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Nanoelectronic coating enabled versatile multi-functional neural probes

机译:纳米电子涂层可实现多功能多功能神经探针

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摘要

Brain function can be best studied by simultaneous measurements and modulation of the multifaceted signaling at the cellular scale. Extensive efforts have been made to develop multifunctional neural probes, typically involving highly specialized fabrication processes. Here, we report a novel multifunctional neural probe platform realized by applying ultra-thin nanoelectronic coating (NEC) on the surfaces of conventional microscale devices such as optical fibers and micropipettes. We fabricated the NECs by planar photolithography techniques using a substrate-less and multi-layer design, which host arrays of individually addressed electrodes with an overall thickness below 1 μm. Guided by an analytic model and taking advantage of the surface tension, we precisely aligned and coated the NEC devices on the surfaces of these conventional micro-probes, and enabled electrical recording capabilities on par with the state-of-the-art neural electrodes. We further demonstrated optogenetic stimulation and controlled drug infusion with simultaneous, spatially resolved neural recording in a rodent model. This study provides a low-cost, versatile approach to construct multifunctional neural probes that can be applied to both fundamental and translational neuroscience.
机译:通过在细胞尺度上同时测量和调节多面信号可以最佳地研究脑功能。为了开发通常涉及高度专业化的制造过程的多功能神经探针,已经进行了广泛的努力。在这里,我们报告了一种新型的多功能神经探针平台,该平台是通过在常规微型设备(例如光纤和微量移液器)的表面上应用超薄纳米电子涂层(NEC)实现的。我们使用无基板和多层设计,通过平面光刻技术制造了NEC,该NEC容纳了单个寻址电极的阵列,其总厚度低于1μm。在分析模型的指导下,并利用表面张力,我们将NEC设备精确对准并涂覆在这些常规微探针的表面上,并使其电记录功能与最新的神经电极相当。我们进一步在啮齿动物模型中证明了光遗传学刺激和受控的药物输注以及同时,空间分辨的神经记录。这项研究提供了一种低成本,通用的方法来构建可应用于基础和转化神经科学的多功能神经探针。

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