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Precisely Timed Signal Transmission in Neocortical Networks with Reliable Intermediate-Range Projections

机译:具有可靠的中程投影的新皮层网络中的精确定时信号传输

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摘要

The mammalian neocortex has a remarkable ability to precisely reproduce behavioral sequences or to reliably retrieve stored information. In contrast, spiking activity in behaving animals shows a considerable trial-to-trial variability and temporal irregularity. The signal propagation and processing underlying these conflicting observations is based on fundamental neurophysiological processes like synaptic transmission, signal integration within single cells, and spike formation. Each of these steps in the neuronal signaling chain has been studied separately to a great extend, but it has been difficult to judge how they interact and sum up in active sub-networks of neocortical cells. In the present study, we experimentally assessed the precision and reliability of small neocortical networks consisting of trans-columnar, intermediate-range projections (200–1000 μm) on a millisecond time-scale. Employing photo-uncaging of glutamate in acute slices, we activated a number of distant presynaptic cells in a spatio-temporally precisely controlled manner, while monitoring the resulting membrane potential fluctuations of a postsynaptic cell. We found that signal integration in this part of the network is highly reliable and temporally precise. As numerical simulations showed, the residual membrane potential variability can be attributed to amplitude variability in synaptic transmission and may significantly contribute to trial-to-trial output variability of a rate signal. However, it does not impair the temporal accuracy of signal integration. We conclude that signals from intermediate-range projections onto neocortical neurons are propagated and integrated in a highly reliable and precise manner, and may serve as a substrate for temporally precise signal transmission in neocortical networks.
机译:哺乳动物新皮层具有非凡的能力,可以精确地重现行为序列或可靠地检索存储的信息。相反,行为动物的加标活动显示出很大的试验间变化和时间上的不规律性。这些相互矛盾的观察结果的信号传播和处理是基于基本的神经生理过程,如突触传递,单个细胞内的信号整合和尖峰形成。对神经元信号链中的每个步骤都进行了广泛的研究,但是很难判断它们如何相互作用以及如何在新皮层细胞的活跃子网络中进行总结。在本研究中,我们通过实验评估了小型新皮层网络的精确度和可靠性,该网络由跨柱状,中间范围的投影(200–1000μm)组成,时间为毫秒。通过在急性切片中光解谷氨酸,我们以时空精确控制的方式激活了许多遥远的突触前细胞,同时监测了突触后细胞的膜电位波动。我们发现,在网络的这一部分中的信号集成是高度可靠且时间精确的。如数值模拟所示,残余膜电位的可变性可以归因于突触传递中的振幅可变性,并且可以显着地影响速率信号的从试验到试验输出的可变性。但是,它不会损害信号集成的时间准确性。我们得出的结论是,从到新皮层神经元的中间范围投影的信号以高度可靠和精确的方式传播和整合,并且可以充当新皮层网络中时间精确信号传输的基础。

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