脑深部刺激
神经科学
丘脑底核
帕金森病
医学
局部场电位
心理学
疾病
内科学
作者
Wookjin Shin,Yeongdo Lee,Jueun Lim,Y. B. Lee,David Lah,Somin Lee,Jung-uk Lee,Ri Yu,Phil Hyu Lee,Jae‐Hyun Lee,Minsuk Kwak,Jinwoo Cheon
出处
期刊:Nano Letters
[American Chemical Society]
日期:2023-12-29
卷期号:24 (1): 270-278
被引量:2
标识
DOI:10.1021/acs.nanolett.3c03899
摘要
Here, we introduce the magneto-mechanical-genetic (MMG)-driven wireless deep brain stimulation (DBS) using magnetic nanostructures for therapeutic benefits in the mouse model of Parkinson's disease (PD). Electrical DBS of the subthalamic nucleus (STN) is an effective therapy for mitigating Parkinson's motor symptoms. However, its broader application is hampered by the requirement for implanted electrodes and the lack of anatomical and cellular specificity. Using the nanoscale magnetic force actuators (m-Torquer), which deliver torque force under rotating magnetic fields to activate pre-encoded Piezo1 ion channels on target neurons, our system enables wireless and STN-specific DBS without implants, addressing key unmet challenges in the DBS field. In both late- and early-stage PD mice, MMG-DBS significantly improved locomotor activity and motor balance by 2-fold compared to untreated PD mice. Moreover, MMG-DBS enabled sustained therapeutic effects. This approach provides a non-invasive and implant-free DBS with cellular targeting capability for the effective treatment of Parkinsonian symptoms.
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