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Malleability of gamma rhythms enhances population-level correlations

机译:伽马节奏的延长性增强人口水平相关性

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An important problem in systems neuroscience is to understand how information is communicated among brain regions, and it has been proposed that communication is mediated by neuronal oscillations, such as rhythms in the gamma band. We sought to investigate this idea by using a network model with two components, a source (sending) and a target (receiving) component, both built to resemble local populations in the cerebral cortex. To measure the effectiveness of communication, we used population-level correlations in spike times between the source and target. We found that after correcting for a response time that is independent of initial conditions, spike-time correlations between the source and target are significant, due in large measure to the alignment of firing events in their gamma rhythms. But, we also found that regular oscillations cannot produce the results observed in our model simulations of cortical neurons. Surprisingly, it is the irregularity of gamma rhythms, the absence of internal clocks, together with the malleability of these rhythms and their tendency to align with external pulses - features that are known to be present in gamma rhythms in the real cortex - that produced the results observed. These findings and the mechanistic explanations we offered are our primary results. Our secondary result is a mathematical relationship between correlations and the sizes of the samples used for their calculation. As improving technology enables recording simultaneously from increasing numbers of neurons, this relationship could be useful for interpreting results from experimental recordings.
机译:系统神经科学的一个重要问题是了解如何在脑区域中传达信息,并且已经提出了通信由神经元振荡介导,例如伽马带中的节奏。我们试图通过使用两个组件,源(发送)和目标(接收)组件的网络模型来调查这个想法,以在大脑皮层中类似于当地群体。为了衡量通信的有效性,我们在源和目标之间使用了Spike时间中的人口级相关性。我们发现,在校正初始条件的响应时间后,源和目标之间的峰值时间相关性是显着的,因此在伽马节奏中的射击事件的对准方面是由于射击事件的对准。但是,我们还发现,常规振荡不能在我们的皮质神经元模拟中观察到的结果。令人惊讶的是,γ节奏的不规则性,内部时钟的不存在,以及这些节奏的延伸性和与外部脉冲对准的趋势 - 已知在真正的皮质中存在于γ节奏中的特征 - 产生的结果观察到。我们提供的这些调查结果和机械解释是我们的主要结果。我们的次要结果是相关性与其计算的样本的大小之间的数学关系。随着改进技术使得能够同时记录越来越多的神经元,这种关系对于解释实验记录的结果可能是有用的。

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