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电磁包裹刺激:使用时相干扰电磁波的微创脑深部刺激。

EMvelop stimulation: minimally invasive deep brain stimulation using temporally interfering electromagnetic waves.

机构信息

Department of Electrical and Computer Engineering, Rice University, Houston, TX, United States of America.

Menninger Department of Psychiatry and Behavioral Sciences, Baylor College of Medicine, Houston, TX, United States of America.

出版信息

J Neural Eng. 2022 Jul 4;19(4). doi: 10.1088/1741-2552/ac7894.

Abstract

Recently, the temporal interference stimulation (TIS) technique for focal noninvasive deep brain stimulation (DBS) was reported. However, subsequent computational modeling studies on the human brain have shown that while TIS achieves higher focality of electric fields than state-of-the-art methods, further work is needed to improve the stimulation strength. Here, we investigate the idea of EMvelop stimulation, a minimally invasive DBS setup using temporally interfering gigahertz (GHz) electromagnetic (EM) waves. At GHz frequencies, we can create antenna arrays at the scale of a few centimeters or less that can be endocranially implanted to enable longitudinal stimulation and circumvent signal attenuation due to the scalp and skull. Furthermore, owing to the small wavelength of GHz EM waves, we can optimize both amplitudes and phases of the EM waves to achieve high intensity and focal stimulation at targeted regions within the safety limit for exposure to EM waves.We develop a simulation framework investigating the propagation of GHz EM waves generated by line current antenna elements and the corresponding heat generated in the brain tissue. We propose two optimization flows to identify antenna current amplitudes and phases for either maximal intensity or maximal focality transmission of the interfering electric fields with EM waves safety constraint.A representative result of our study is that with two endocranially implanted arrays of size4.2 cm×4.7 cmeach, we can achieve an intensity of 12 V mwith a focality of3.6 cmat a target deep in the brain tissue.In this proof-of-principle study, we show that the idea of EMvelop stimulation merits further investigation as it can be a minimally invasive way of stimulating deep brain targets and offers benefits not shared by prior methodologies of electrical or magnetic stimulation.

摘要

最近,有报道称采用时变干扰刺激(TIS)技术实现了局灶性非侵入性深部脑刺激(DBS)。然而,随后对人类大脑的计算建模研究表明,虽然 TIS 实现了比现有方法更高的电场聚焦性,但仍需要进一步工作来提高刺激强度。在这里,我们研究了 EMvelop 刺激的想法,这是一种使用时变千兆赫(GHz)电磁(EM)波的微创 DBS 装置。在 GHz 频率下,我们可以创建几厘米或更小尺寸的天线阵列,可以进行颅内植入,以实现纵向刺激,并避免由于头皮和颅骨导致的信号衰减。此外,由于 GHz EM 波的小波长,我们可以优化 EM 波的幅度和相位,以在安全限制范围内的目标区域实现高强度和聚焦刺激。我们开发了一个模拟框架,研究由线电流天线元件产生的 GHz EM 波的传播以及在脑组织中产生的相应热。我们提出了两种优化流程,以确定天线电流幅度和相位,以实现干扰电场的最大强度或最大聚焦传输,同时满足 EM 波安全限制。我们研究的一个代表性结果是,通过两个大小为 4.2 cm×4.7 cm 的颅内植入阵列,我们可以在大脑组织深处的目标位置实现 12 V/m 的强度和 3.6 cm 的聚焦度。在这项原理验证研究中,我们表明 EMvelop 刺激的想法值得进一步研究,因为它可以作为一种微创刺激深部大脑靶标的方法,并且提供了先前电或磁刺激方法所没有的益处。

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