Improving the stimulation selectivity in the human cochlea by strategic selection of the current return electrode

Ozan Cakmak, Saikat Pal, Mesut Sahin
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Abstract

The hearing quality provided by cochlear implants is poorly predicted by computer simulations. A high-resolution, human-specific cochlear anatomy is crucial for the accuracy of predictions. In this study, the standard multipolar stimulation paradigms are revisited and Rattay's Activating Function is evaluated in a finite element model of a realistic cochlear geometry that is based on μ-CT images and a commercial lead. The stimulation thresholds across the cochlear fibers were investigated for monopolar, bipolar, tripolar, and a novel (distant) bipolar electrode configuration using an active compartmental nerve model based on Schwartz-Eikhof-Frijns membrane dynamics. The results suggest that jumping of the stimulation point from the vicinity of the cathodic electrode to distant fibers, especially to the low frequency (apical) region of the basilar membrane that is most critical to hearing, occurs more often with monopolar stimulation than other electrode configurations. Bipolar and tripolar electrodes near the apical region did not provide a large threshold margin either. On the other hand, the threshold margin could be improved by proper selection of the electrode for the return current with bipolar stimulation, a technique named here as distant bipolar. The results also demonstrate the significance of having a realistic cochlear geometry in computer models for accurate interpretation for multipolar stimulation paradigms. More selective and focal stimulation may be possible by designing the electrode carrier shape and positioning of the current return electrodes more strategically. This is needed particularly in the apical turn of the cochlea where the current stimulation methods are the least selective.
通过对电流返回电极的策略性选择来提高人耳蜗的刺激选择性
人工耳蜗提供的听力质量很难通过计算机模拟来预测。高分辨率的人类耳蜗解剖对预测的准确性至关重要。在这项研究中,重新审视了标准的多极刺激范式,并在基于μ-CT图像和商业领先的现实耳蜗几何的有限元模型中评估了Rattay激活函数。利用基于Schwartz-Eikhof-Frijns膜动力学的活动隔室神经模型,研究了单极、双极、三极和新型(远端)双极电极配置下耳蜗纤维的刺激阈值。结果表明,刺激点从阴极电极附近跳到远处的纤维,特别是跳到对听力最关键的基底膜的低频(顶端)区域,在单极刺激下比在其他电极配置下更容易发生。靠近根尖区域的双极和三极电极也没有提供大的阈值边界。另一方面,阈值裕度可以通过双极刺激返回电流的电极的适当选择来提高,这种技术在这里被称为远双极。结果还表明,在计算机模型中具有真实的耳蜗几何形状对于多极刺激范式的准确解释具有重要意义。通过更有策略地设计电极载体形状和电流返回电极的位置,可以实现更具选择性和针对性的刺激。这是需要的,特别是在耳蜗的顶端转,目前的刺激方法是最少的选择性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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