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利用同步 EEG-fMRI 进行癫痫棘波的时空映射。

Spatiotemporal mapping of epileptic spikes using simultaneous EEG-functional MRI.

机构信息

The Florey Institute of Neuroscience and Mental Health, Austin Campus, Melbourne, VIC, Australia.

The Florey Department of Neuroscience and Mental Health, The University of Melbourne, Melbourne, VIC, Australia.

出版信息

Brain. 2017 Apr 1;140(4):998-1010. doi: 10.1093/brain/awx007.

Abstract

Epileptic spikes occur on the sub-second timescale and are known to involve not only epileptic foci but also large-scale distributed brain networks. There is likely to be a sequence of neural activity in multiple brain regions that occurs within the duration of a single spike, but standard electroencephalography-functional magnetic resonance imaging analyses, which use only the timing of the spikes to model the functional magnetic resonance imaging data, cannot determine the sequence of these activations. Our aim in this study is to temporally resolve these spatial activations to observe the spatiotemporal dynamics of the spike-related neural activity at a sub-second timescale. We studied eight focal epilepsy patients (age 11-42 years, six female) and used amplitude features of the electroencephalogram specific to different spike components (early and late peaks and troughs) to encode temporal information into our functional magnetic resonance imaging models. This enables us to associate each activation with a specific model of each of the spike components to infer the temporal order of these spike-related spatial activations. In seven of eight patients the distributed networks were associated with the late spike component. The focal activations were more variably coupled with time epochs, but tended to precede the distributed network effects. We also found that incorporating electroencephalogram features into the models increased sensitivity and in six patients revealed additional regions unseen in the standard analysis result. This included strong bilateral thalamus activation in two patients. We demonstrate the clinical utility of this approach in a patient who recently underwent a successful surgical resection of the region where we saw enhanced activation using electroencephalogram amplitude information specific to the early spike component. This focal cluster of activation was larger and more precisely tracked the anatomy compared to what was seen using the standard timing-based analysis. Our novel electroencephalography-functional magnetic resonance imaging data fusion approach, which utilizes information based on the single spike variability across all electroencephalogram channels, has the potential to help us better understand epileptic networks and aid in the interpretation of functional magnetic resonance imaging activation maps during treatment planning.

摘要

癫痫棘波发生在亚秒级时间尺度内,已知不仅涉及癫痫灶,还涉及大规模分布式脑网络。在单个棘波的持续时间内,可能存在多个脑区的神经活动序列,但标准的脑电图-功能磁共振成像分析仅使用棘波的时间来对功能磁共振成像数据进行建模,无法确定这些激活的顺序。我们在这项研究中的目的是在时间上解析这些空间激活,以观察亚秒级时间尺度内与棘波相关的神经活动的时空动力学。我们研究了 8 名局灶性癫痫患者(年龄 11-42 岁,6 名女性),并使用特定于不同棘波成分(早期和晚期峰和谷)的脑电图幅度特征将时间信息编码到我们的功能磁共振成像模型中。这使我们能够将每个激活与每个棘波成分的特定模型相关联,以推断这些与棘波相关的空间激活的时间顺序。在 8 名患者中的 7 名中,分布式网络与晚期棘波成分相关。局灶性激活与时间区间的相关性更具可变性,但往往先于分布式网络效应。我们还发现,将脑电图特征纳入模型可以提高敏感性,在 6 名患者中揭示了标准分析结果中未见的额外区域。这包括两名患者双侧丘脑的强烈激活。我们通过一名最近成功接受手术切除的患者展示了这种方法的临床应用,在该患者中,我们使用特定于早期棘波成分的脑电图幅度信息观察到增强的激活,使用这种方法可以看到更大、更精确地追踪解剖结构的局灶性激活簇。与使用标准基于时间的分析相比。我们的新脑电图-功能磁共振成像数据融合方法利用了基于所有脑电图通道的单个棘波变异性的信息,有可能帮助我们更好地理解癫痫网络,并在治疗计划期间辅助解释功能磁共振成像激活图。

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