Functional connectivity of stimulus-evoked brain responses to natural speech in post-stroke aphasia.

Ramtin Mehraram, Pieter De Clercq, Jill Kries, Maaike Vandermosten, Tom Francart
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Abstract

Objective. One out of three stroke-patients develop language processing impairment known as aphasia. The need for ecological validity of the existing diagnostic tools motivates research on biomarkers, such as stimulus-evoked brain responses. With the aim of enhancing the physiological interpretation of the latter, we used EEG to investigate how functional brain network patterns associated with the neural response to natural speech are affected in persons with post-stroke chronic aphasia.Approach. EEG was recorded from 24 healthy controls and 40 persons with aphasia while they listened to a story. Stimulus-evoked brain responses at all scalp regions were measured as neural envelope tracking in the delta (0.5-4 Hz), theta (4-8 Hz) and low-gamma bands (30-49 Hz) using mutual information. Functional connectivity between neural-tracking signals was measured, and the Network-Based Statistics toolbox was used to: (1) assess the added value of the neural tracking vs EEG time series, (2) test between-group differences and (3) investigate any association with language performance in aphasia. Graph theory was also used to investigate topological alterations in aphasia.Main results. Functional connectivity was higher when assessed from neural tracking compared to EEG time series. Persons with aphasia showed weaker low-gamma-band left-hemispheric connectivity, and graph theory-based results showed a greater network segregation and higher region-specific node strength. Aphasia also exhibited a correlation between delta-band connectivity within the left pre-frontal region and language performance.Significance.We demonstrated the added value of combining brain connectomics with neural-tracking measurement when investigating natural speech processing in post-stroke aphasia. The higher sensitivity to language-related brain circuits of this approach favors its use as informative biomarker for the assessment of aphasia.

中风后失语症患者大脑对自然语言的刺激诱发反应的功能连接性。
目标 每三名中风患者中就有一人出现语言处理障碍,即失语症。对现有诊断工具生态有效性的需求推动了对生物标志物(如刺激诱发的大脑反应)的研究。为了加强对后者的生理学解释,我们使用脑电图研究中风后慢性失语症患者对自然语音的神经反应相关的脑功能网络模式是如何受到影响的。所有头皮区域的刺激诱发脑部反应均以神经包络跟踪的方式进行测量,包络跟踪的频段包括δ(0.5-4 Hz)、θ(4-8 Hz)和低γ频段(30-49 Hz)。对神经跟踪信号之间的功能连接性进行了测量,并使用基于网络的统计工具箱进行了以下分析1)评估神经跟踪与脑电图时间序列的附加值;2)测试组间差异;3)研究与失语症患者语言表达的关联。图论也被用来研究失语症的拓扑变化。主要结果 神经追踪评估的功能连接性高于脑电图时间序列。失语症患者的低伽马带左半球连通性较弱,基于图论的结果显示网络分离程度更高,特定区域节点强度更高。失语症患者左侧前额叶区域的δ波段连通性与语言能力之间也存在相关性。这种方法对语言相关脑回路的灵敏度更高,有利于将其用作评估失语症的信息生物标志物。
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