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Computational Study on Subdural Cortical Stimulation - The Influence of the Head Geometry Anisotropic Conductivity and Electrode Configuration

机译:硬膜下皮层刺激的计算研究-头部几何形状各向异性电导率和电极配置的影响

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摘要

Subdural cortical stimulation (SuCS) is a method used to inject electrical current through electrodes beneath the dura mater, and is known to be useful in treating brain disorders. However, precisely how SuCS must be applied to yield the most effective results has rarely been investigated. For this purpose, we developed a three-dimensional computational model that represents an anatomically realistic brain model including an upper chest. With this computational model, we investigated the influence of stimulation amplitudes, electrode configurations (single or paddle-array), and white matter conductivities (isotropy or anisotropy). Further, the effects of stimulation were compared with two other computational models, including an anatomically realistic brain-only model and the simplified extruded slab model representing the precentral gyrus area. The results of voltage stimulation suggested that there was a synergistic effect with the paddle-array due to the use of multiple electrodes; however, a single electrode was more efficient with current stimulation. The conventional model (simplified extruded slab) far overestimated the effects of stimulation with both voltage and current by comparison to our proposed realistic upper body model. However, the realistic upper body and full brain-only models demonstrated similar stimulation effects. In our investigation of the influence of anisotropic conductivity, model with a fixed ratio (1∶10) anisotropic conductivity yielded deeper penetration depths and larger extents of stimulation than others. However, isotropic and anisotropic models with fixed ratios (1∶2, 1∶5) yielded similar stimulation effects. Lastly, whether the reference electrode was located on the right or left chest had no substantial effects on stimulation.
机译:硬膜下皮质刺激(SuCS)是一种用于通过硬脑膜下的电极注入电流的方法,已知可用于治疗脑部疾病。但是,很少研究如何应用SuCS才能产生最有效的结果。为此,我们开发了三维计算模型,该模型代表了包括上胸部在内的解剖学现实的大脑模型。使用此计算模型,我们研究了刺激幅度,电极配置(单个或桨状阵列)和白质电导率(各向同性或各向异性)的影响。此外,将刺激的效果与其他两个计算模型进行了比较,包括解剖学上仅现实的脑模型和代表中央前回区域的简化挤压平板模型。电压刺激的结果表明,由于使用了多个电极,因此桨板阵列具有协同效应。然而,单个电极在电流刺激下效率更高。与我们提出的逼真的上身模型相比,传统模型(简化的挤压平板)大大高估了电压和电流刺激的效果。但是,现实的上半身和仅大脑的模型显示出相似的刺激效果。在我们对各向异性电导率的影响的研究中,具有固定比率(1∶10)的各向异性电导率模型比其他模型产生了更深的穿透深度和更大程度的刺激。然而,固定比例(1∶2、1∶5)的各向同性和各向异性模型产生了相似的刺激效果。最后,无论参比电极位于右胸部还是左胸部,对刺激均无实质性影响。

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