Closed-form expressions for the directions of maximum modulation depth in temporal interference electrical brain stimulation.

IF 3.8
Mariano Fernández-Corazza, Sergei Turovets, Carlos H Muravchik
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Abstract

Objective.In temporal interference (TI) transcranial electrical stimulation (tES), an emerging brain stimulation technique, the interference of two high-frequency currents with a small frequency difference is used to target specific brain regions with better focality than in standard tES. While the magnitude of the modulation depth has been previously investigated, an explicit formula for the direction in which this modulation is maximized has been lacking. This work provides a novel closed-form analytical expression for the orientation of maximum modulation depth in TI tES. We also found a secondary orientation where the modulation depth has a local maximum. Moreover, we provide closed-form analytical formulas for this orientation as well as for the modulation depth along this orientation. To our knowledge, these closed-form expressions and the presence of the secondary maximum have not been previously reported.Approach.We derive compact analytical expressions and validate them through comprehensive computational simulations using a realistic human head model. We also provide a complete analytical derivation of the widely used formula for the maximum modulation depth magnitude stated in Grossman et al, 2017.Main results.Our simulations demonstrate that the modulation depth predicted with our new analytical direction formula is indeed the maximum compared to other directions. The derived closed-form expression provides a faster and more accurate alternative to iterative numerical optimization methods used in previous studies to estimate this direction. Furthermore, we found that due to interference in 3D, the modulation depth along the secondary maximum orientation can be of similar strength to the maximum modulation depth intensity when interfering electric field vectors are significantly misaligned. Finally, we show that by modifying the ratio of the injected current strengths, it is possible to steer these directions and fine-tune the stimulation along a desired direction of interest.Significance.Overall, this work provides a detailed treatment of TI electric fields in 3D. The presented closed-form expressions for the directions of maximum and secondary maximum modulation depths are relevant for the better interpretation of both simulated and experimental results in TI studies by allowing comparison with neuronal orientations in the brain.

时间干扰脑电刺激下最大调制深度方向的封闭表达式。
目的:颞叶干扰经颅电刺激(temporal interference transcranial electrical stimulation, tES)是一种新兴的脑刺激技术,利用两种频率差较小的高频电流的干扰来靶向特定的脑区,其聚焦性优于标准te。虽然以前已经研究了调制深度的大小,但缺乏一个明确的调制最大化方向的公式。本文为TI - tES中最大调制深度的取向提供了一种新颖的封闭解析表达式。我们还发现了调制深度有局部最大值的二次定向。此外,我们还提供了这个方向以及沿这个方向的调制深度的封闭形式的解析公式。据我们所知,这些封闭形式的表达式和次级极大值的存在以前没有报道过。方法:我们推导了紧凑的解析表达式,并通过使用现实的人类头部模型进行全面的计算模拟来验证它们。我们还提供了Grossman et al, 2017中所述的广泛使用的最大调制深度幅度公式的完整解析推导。主要结果:与其他方向相比,用新的解析方向公式预测的调制深度确实是最大的。推导出的封闭表达式比以往研究中使用的迭代数值优化方法提供了一种更快、更准确的方向估计方法。此外,我们发现,由于三维干扰,当干扰电场矢量明显错位时,沿次最大方向的调制深度可以与最大调制深度强度相似。最后,我们表明,通过修改注入电流强度的比例,可以控制这些方向,并沿着期望的兴趣方向微调刺激。意义:总的来说,这项工作提供了TI电场在3D中的详细处理。所提出的最大和次最大调制深度方向的封闭形式表达式,通过与大脑中的神经元方向进行比较,可以更好地解释TI研究中的模拟和实验结果。
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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