Yousif Nada, Bayford Richard, Bain Peter G, Liu Xuguang
Department of Clinical Neuroscience, Division of Neuroscience and Mental Health, Faculty of Medicine, Imperial College London, UK.
Brain Res Bull. 2007 Oct 19;74(5):361-8. doi: 10.1016/j.brainresbull.2007.07.007. Epub 2007 Jul 26.
Deep brain stimulation (DBS) is an increasingly used clinical treatment for various neurological disorders, particularly movement disorders such as Parkinson's disease. However, the mechanism by which these high frequency electrical pulses act on neuronal activity is unclear. Once the stimulating electrode is placed in situ, an electrode-brain interface (EBI) is created. To compensate for the lack of studies on the effects of this generic depth EBI on therapeutic DBS, we constructed a three-dimensional computational model of the EBI using the finite element method, in which the structural details and biophysical properties of the EBI are preserved. Our investigations focus on the peri-electrode space as a significant element of the EBI, and its physiological and pathological modulation, in particular by brain pulsation and giant cell formation. We also consider the difference between the current fields induced by different configurations of the quadripolar electrode contacts. These results quantitatively demonstrated that the peri-electrode space is a significant element of the EBI and its biophysical properties are modulated by brain pulsation and giant cell formation, as well as by the choice of electrode contact configuration. This study leads to a fuller understanding of the EBI and its effects on the crossing electric currents, and will ultimately lead to optimisation of the therapeutic effects of DBS.
深部脑刺激(DBS)是一种越来越多地用于治疗各种神经系统疾病,特别是帕金森病等运动障碍的临床治疗方法。然而,这些高频电脉冲作用于神经元活动的机制尚不清楚。一旦刺激电极原位放置,就会形成电极-脑界面(EBI)。为了弥补对这种一般深度EBI对治疗性DBS影响研究的不足,我们使用有限元方法构建了EBI的三维计算模型,其中保留了EBI的结构细节和生物物理特性。我们的研究重点是作为EBI重要组成部分的电极周围空间及其生理和病理调节,特别是脑搏动和巨细胞形成所引起的调节。我们还考虑了四极电极触点不同配置所诱导的电流场之间的差异。这些结果定量地证明了电极周围空间是EBI的一个重要组成部分,其生物物理特性受到脑搏动、巨细胞形成以及电极触点配置选择的调节。这项研究有助于更全面地理解EBI及其对交叉电流的影响,并最终实现DBS治疗效果的优化。