神经科学
生物
刺激
局部场电位
电场
海马体
干扰(通信)
包络线(雷达)
电刺激
脑深部刺激
物理
计算机科学
频道(广播)
内科学
计算机网络
电信
雷达
量子力学
医学
疾病
帕金森病
作者
Nir Grossman,David Bono,Nina Dedic,Suhasa B. Kodandaramaiah,Andrii Rudenko,Ho-Jun Suk,Antonino M. Cassarà,Esra Neufeld,Niels Kuster,Li-Huei Tsai,Álvaro Pascual‐Leone,Edward S. Boyden
出处
期刊:Cell
[Cell Press]
日期:2017-06-01
卷期号:169 (6): 1029-1041.e16
被引量:786
标识
DOI:10.1016/j.cell.2017.05.024
摘要
We report a noninvasive strategy for electrically stimulating neurons at depth. By delivering to the brain multiple electric fields at frequencies too high to recruit neural firing, but which differ by a frequency within the dynamic range of neural firing, we can electrically stimulate neurons throughout a region where interference between the multiple fields results in a prominent electric field envelope modulated at the difference frequency. We validated this temporal interference (TI) concept via modeling and physics experiments, and verified that neurons in the living mouse brain could follow the electric field envelope. We demonstrate the utility of TI stimulation by stimulating neurons in the hippocampus of living mice without recruiting neurons of the overlying cortex. Finally, we show that by altering the currents delivered to a set of immobile electrodes, we can steerably evoke different motor patterns in living mice.
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