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BOLD-fMRI activity informed by network variation of scalp EEG in juvenile myoclonic epilepsy

机译:青少年肌阵挛性癫痫的头皮脑电图网络变化提示BOLD-fMRI活性

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摘要

Epilepsy is marked by hypersynchronous bursts of neuronal activity, and seizures can propagate variably to any and all areas, leading to brain network dynamic organization. However, the relationship between the network characteristics of scalp EEG and blood oxygenation level-dependent (BOLD) responses in epilepsy patients is still not well known. In this study, simultaneous EEG and fMRI data were acquired in 18 juvenile myoclonic epilepsy (JME) patients. Then, the adapted directed transfer function (ADTF) values between EEG electrodes were calculated to define the time-varying network. The variation of network information flow within sliding windows was used as a temporal regressor in fMRI analysis to predict the BOLD response. To investigate the EEG-dependent functional coupling among the responding regions, modulatory interactions were analyzed for network variation of scalp EEG and BOLD time courses. The results showed that BOLD activations associated with high network variation were mainly located in the thalamus, cerebellum, precuneus, inferior temporal lobe and sensorimotor-related areas, including the middle cingulate cortex (MCC), supplemental motor area (SMA), and paracentral lobule. BOLD deactivations associated with medium network variation were found in the frontal, parietal, and occipital areas. In addition, modulatory interaction analysis demonstrated predominantly directional negative modulation effects among the thalamus, cerebellum, frontal and sensorimotor-related areas. This study described a novel method to link BOLD response with simultaneous functional network organization of scalp EEG. These findings suggested the validity of predicting epileptic activity using functional connectivity variation between electrodes. The functional coupling among the thalamus, frontal regions, cerebellum and sensorimotor-related regions may be characteristically involved in epilepsy generation and propagation, which provides new insight into the pathophysiological mechanisms and intervene targets for JME.
机译:癫痫发作以神经元活动的超同步爆发为特征,癫痫发作可以可变地传播到任何区域,导致大脑网络动态组织。然而,癫痫患者的头皮脑电图网络特征与血液氧合水平依赖性(BOLD)反应之间的关系仍然未知。在这项研究中,同时获得了18例青少年肌阵挛性癫痫(JME)患者的EEG和fMRI数据。然后,计算脑电电极之间的自适应定向传递函数(ADTF)值以定义时变网络。滑动窗口内网络信息流的变化被用作功能磁共振成像分析中的时间回归指标,以预测BOLD反应。为了调查响应区域之间的脑电依赖功能耦合,分析了头皮脑电图和BOLD时间过程的网络变化的调制相互作用。结果表明,与高网络变化相关的BOLD激活主要位于丘脑,小脑,前神经,颞下叶和感觉运动相关区域,包括扣带状中层(MCC),运动补充区(SMA)和中央小叶。在额叶,顶叶和枕叶区域发现了与中等网络变化相关的大胆失活。另外,调节相互作用分析表明,在丘脑,小脑,额叶和感觉运动相关区域中主要是方向性负调节作用。这项研究描述了一种新方法,将大胆反应与头皮脑电图的同时功能网络组织联系起来。这些发现表明使用电极之间的功能连接性变化预测癫痫活动的有效性。丘脑,额叶区域,小脑和感觉运动相关区域之间的功能耦合可能是癫痫产生和传播的特征性特征,这为JME的病理生理机制和干预靶点提供了新见识。

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