神经调节
材料科学
压电
生物医学工程
聚焦超声
经颅直流电刺激
神经刺激
纳米技术
生物相容性
超声波
神经活动
纳米颗粒
纳米晶材料
涂层
神经科学
脑刺激
信号(编程语言)
联轴节(管道)
神经工程
计算机科学
电压
刺激
超声波电动机
无线
作者
Chengqian Cui,Xize Gao,Jingwei Li,Nianzhen Du,Qin Li,Huimin Li,Changxiang Yan,Mingjun Zhang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-12-19
卷期号:20 (1): 835-848
被引量:4
标识
DOI:10.1021/acsnano.5c15915
摘要
Piezoelectric nanotransducers driven by low-intensity focused ultrasound offer a nongenetic and spatially addressable strategy for neuromodulation, but their weak piezoelectric outputs and uncontrolled cellular internalization may result in limited efficacy. Here, we propose an aggregation-enhanced piezoelectric nanotransducer constructed by assembling 10 nm BaTiO 3 piezoelectric nanoparticles onto porous UiO-66 metal–organic framework (MOF) cores and coating them with conductive polydopamine, which produces submicrometer structures with strengthened electric-field coupling and reduced cellular uptake. Under 1 MHz low-intensity focused ultrasound, these nanotransducers have been demonstrated to be able to evoke voltage-gated ion channel-mediated calcium influx in differentiated PC12 cells with tunable neuromodulation efficiency. In rats, nanotransducer-mediated stimulation of the motor cortex elicits robust electrocorticographic (ECoG) responses accompanied by region-specific electromyographic (EMG) readouts from forelimb, hindlimb, and tail movements. c-Fos staining further verifies strong neuronal activation at stimualtion sites, reaching levels comparable to those induced by invasive electrode-based stimulation. Short- and long-term histological evaluations show no neuronal loss or increase in astrocytic or microglial densities, demonstrating favorable biocompatibility and neural safety. Overall, the proposed transgene-free and minimally invasive nanotransducer approach can generate effective ultrasound-driven neuromodulation, highlighting its potential as a viable alternative for therapeutic neuromodulation.
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