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Physiological and modeling evidence for focal transcranial electrical brain stimulation in humans: A basis for high-definition tDCS

机译:人体局灶性颅脑电脑刺激的生理和建模证据:高清TDCS的基础

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摘要

Transcranial Direct Current Stimulation (tDCS) is a non-invasive, low-cost, well-tolerated technique producing lasting modulation of cortical excitability. Behavioral and therapeutic outcomes of tDCS are linked to the targeted brain regions, but there is little evidence that current reaches the brain as intended. We aimed to: (1) validate a computational model for estimating cortical electric fields in human transcranial stimulation, and (2) assess the magnitude and spread of cortical electric field with a novel High-Definition tDCS (HD-tDCS) scalp montage using a 4×1-Ring electrode configuration. In three healthy adults, Transcranial Electrical Stimulation (TES) over primary motor cortex (M1) was delivered using the 4×1 montage (4× cathode, surrounding a single central anode; montage radius ~3 cm) with sufficient intensity to elicit a discrete muscle twitch in the hand. The estimated current distribution in M1 was calculated using the individualized MRI-based model, and compared with the observed motor response across subjects. The response magnitude was quantified with stimulation over motor cortex as well as anterior and posterior to motor cortex. In each case the model data were consistent with the motor response across subjects. The estimated cortical electric fields with the 4×1 montage were compared (area, magnitude, direction) for TES and tDCS in each subject.We provide direct evidence in humans that TES with a 4×1-Ring configuration can activate motor cortex and that current does not substantially spread outside the stimulation area. Computational models predict that both TES and tDCS waveforms using the 4×1-Ring configuration generate electric fields in cortex with comparable gross current distribution, and preferentially directed normal (inward) currents. The agreement of modeling and experimental data for both current delivery and focality support the use of the HD-tDCS 4×1-Ring montage for cortically targeted neuromodulation.
机译:经颅直流电刺激(tDCS)是一种无创,低成本,耐受性良好的技术,可持久调节皮层兴奋性。 tDCS的行为和治疗结果与目标脑区域有关,但是几乎没有证据表明电流可以按预期到达大脑。我们旨在:(1)验证用于评估人经颅刺激中皮层电场的计算模型,以及(2)使用新型高清晰度tDCS(HD-tDCS)头皮蒙太奇评估皮层电场的大小和传播。 4×1-环形电极配置。在三名健康成年人中,使用4×1蒙太奇(4×阴极,围绕一个中央阳极;蒙太奇半径为〜3 cm)以足够的强度引出经主运动皮层(M1)的经颅电刺激(TES)手中的肌肉抽搐。使用基于MRI的个体化模型计算M1中的估计电流分布,并将其与观察到的跨受试者的运动反应进行比较。通过对运动皮层以及运动皮层的前后刺激进行量化。在每种情况下,模型数据都与受试者的运动反应一致。我们比较了每个受试者中TES和tDCS的估计的4×1蒙太奇皮质电场(面积,大小,方向)。我们提供了直接证据,证明具有4×1-Ring配置的TES可以激活运动皮层,并且电流基本上不会在刺激区域外扩散。计算模型预测,使用4×1-Ring配置的TES和tDCS波形均会在皮质中产生具有可比总电流分布的电场,并优先定向法向(内向)电流。对于当前的传递和聚焦,建模和实验数据的一致性支持将HD-tDCS 4×1-Ring蒙太奇用于皮质靶向性神经调节。

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