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Modeling of a Segmented Electrode for Desynchronizing Deep Brain Stimulation

机译:用于使深部脑刺激不同步的分段电极的建模

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摘要

Deep brain stimulation (DBS) is an effective therapy for medically refractory movement disorders like Parkinson’s disease. The electrodes, implanted in the target area within the human brain, generate an electric field which activates nerve fibers and cell bodies in the vicinity. Even though the different target nuclei display considerable differences in their anatomical structure, only few types of electrodes are currently commercially available. It is desirable to adjust the electric field and in particular the volume of tissue activated around the electrode with respect to the corresponding target nucleus in a such way that side effects can be reduced. Furthermore, a more selective and partial activation of the target structure is desirable for an optimal application of novel stimulation strategies, e.g., coordinated reset neuromodulation. Hence we designed a DBS electrode with a segmented design allowing a more selective activation of the target structure. We created a finite element model (FEM) of the electrode and analyzed the volume of tissue activated for this electrode design. The segmented electrode activated an area in a targeted manner, of which the dimension and position relative to the electrode could be controlled by adjusting the stimulation parameters for each electrode contact. According to our computational analysis, this directed stimulation might be superior with respect to the occurrence of side effects and it enables the application of coordinated reset neuromodulation under optimal conditions.
机译:深部脑刺激(DBS)是治疗难治性运动障碍(如帕金森氏病)的有效疗法。植入人脑目标区域的电极会产生电场,从而激活附近的神经纤维和细胞体。即使不同的靶核在解剖结构上显示出很大的差异,但目前仅有几种类型的电极可商购。期望以可以减少副作用的方式来调节电场,特别是相对于相应的靶核调节在电极周围激活的组织的体积。此外,对于新型刺激策略(例如,协调的复位神经调节)的最佳应用,期望靶结构的选择性更高且部分活化。因此,我们设计了具有分段设计的DBS电极,从而可以更选择性地激活目标结构。我们创建了电极的有限元模型(FEM),并分析了为此电极设计激活的组织的体积。分段的电极有针对性地激活了一个区域,该区域相对于电极的尺寸和位置可以通过调整每个电极接触的刺激参数来控制。根据我们的计算分析,这种定向刺激相对于副作用的发生可能是更好的,并且它可以在最佳条件下应用协调的复位神经调节。

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