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Bidirectional interactions between neuronal and hemodynamic responses to transcranial direct current stimulation (tDCS): challenges for brain-state dependent tDCS

机译:对经颅直流电刺激(tDCS)的神经元和血液动力学反应之间的双向相互作用:依赖脑状态的tDCS面临的挑战

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摘要

Transcranial direct current stimulation (tDCS) has been shown to modulate cortical neural activity. During neural activity, the electric currents from excitable membranes of brain tissue superimpose in the extracellular medium and generate a potential at scalp, which is referred as the electroencephalogram (EEG). Respective neural activity (energy demand) has been shown to be closely related, spatially and temporally, to cerebral blood flow (CBF) that supplies glucose (energy supply) via neurovascular coupling. The hemodynamic response can be captured by near-infrared spectroscopy (NIRS), which enables continuous monitoring of cerebral oxygenation and blood volume. This neurovascular coupling phenomenon led to the concept of neurovascular unit (NVU) that consists of the endothelium, glia, neurons, pericytes, and the basal lamina. Here, recent works suggest NVU as an integrated system working in concert using feedback mechanisms to enable proper brain homeostasis and function where the challenge remains in capturing these mostly nonlinear spatiotemporal interactions within NVU for brain-state dependent tDCS. In principal accordance, we propose EEG-NIRS-based whole-head monitoring of tDCS-induced neuronal and hemodynamic alterations during tDCS.
机译:经颅直流电刺激(tDCS)已被证明可以调节皮层神经活动。在神经活动期间,来自脑组织可兴奋膜的电流在细胞外介质中叠加并在头皮产生电势,这被称为脑电图(EEG)。已经显示出各自的神经活动(能量需求)在空间和时间上与通过神经血管耦合提供葡萄糖(能量供应)的脑血流(CBF)密切相关。可以通过近红外光谱(NIRS)捕获血液动力学反应,从而可以连续监测脑氧合和血容量。这种神经血管耦合现象导致了由内皮,神经胶质,神经元,周细胞和基底层组成的神经血管单位(NVU)的概念。在这里,最近的工作建议将NVU作为一个集成系统,使用反馈机制协同工作,以实现适当的大脑动态平衡和功能,而在捕获依赖于脑状态的tDCS的NVU中这些主要是非线性的时空相互作用方面,挑战仍然存在。原则上,我们提出了基于EEG-NIRS的tDCS诱导的tDCS期间神经元和血液动力学改变的全头监测。

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