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经颅颞部干扰刺激在人类中的应用前景:一项计算研究。

Prospects for transcranial temporal interference stimulation in humans: A computational study.

机构信息

Department of Electrical and Computer Engineering, Northeastern University, Boston, USA.

Department of Electrical and Computer Engineering, Northeastern University, Boston, USA.

出版信息

Neuroimage. 2019 Nov 15;202:116124. doi: 10.1016/j.neuroimage.2019.116124. Epub 2019 Aug 29.

Abstract

Transcranial alternating current stimulation (tACS) is a noninvasive method used to modulate activity of superficial brain regions. Deeper and more steerable stimulation could potentially be achieved using transcranial temporal interference stimulation (tTIS): two high-frequency alternating fields interact to produce a wave with an envelope frequency in the range thought to modulate neural activity. Promising initial results have been reported for experiments with mice. In this study we aim to better understand the electric fields produced with tTIS and examine its prospects in humans through simulations with murine and human head models. A murine head finite element model was used to simulate previously published experiments of tTIS in mice. With a total current of 0.776 mA, tTIS electric field strengths up to 383 V/m were reached in the modeled mouse brain, affirming experimental results indicating that suprathreshold stimulation is possible in mice. Using a detailed anisotropic human head model, tTIS was simulated with systematically varied electrode configurations and input currents to investigate how these parameters influence the electric fields. An exhaustive search with 88 electrode locations covering the entire head (146M current patterns) was employed to optimize tTIS for target field strength and focality. In all analyses, we investigated maximal effects and effects along the predominant orientation of local neurons. Our results showed that it was possible to steer the peak tTIS field by manipulating the relative strength of the two input fields. Deep brain areas received field strengths similar to conventional tACS, but with less stimulation in superficial areas. Maximum field strengths in the human model were much lower than in the murine model, too low to expect direct stimulation effects. While field strengths from tACS were slightly higher, our results suggest that tTIS is capable of producing more focal fields and allows for better steerability. Finally, we present optimal four-electrode current patterns to maximize tTIS in regions of the pallidum (0.37 V/m), hippocampus (0.24 V/m) and motor cortex (0.57 V/m).

摘要

经颅交流电刺激(tACS)是一种用于调节脑表面区域活动的非侵入性方法。使用经颅时变干扰刺激(tTIS)可以实现更深、更可控的刺激:两个高频交变场相互作用,产生一个包络频率在被认为调节神经活动的范围内的波。在与小鼠的实验中已经报道了有希望的初步结果。在这项研究中,我们旨在通过使用鼠和人头模型进行模拟来更好地了解 tTIS 产生的电场,并检查其在人体中的应用前景。使用鼠头有限元模型模拟了先前发表的 tTIS 在小鼠中的实验。在模拟的鼠脑中,总电流为 0.776 mA 时,达到了高达 383 V/m 的 tTIS 电场强度,证实了实验结果表明,在小鼠中可以进行超阈值刺激。使用详细的各向异性人头模型,系统地改变电极配置和输入电流来模拟 tTIS,以研究这些参数如何影响电场。采用 88 个电极位置(覆盖整个头部)的详尽搜索(146M 电流模式),以优化目标场强和聚焦性的 tTIS。在所有分析中,我们研究了沿局部神经元主要方向的最大和最大影响。我们的结果表明,可以通过操纵两个输入场的相对强度来引导 tTIS 的峰值场。深脑区域接收到与传统 tACS 相似的场强,但表面区域的刺激较少。人体模型中的最大场强远低于鼠模型,不足以期望直接刺激效果。虽然 tACS 的场强略高,但我们的结果表明,tTIS 能够产生更聚焦的场,并具有更好的可控性。最后,我们提出了最佳的四电极电流模式,以最大限度地提高苍白球(0.37 V/m)、海马(0.24 V/m)和运动皮层(0.57 V/m)的 tTIS。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f363/6819277/aa69b4989e17/nihms-1539980-f0001.jpg

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