Mukesh S, Blake D T, McKinnon B J, Bhatti P T
IEEE Trans Neural Syst Rehabil Eng. 2017 Aug;25(8):1353-1362. doi: 10.1109/TNSRE.2016.2624275. Epub 2016 Nov 2.
This study models induced electric fields, and their gradient, produced by pulsatile current stimulation of submillimeter inductors for cochlear implantation. Using finite-element analysis, the lower chamber of the cochlea, scala tympani, is modeled as a cylindrical structure filled with perilymph bounded by tissue, bone, and cochlear neural elements. Single inductors as well as an array of inductors are modeled. The coil strength (~100 nH) and excitation parameters (peak current of 1-5 A, voltages of 16-20 V) are based on a formative feasibility study conducted by our group. In that study, intracochlear micromagnetic stimulation achieved auditory activation as measured through the auditory brainstem response in a feline model. With respect to the finite element simulations, axial symmetry of the inductor geometry is exploited to improve computation time. It is verified that the inductor coil orientation greatly affects the strength of the induced electric field and thereby the ability to affect the transmembrane potential of nearby neural elements. Furthermore, upon comparing an array of micro-inductors with a typical multi-site electrode array, magnetically excited arrays retain greater focus in terms of the gradient of induced electric fields. Once combined with further in vivo analysis, this modeling study may enable further exploration of the mechanism of magnetically induced, and focused neural stimulation.
本研究对用于人工耳蜗植入的亚毫米级电感器的脉动电流刺激所产生的感应电场及其梯度进行了建模。利用有限元分析,将耳蜗的下腔,即鼓阶,建模为一个充满外淋巴的圆柱形结构,其边界为组织、骨骼和耳蜗神经元。对单个电感器以及电感器阵列进行了建模。线圈强度(约100 nH)和激励参数(峰值电流为1 - 5 A,电压为16 - 20 V)基于我们团队进行的一项初步可行性研究。在该研究中,通过猫模型中的听觉脑干反应测量发现,耳蜗内微磁刺激实现了听觉激活。关于有限元模拟,利用电感器几何形状的轴对称性来缩短计算时间。已证实电感器线圈的方向极大地影响感应电场的强度,进而影响影响附近神经元跨膜电位的能力。此外,在将微电感器阵列与典型的多部位电极阵列进行比较时,磁激发阵列在感应电场梯度方面保持了更强的聚焦性。一旦与进一步的体内分析相结合,这项建模研究可能有助于进一步探索磁诱导聚焦神经刺激的机制。