Institute of Electrical Engineering, Yanshan University, Qinhuangdao, 066004, China; Departments of Ophthalmology, Departments of Neuroscience and Physiology, NYU Langone Health, New York, 10016, USA.
Institute of Electrical Engineering, Yanshan University, Qinhuangdao, 066004, China.
Neuroimage. 2020 May 1;211:116597. doi: 10.1016/j.neuroimage.2020.116597. Epub 2020 Feb 1.
Ultrasound-mediated neuromodulation is emerging as a key technology for targeted noninvasive brain stimulation, but key insights into its effects and dose-response characteristics are still missing. The purpose of this study is to systematically evaluate the effect of low-intensity transcranial ultrasound stimulation (TUS) on complementary aspects of cerebral hemodynamic. We simultaneously record the EMG signal, local field potential (LFP) and cortical blood flow (CBF) using electrophysiological recording and laser speckle contrast imaging under ultrasound stimulation to simultaneously monitor motor responses, neural activities and hemodynamic changes during the application of low-intensity TUS in mouse motor cortex, using excitation pulses which caused whisker and tail movement. Our experimental results demonstrate interdependent TUS-induced motor, neural activity and hemodynamic responses that peak approximately 0.55s, 1.05s and 2.5s after TUS onset, respectively, and show a linear coupling relationship between their respective varying response amplitudes to repeated stimuli. We also found monotonic dose-response parametric relations of the CBF peak value increase as a function of stimulation intensity and duration, while stimulus duty-cycle had only a weak effect on peak responses. These findings demonstrate that TUS induces a change in cortical hemodynamics and LSCI provide a high temporal resolution view of these changes.
超声介导的神经调节技术正在成为靶向无创脑刺激的关键技术,但对于其作用和剂量反应特征的关键见解仍然缺失。本研究旨在系统评估低强度经颅超声刺激(TUS)对脑血流的补充方面的影响。我们使用电生理记录和激光散斑对比成像,在超声刺激下同时记录肌电图信号、局部场电位(LFP)和皮质血流(CBF),以监测低强度 TUS 在小鼠运动皮层应用过程中的运动反应、神经活动和血流变化,使用引发胡须和尾巴运动的激发脉冲。我们的实验结果表明,TUS 诱导的运动、神经活动和血流响应具有相互依存的关系,分别在 TUS 开始后约 0.55s、1.05s 和 2.5s 达到峰值,并且它们各自的响应幅度与重复刺激之间呈线性耦合关系。我们还发现 CBF 峰值增加与刺激强度和持续时间呈单调的剂量反应参数关系,而刺激占空比对峰值响应的影响较弱。这些发现表明 TUS 诱导皮质血流动力学发生变化,LSCI 提供了这些变化的高时间分辨率视图。