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基于磁电纳米颗粒的无创脑刺激建模:一项计算研究。

Modelling of magnetoelectric nanoparticles for non-invasive brain stimulation: a computational study.

机构信息

CNR Consiglio Nazionale delle Ricerche, Istituto di Elettronica e di Ingegneria dell'Informazione e delle Telecomunicazioni IEIIT, 10129 Turin, Italy.

出版信息

J Neural Eng. 2022 Sep 23;19(5). doi: 10.1088/1741-2552/ac9085.

Abstract

Recently developed magnetoelectric nanoparticles (MENPs) provide a potential tool to enable different biomedical applications. They could be used to overcome the intrinsic constraints posed by traditional neurostimulation techniques, namely the invasiveness of electrodes-based techniques, the limited spatial resolution, and the scarce efficiency of magnetic stimulation.By using computational electromagnetic techniques, we modelled the behaviour of recently designed biocompatible MENPs injected, in the shape of clusters, in specific cortical targets of a highly detailed anatomical head model. The distributions and the tissue penetration of the electric fields induced by MENPs clusters in each tissue will be compared to the distributions induced by traditional transcranial magnetic stimulation (TMS) coils for non-invasive brain stimulation positioned on the left prefrontal cortex (PFC) of a highly detailed anatomical head model.MENPs clusters can induce highly focused electric fields with amplitude close to the neural activation threshold in all the brain tissues of interest for the treatment of most neuropsychiatric disorders. Conversely, TMS coils can induce electric fields of several tens of V mover a broad volume of the PFC, but they are unlikely able to efficiently stimulate even small volumes of subcortical and deep tissues.Our numerical results suggest that the use of MENPs for brain stimulation may potentially led to a future pinpoint treatment of neuropshychiatric disorders, in which an impairment of electric activity of specific cortical and subcortical tissues and networks has been assumed to play a crucial role.

摘要

最近开发的磁电纳米颗粒(MENPs)为实现不同的生物医学应用提供了一种潜在的工具。它们可以用来克服传统神经刺激技术固有的限制,即基于电极的技术的侵入性、有限的空间分辨率和磁刺激的效率低下。

我们使用计算电磁技术,对以簇的形式注入特定皮质目标的最近设计的生物相容 MENPs 的行为进行建模,该目标位于高度详细的解剖头部模型中。将比较 MENPs 簇在每个组织中诱导的电场分布和穿透与传统经颅磁刺激(TMS)线圈的分布,TMS 线圈位于高度详细的解剖头部模型的左前额叶皮质(PFC)上,用于非侵入性脑刺激。

MENPs 簇可以在治疗大多数神经精神疾病的所有感兴趣的脑组织中诱导接近神经激活阈值的高度聚焦电场。相比之下,TMS 线圈可以在 PFC 的广泛体积中诱导数十伏的电场,但它们不太可能有效地刺激甚至是皮质下和深部组织的小体积。

我们的数值结果表明,使用 MENPs 进行脑刺激可能会潜在地实现针对神经精神疾病的未来精准治疗,其中假设特定皮质和皮质下组织和网络的电活动障碍起着至关重要的作用。

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