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Temporal Interference Electrical Stimulation for Neuropsychiatric Disorders: Mechanisms, Applications, and Translational Perspectives

神经调节 神经科学 脑深部刺激 神经可塑性 刺激 脑刺激 经颅直流电刺激 神经影像学 医学 认知 心理学 功能性电刺激 大脑活动与冥想 神经生理学 光遗传学 磁刺激 情绪障碍 机制(生物学) 药物发现 突触可塑性 电生理学 原发性震颤 脑电刺激 神经网络 运动前神经元活动 功能连接 脑-机接口 心情 运动障碍 生物
作者
Y Y Zhang,Yue Tong,Xiangyang Zang,Yaqiong Zhao,Feng Wang,Xueliang Shang,Yanxue Xue
出处
期刊:International Journal of Molecular Sciences [Multidisciplinary Digital Publishing Institute]
卷期号:27 (9): 4023-4023
标识
DOI:10.3390/ijms27094023
摘要

Neuropsychiatric disorders are characterized by complex etiologies, widespread involvement of brain regions, and pronounced clinical heterogeneity, with core pathological mechanisms closely associated with abnormal activity in deep brain structures and their functional networks. Although current pharmacological therapies and conventional neuromodulation techniques have shown therapeutic benefits in certain conditions, they are generally limited by insufficient stimulation depth or the risks associated with invasive procedures. Temporal interference (TI) electrical stimulation has recently emerged as a non-invasive deep neuromodulation technique that generates low-frequency difference-envelope fields through high-frequency carrier signals, thereby enabling relatively precise modulation of deep brain regions while maintaining favorable safety and tolerability. This technique provides a novel technical pathway for precision intervention in neuropsychiatric disorders. In this review, we summarize the principles and technical characteristics of TI stimulation and highlight its recent applications in mood and stress-related disorders, cognitive impairment and neurodegenerative diseases, movement disorders, addiction, and disorders associated with dysregulated neural excitability. We integrate its potential mechanisms across multiple levels, including neural oscillations, deep-cortical network synchronization, reward and motivational circuits, synaptic plasticity and structural remodeling, excitatory-inhibitory balance, and gene and epigenetic regulation. Current evidence suggests that TI stimulation can modulate electrophysiological activity and may engage molecular and network-level processes relevant to functional improvement, although durable clinical benefits remain to be established. Although clinical translation remains challenged by parameter optimization, interindividual variability, and long-term safety evaluation, advances in computational modeling, multimodal neuroimaging, and closed-loop stimulation strategies are expected to facilitate its development. Overall, TI stimulation represents a promising non-invasive deep neuromodulation approach for mechanistic investigation and precision treatment of neuropsychiatric disorders.
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