Paknahad Javad, Machnoor Manjunath, Lazzi Gianluca, Gokoffski Kimberly K
Department of Electrical and Computer Engineering at the University of Southern California Los Angeles, CA 90033 USA.
Department of Electrical and Computer Engineering at the University of Southern California Los Angeles, CA 90033 USA. He is now with Skyworks Solutions Inc., 1845 Ellis Blvd NW, Cedar Rapids, IA 52405 USA.
IEEE J Electromagn RF Microw Med Biol. 2022 Sep;6(3):321-330. doi: 10.1109/jerm.2022.3165171. Epub 2022 May 11.
Significant interest exists in the potential of electric field (EF) application to be developed into a technology to direct neuronal regeneration. In vitro, EFs were shown to direct the growth of retinal ganglion cell (RGC) axons, the neurons that make up the optic nerve. As larger EF gradients were shown to direct more efficient growth, investigations into the most effective stimulation strategies that can generate the greatest voltage gradient are needed before EF application can be developed into a technology to direct optic nerve regeneration in vivo. We performed ex-vivo experiments to compare the ability of different electrode materials, platinum vs. tungsten, to generate an EF gradient along the rat optic nerve. Platinum electrodes at both source and ground positions were found to generate the greatest voltage gradient along the optic nerve. Experimental results were used to inform an equivalent computational model of the optic nerve, which was subsequently employed to predict more effective electrode pair combinations. Our results confirmed that the platinum-platinum electrode pair generates the maximum voltage gradient which are highly dependent on electrode size and electrode-electrolyte interfaces. This computational platform can serve as a foundation for the development of electrical stimulation therapies for nerve regeneration.
人们对将电场(EF)应用开发成一种指导神经元再生的技术的潜力有着浓厚兴趣。在体外,电场已被证明能引导视网膜神经节细胞(RGC)轴突的生长,视网膜神经节细胞是构成视神经的神经元。由于更大的电场梯度能引导更有效的生长,在将电场应用开发成一种指导体内视神经再生的技术之前,需要研究能产生最大电压梯度的最有效刺激策略。我们进行了体外实验,比较不同电极材料(铂与钨)沿大鼠视神经产生电场梯度的能力。发现在源极和接地位置均使用铂电极时,沿视神经产生的电压梯度最大。实验结果被用于构建视神经的等效计算模型,该模型随后被用于预测更有效的电极对组合。我们的结果证实,铂 - 铂电极对产生的电压梯度最大,且高度依赖于电极尺寸和电极 - 电解质界面。这个计算平台可为神经再生电刺激疗法的开发奠定基础。