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Direct Modulation of High-Frequency Neural Oscillations in the Auditory Cortex Through Electrical Microstimulation Generated by PVDF Sensors

机译:通过PVDF传感器产生的电微刺激直接调节听觉皮层中的高频神经振荡。

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In this work, the effects of biomimetic ultrasonic signals on the primary auditory cortex of mammals through deep brain electrical stimulation have been investigated. Ultrasonic (US) signals were generated by biomimetic sonar which includes two polyvinylidene fluoride transducers, conditioning electronic circuits, and implanted microelectrodes to mimic rat communication processes. The electrical stimulation signal, obtained by mechanical to electrical energy conversion, modulates the neural functional state, increasing the high oscillations in beta and gamma content when the ultrasound frequency matched with the relative tonotopic area. A principal component analysis was performed in order to classify ECoG signals according to the incoming stimuli. Frequency analysis allowed the investigation of the relationship between the processing of US stimuli and the spatiotemporal neural activity. Results demonstrate that the sonar system, according to the information carried out by ultrasounds and through microstimulation, selectively modulated the cortical activity into the primary auditory cortex.
机译:在这项工作中,已经研究了仿生超声信号通过深部脑电刺激对哺乳动物初级听觉皮层的影响。超声波(US)信号是由仿生声纳产生的,该声纳包括两个聚偏二氟乙烯换能器,调节电子电路和植入的微电极以模仿大鼠的通讯过程。通过机械能到电能的转换获得的电刺激信号可以调节神经功能状态,从而在超声频率与相对无声区域相匹配时增加β和γ含量的高振荡。为了根据进入的刺激对ECoG信号进行分类,进行了主成分分析。频率分析可以研究美国刺激的处理和时空神经活动之间的关系。结果表明,声纳系统根据超声和微刺激所提供的信息,选择性地将皮层活动调节到初级听觉皮层中。

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