脑深部刺激
神经科学
癫痫
海马体
神经调节
材料科学
机械敏感通道
无线
刺激
计算机科学
医学
离子通道
心理学
电信
帕金森病
病理
疾病
受体
内科学
作者
Yusheng Zhang,Xiaoyang Wu,Jie Ding,Borui Su,Zhihong Chen,Zhanwen Xiao,Chengheng Wu,Dan Wei,Jing Sun,Fang Luo,Huabing Yin,Hongsong Fan
出处
期刊:ACS Nano
[American Chemical Society]
日期:2023-08-02
卷期号:17 (16): 15796-15809
被引量:14
标识
DOI:10.1021/acsnano.3c03661
摘要
Electrical deep brain stimulation (DBS) is a top priority for pharmacoresistant epilepsy treatment, while less-invasive wireless DBS is an urgent priority but challenging. Herein, we developed a conceptual wireless DBS platform to realize local electric stimulation via 1D-structured magnetoelectric Fe3O4@BaTiO3 nanochains (FBC). The FBC was facilely synthesized via magnetic-assisted interface coassembly, possessing a higher electrical output by inducing larger local strain from the anisotropic structure and strain coherence. Subsequently, wireless magnetoelectric neuromodulation in vitro was synergistically achieved by voltage-gated ion channels and to a lesser extent, the mechanosensitive ion channels. Furthermore, FBC less-invasively injected into the anterior nucleus of the thalamus (ANT) obviously inhibited acute and continuous seizures under magnetic loading, exhibiting excellent therapeutic effects in suppressing both high voltage electroencephalogram signals propagation and behavioral seizure stage and neuroprotection of the hippocampus mediated via the Papez circuit similar to conventional wired-in DBS. This work establishes an advanced antiepilepsy strategy and provides a perspective for other neurological disorder treatment.
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