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Self-powered, wireless-control, neural-stimulating electronic skin for in vivo characterization of synaptic plasticity

机译:自动,无线控制,神经刺激电子皮肤,用于突触可塑性的体内表征

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摘要

Synaptic plasticity underlies brain changes when learning or memory takes place. Long-term memory requires modification of synaptic strengths between neurons. The characterization of the synaptic changes therefore reflects the long term storage of information in the brain structures. Traditionally, electrical neural-stimulating technique for characterizing synaptic plasticity requires external power source and steer-by-wire system. Here, a novel self-powered, wireless-control, neural-stimulating electronic skin (e-skin) for in vivo characterization of synaptic plasticity has been presented. The e-skin is composed of flexible photosensitive-triboelectric MAPbI(3)/PDMS units. The outputting electrical neural-stimulating signal of the e-skin is generated by human body activities without any batteries, and the neural-modulation can be controlled by photo illumination on/off as wireless switch. To demonstrate the application of the e-skin in characterizing synaptic changes, we connect the device to the hippocampus of the mouse brain. The e-skin neural stimulating in the CA3 of mouse hippocampus and simultaneous recording field excitatory postsynaptic potentials (fEPSP) in the CA1 demonstrate that the e-skin can successfully elicit post-synaptic responses for in vivo characterization of synaptic plasticity. This self-powered photo-operate e-skin can provoke a new research direction for realizing battery-free, wireless-control, electrical neural-stimulating systems with implications in biomedical engineering and neural science.
机译:突触可塑性在学习或记忆发生时脑改变。长期记忆需要修改神经元之间的突触强度。因此,突触变化的表征反映了脑结构中的信息的长期存储。传统上,用于表征突触塑性的电神经刺激技术需要外部电源和逐线系。这里,已经介绍了一种新的自我功率,无线控制,神经刺激的电子皮肤(E-SKIN),用于体内表征突触可塑性。 E-Skin由柔性光敏摩擦电影Mapbi(3)/ PDMS单位组成。 E-Sk皮肤的输出电神经刺激信号由人体活性产生,无需任何电池,并且可以通过照明/关闭光照明作为无线开关来控制神经调制。为了证明E-Skin在表征突触变化时的应用,我们将该装置连接到小鼠脑的海马。 CA3中CA3中的E-皮肤神经刺激CA1中的CA3和同时记录局部兴奋性潜在潜在(FEPSP)证明E-SKIN可以成功地引起突触塑性体内表征的突触后反应。这种自动的照片操作电子皮肤可以引起新的研究方向,以实现无电池,无线控制,电气刺激系统,具有生物医学工程和神经科学的影响。

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