was dense and occurred primarily in pyramidal cells. These network events always involved infragranular layers, whereas involvement of supragranular layers was variable. During UP states, spike latencies were comparable between infragranular and supragranular cells. These data are consistent with a model in which activation of auditory cortex, especially supragranular layers, depends on internally generated network events that represent a non-linear amplification process, are initiated by infragranular cells and tightly regulated by feed-forward inhibitory cells.
机译:感觉皮层网络的状态可能对神经反应和知觉产生深远影响。据报道,在啮齿类动物的听觉皮层中,感觉反应是在网络事件的背景下发生的,类似于短暂的UP状态,会产生尖峰的“小包”并与同步的突触输入有关(Bathellier等人; Hromadka等人, ; Luczak等,)。然而,基于来自视觉和体感皮层的数据的传统模型预测,上升的感觉丘脑(TC)通路会依次激活第4层(L4),L2 / 3和L5中的细胞。这两种时空活动模式之间的关系尚不清楚。在这里,我们使用了钙离子成像和电生理记录在小鼠听觉TC脑片中,以研究层状响应模式对TC传入的刺激。我们显示,虽然发生了针对TC传入的单突触驱动的尖峰信号,但在短暂的UP状态期间以及L4> L2 / 3> L5激活序列之外,发生了大部分TC刺激激发的尖峰。特别是,在第2至第6层中观察到了具有相似潜伏期的单突触亚阈值TC反应,大概是通过突触位于L3和L4中的树突状过程。但是,单突触加标很少见,主要发生在L4和L5非锥体细胞中。相比之下,在短暂的TC诱导的UP状态期间,尖峰密集并且主要发生在锥体细胞中。这些网络事件总是涉及颗粒下层,而颗粒上层的参与是可变的。在UP状态期间,峰下潜伏期在颗粒下和颗粒上细胞之间相当。这些数据与一个模型相一致,在该模型中,听觉皮层(尤其是颗粒上皮层)的激活取决于内部生成的网络事件,这些事件代表非线性扩增过程,是由颗粒下细胞引发并由前馈抑制细胞严格调控的。

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