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Multimodal functional and structural brain connectivity analysis in autism: A preliminary integrated approach with EEG, fMRI and DTI

机译:自闭症的多模态功能和结构脑连接分析:与脑电图,功能磁共振成像和DTI的初步综合方法

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摘要

This paper proposes a novel approach of integrating different neuroimaging techniques to characterize an autistic brain. Different techniques like EEG, fMRI and DTI have traditionally been used to find biomarkers for autism, but there have been very few attempts for a combined or multimodal approach of EEG, fMRI and DTI to understand the neurobiological basis of autism spectrum disorder (ASD). Here, we explore how the structural brain network correlate with the functional brain network, such that the information encompassed by these two could be uncovered only by using the latter. In this paper, source localization from EEG using independent component analysis (ICA) and dipole fitting has been applied first, followed by selecting those dipoles that are closest to the active regions identified with fMRI. This allows translating the high temporal resolution of EEG to estimate time varying connectivity at the spatial source level. Our analysis shows that the estimated functional connectivity between two active regions can be correlated with the physical properties of the structure obtained from DTI analysis. This constitutes a first step towards opening the possibility of using pervasive EEG to monitor the long-term impact of ASD treatment without the need for frequent expensive fMRI or DTI investigations.
机译:本文提出了一种整合不同神经影像技术来表征自闭症大脑的新颖方法。传统上已使用诸如EEG,fMRI和DTI之类的不同技术来寻找自闭症的生物标记物,但很少有尝试采用EEG,fMRI和DTI的组合或多模式方法来了解自闭症谱系障碍(ASD)的神经生物学基础。在这里,我们探索结构性大脑网络与功能性大脑网络之间的关系,从而只有通过使用后者才能发现这两者所包含的信息。在本文中,首先应用了使用独立成分分析(ICA)和偶极子拟合进行脑电图的源定位,然后选择最接近通过fMRI识别的活动区域的那些偶极子。这允许转换EEG的高时间分辨率,以估计空间源级别的时变连接性。我们的分析表明,两个活动区域之间的估计功能连接性可以与从DTI分析获得的结构的物理特性相关。这是迈向迈出第一步的第一步,这种可能性开启了使用普及性脑电图监测ASD治疗的长期影响的可能性,而无需进行频繁的昂贵的fMRI或DTI检查。

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