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Time-varying functional network information extracted from brief instances of spontaneous brain activity

机译:从大脑自发活动的简短实例中提取的时变功能网络信息

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摘要

Recent functional magnetic resonance imaging studies have shown that the brain is remarkably active even in the absence of overt behavior, and this activity occurs in spatial patterns that are reproducible across subjects and follow the brain’s established functional subdivision. Investigating the distribution of these spatial patterns is an active area of research with the goal of obtaining a better understanding of the neural networks underlying brain function. One intriguing aspect of spontaneous activity is an apparent nonstationarity, or variability of interaction between brain regions. It was recently proposed that spontaneous brain activity may be dominated by brief traces of activity, possibly originating from a neuronal avalanching phenomenon. Such traces may involve different subregions in a network at different times, potentially reflecting functionally relevant relationships that are not captured with conventional data analysis. To investigate this, we examined publicly available functional magnetic resonance imaging data with a dedicated analysis method and found indications that functional networks inferred from conventional correlation analysis may indeed be driven by activity at only a few critical time points. Subsequent analysis of the activity at these critical time points revealed multiple spatial patterns, each distinctly different from the established functional networks. The spatial distribution of these patterns suggests a potential functional relevance.
机译:最近的功能磁共振成像研究表明,即使没有明显的行为,大脑也具有显着的活动能力,并且这种活动发生在各个对象之间可重现的空间模式中,并且遵循大脑已建立的功能细分。研究这些空间模式的分布是一个活跃的研究领域,目的是更好地了解脑功能的神经网络。自发活动的一个有趣方面是明显的不平稳性或大脑区域之间相互作用的变异性。最近有人提出,自发性大脑活动可能以短暂的活动痕迹为主导,这可能源于神经元的雪崩现象。这样的迹线可能在不同时间涉及网络中的不同子区域,可能反映了常规数据分析未捕获到的功能相关关系。为了对此进行调查,我们使用专用的分析方法检查了可公开获得的功能磁共振成像数据,并发现从常规相关性分析推断出的功能网络实际上可能仅在几个关键时间点受到活动的驱动。随后在这些关键时间点对活动进行的分析显示了多个空间模式,每个空间模式与已建立的功能网络明显不同。这些模式的空间分布表明潜在的功能相关性。

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