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Computational Pipeline for NIRS-EEG Joint Imaging of tDCS-Evoked Cerebral Responses—An Application in Ischemic Stroke

机译:tDCS诱发的脑反应的NIRS-EEG联合成像的计算管道—在缺血性卒中中的应用

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摘要

Transcranial direct current stimulation (tDCS) modulates cortical neural activity and hemodynamics. Electrophysiological methods (electroencephalography-EEG) measure neural activity while optical methods (near-infrared spectroscopy-NIRS) measure hemodynamics coupled through neurovascular coupling (NVC). Assessment of NVC requires development of NIRS-EEG joint-imaging sensor montages that are sensitive to the tDCS affected brain areas. In this methods paper, we present a software pipeline incorporating freely available software tools that can be used to target vascular territories with tDCS and develop a NIRS-EEG probe for joint imaging of tDCS-evoked responses. We apply this software pipeline to target primarily the outer convexity of the brain territory (superficial divisions) of the middle cerebral artery (MCA). We then present a computational method based on Empirical Mode Decomposition of NIRS and EEG time series into a set of intrinsic mode functions (IMFs), and then perform a cross-correlation analysis on those IMFs from NIRS and EEG signals to model NVC at the lesional and contralesional hemispheres of an ischemic stroke patient. For the contralesional hemisphere, a strong positive correlation between IMFs of regional cerebral hemoglobin oxygen saturation and the log-transformed mean-power time-series of IMFs for EEG with a lag of about −15 s was found after a cumulative 550 s stimulation of anodal tDCS. It is postulated that system identification, for example using a continuous-time autoregressive model, of this coupling relation under tDCS perturbation may provide spatiotemporal discriminatory features for the identification of ischemia. Furthermore, portable NIRS-EEG joint imaging can be incorporated into brain computer interfaces to monitor tDCS-facilitated neurointervention as well as cortical reorganization.
机译:经颅直流电刺激(tDCS)调节皮层神经活动和血液动力学。电生理方法(脑电图-EEG)测量神经活动,而光学方法(近红外光谱法-NIRS)测量通过神经血管耦合(NVC)耦合的血液动力学。对NVC的评估需要开发对tDCS受影响的大脑区域敏感的NIRS-EEG联合成像传感器蒙太奇。在此方法文件中,我们介绍了一个软件管道,该管道包含可免费使用的软件工具,这些工具可用于以tDCS靶向血管区域,并开发出NIRS-EEG探针对tDCS诱发的反应进行联合成像。我们应用此软件管道主要针对大脑中动脉(MCA)的大脑区域(浅表区域)的外凸。然后,我们提出一种基于NIRS和EEG时间序列的经验模式分解成一组固有模式函数(IMF)的计算方法,然后对来自NIRS和EEG信号的那些IMF进行互相关分析,以对病变处的NVC进行建模和缺血性中风患者的对侧半球。对于对侧半球,在累积的550 s刺激阳极后,发现区域性脑血红蛋白氧饱和度的IMF与EEG的对数变换平均功率时间序列之间存在强的正相关,滞后时间约为-15 s tDCS。据推测,在tDCS扰动下,该耦合关系的系统识别(例如使用连续时间自回归模型)可以为识别缺血提供时空区分特征。此外,可将便携式NIRS-EEG关节成像整合到大脑计算机界面中,以监控tDCS促进的神经干预以及皮层重组。

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