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Dynamical relaying can yield zero time lag neuronal synchrony despite long conduction delays

机译:尽管有较长的传导延迟动态中继仍可产生零时滞神经元同步

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摘要

Multielectrode recordings have revealed zero time lag synchronization among remote cerebral cortical areas. However, the axonal conduction delays among such distant regions can amount to several tens of milliseconds. It is still unclear which mechanism is giving rise to isochronous discharge of widely distributed neurons, despite such latencies. Here, we investigate the synchronization properties of a simple network motif and found that, even in the presence of large axonal conduction delays, distant neuronal populations self-organize into lag-free oscillations. According to our results, cortico–cortical association fibers and certain cortico–thalamo–cortical loops represent ideal circuits to circumvent the phase shifts and time lags associated with conduction delays.
机译:多电极记录显示,远端大脑皮层区域之间的零时滞同步。然而,在这样的远距离区域之间的轴突传导延迟可以总计数十毫秒。尽管存在这种潜伏期,但尚不清楚哪种机制引起广泛分布的神经元同步放电。在这里,我们研究了一个简单的网络图案的同步特性,发现即使在轴突传导延迟较大的情况下,遥远的神经元群体也会自组织成无滞后的振荡。根据我们的结果,皮质-皮质缔合纤维和某些皮质-丘脑-皮质回路代表了理想的电路,可避免相移和与传导延迟相关的时滞。

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