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Using quantitative and analytic EEG methods in the understanding of connectivity in autism spectrum disorders: a theory of mixed over- and under-connectivity

机译:使用定量和分析性脑电图方法来理解自闭症谱系障碍的连通性:过度连通和连通不足的理论

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摘要

Neuroimaging technologies and research has shown that autism is largely a disorder of neuronal connectivity. While advanced work is being done with fMRI, MRI-DTI, SPECT and other forms of structural and functional connectivity analyses, the use of EEG for these purposes is of additional great utility. Cantor et al. () were the first to examine the utility of pairwise coherence measures for depicting connectivity impairments in autism. Since that time research has shown a combination of mixed over and under-connectivity that is at the heart of the primary symptoms of this multifaceted disorder. Nevertheless, there is reason to believe that these simplistic pairwise measurements under represent the true and quite complicated picture of connectivity anomalies in these persons. We have presented three different forms of multivariate connectivity analysis with increasing levels of sophistication (including one based on principle components analysis, sLORETA source coherence, and Granger causality) to present a hypothesis that more advanced statistical approaches to EEG coherence analysis may provide more detailed and accurate information than pairwise measurements. A single case study is examined with findings from MR-DTI, pairwise and coherence and these three forms of multivariate coherence analysis. In this case pairwise coherences did not resemble structural connectivity, whereas multivariate measures did. The possible advantages and disadvantages of different techniques are discussed. Future work in this area will be important to determine the validity and utility of these techniques.
机译:神经影像技术和研究表明,自闭症很大程度上是神经元连通性的障碍。尽管正在使用fMRI,MRI-DTI,SPECT和其他形式的结构和功能连接性分析进行高级工作,但将EEG用于这些目的的用途却非常有用。 Cantor等。 ()率先研究了成对相干性度量在描述自闭症中的连通性障碍方面的实用性。从那时起,研究表明,过度连接和连接不足是这种多方面疾病的主要症状的核心。然而,有理由相信,这些简单的成对测量值代表了这些人中连接异常的真实且相当复杂的图景。我们已经提出了三种不同形式的,随着复杂程度的提高而进行的多变量连通性分析(包括基于主成分分析,sLORETA源一致性和Granger因果关系的一种形式),从而提出了一种假设,即更先进的EEG相干性分析统计方法可以提供更详细和比成对测量更准确的信息。结合MR-DTI,成对和一致性以及这三种形式的多元一致性分析,对单个案例研究进行了检查。在这种情况下,成对的一致性不像结构连通性,而多变量测度却类似。讨论了不同技术的可能优缺点。这方面的未来工作对于确定这些技术的有效性和实用性很重要。

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