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时程干扰刺激靶向深脑的灵长类动物。

Temporal interference stimulation targets deep primate brain.

机构信息

CAS Key Laboratory of Mental Health, Institute of Psychology, Beijing, PR China; Department of Psychology, University of Chinese Academy of Sciences, Beijing, PR China.

Department of Neurosurgery, Beijing Tiantan Hospital, Capital Medical University, Beijing, PR China.

出版信息

Neuroimage. 2024 May 1;291:120581. doi: 10.1016/j.neuroimage.2024.120581. Epub 2024 Mar 18.

Abstract

Temporal interference (TI) stimulation, a novel non-invasive stimulation strategy, has recently been shown to modulate neural activity in deep brain regions of living mice. Yet, it is uncertain if this method is applicable to larger brains and whether the electric field produced under traditional safety currents can penetrate deep regions as observed in mice. Despite recent model-based simulation studies offering positive evidence at both macro- and micro-scale levels, the absence of electrophysiological data from actual brains hinders comprehensive understanding and potential application of TI. This study aims to directly measure the spatiotemporal properties of the interfered electric field in the rhesus monkey brain and to validate the effects of TI on the human brain. Two monkeys were involved in the measurement, with implantation of several stereo-electroencephalography (SEEG) depth electrodes. TI stimulation was applied to anesthetized monkeys using two pairs of surface electrodes at differing stimulation parameters. Model-based simulations were also conducted and subsequently compared with actual recordings. Additionally, TI stimulation was administered to patients with motor disorders to validate its effects on motor symptoms. Through the integration of computational electric field simulation with empirical measurements, it was determined that the temporally interfering electric fields in the deep central regions are capable of attaining a magnitude sufficient to induce a subthreshold modulation effect on neural signals. Additionally, an improvement in movement disorders was observed as a result of TI stimulation. This study is the first to systematically measure the TI electric field in living non-human primates, offering empirical evidence that TI holds promise as a more focal and precise method for modulating neural activities in deep regions of a large brain. This advancement paves the way for future applications of TI in treating neuropsychiatric disorders.

摘要

时变干扰(TI)刺激是一种新的非侵入性刺激策略,最近已被证明可以调节活鼠大脑深部区域的神经活动。然而,尚不确定该方法是否适用于更大的大脑,以及在传统安全电流下产生的电场是否可以像在小鼠中观察到的那样穿透深部区域。尽管最近的基于模型的模拟研究在宏观和微观尺度上都提供了积极的证据,但实际大脑中的电生理数据的缺乏阻碍了 TI 的全面理解和潜在应用。本研究旨在直接测量猕猴大脑中受干扰的电场的时空特性,并验证 TI 对人脑的影响。有两只猴子参与了测量,在大脑中植入了几个立体脑电图(SEEG)深度电极。使用两对表面电极以不同的刺激参数对麻醉猴子进行 TI 刺激。还进行了基于模型的模拟,随后将模拟结果与实际记录进行了比较。此外,还对患有运动障碍的患者进行了 TI 刺激,以验证其对运动症状的影响。通过计算电场模拟与经验测量的结合,确定在深部中央区域的时变干扰电场具有足够的幅度,能够对神经信号产生亚阈调制效应。此外,观察到 TI 刺激可改善运动障碍。这项研究首次在活体非人类灵长类动物中系统地测量了 TI 电场,为 TI 作为一种更聚焦、更精确的方法来调节大脑深部区域神经活动提供了经验证据。这一进展为 TI 在治疗神经精神疾病中的应用铺平了道路。

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