光遗传学
脑深部刺激
材料科学
神经调节
脑刺激
生物医学工程
刺激
超声波
微气泡
聚焦超声
神经科学
医学
生物
声学
物理
病理
疾病
帕金森病
作者
Wenliang Wang,Kai Wing Kevin Tang,Ilya Pyatnitskiy,Xiangping Liu,Xi Shi,David Huo,Jinmo Jeong,Thomas Wynn,Arjun Sangani,Andrew J. Baker,Ju-Chun Hsieh,Anakaren Romero Lozano,Brinkley Artman,Lief E. Fenno,Vivek Buch,Huiliang Wang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2023-12-14
卷期号:17 (24): 24936-24946
被引量:9
标识
DOI:10.1021/acsnano.3c06577
摘要
Remote and genetically targeted neuromodulation in the deep brain is important for understanding and treatment of neurological diseases. Ultrasound-triggered mechanoluminescent technology offers a promising approach for achieving remote and genetically targeted brain modulation. However, its application has thus far been limited to shallow brain depths due to challenges related to low sonochemical reaction efficiency and restricted photon yields. Here we report a cascaded mechanoluminescent nanotransducer to achieve efficient light emission upon ultrasound stimulation. As a result, blue light was generated under ultrasound stimulation with a subsecond response latency. Leveraging the high energy transfer efficiency of focused ultrasound in brain tissue and the high sensitivity to ultrasound of these mechanoluminescent nanotransducers, we are able to show efficient photon delivery and activation of ChR2-expressing neurons in both the superficial motor cortex and deep ventral tegmental area after intracranial injection. Our liposome nanotransducers enable minimally invasive deep brain stimulation for behavioral control in animals via a flexible, mechanoluminescent sono-optogenetic system.
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