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用于大规模、高精度体内光电生理学的 HectoSTAR μLED 光电探测器。

HectoSTAR μLED Optoelectrodes for Large-Scale, High-Precision In Vivo Opto-Electrophysiology.

机构信息

Department of Electrical Engineering and Computer Science, University of Michigan, Ann Arbor, MI, 48109, USA.

Neuroscience Institute, Langone Medical Center, New York University, New York, NY, 10016, USA.

出版信息

Adv Sci (Weinh). 2022 Jun;9(18):e2105414. doi: 10.1002/advs.202105414. Epub 2022 Apr 22.

DOI:10.1002/advs.202105414
PMID:35451232
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9218760/
Abstract

Dynamic interactions within and across brain areas underlie behavioral and cognitive functions. To understand the basis of these processes, the activities of distributed local circuits inside the brain of a behaving animal must be synchronously recorded while the inputs to these circuits are precisely manipulated. Even though recent technological advances have enabled such large-scale recording capabilities, the development of the high-spatiotemporal-resolution and large-scale modulation techniques to accompany those recordings has lagged. A novel neural probe is presented in this work that enables simultaneous electrical monitoring and optogenetic manipulation of deep neuronal circuits at large scales with a high spatiotemporal resolution. The "hectoSTAR" micro-light-emitting-diode (μLED) optoelectrode features 256 recording electrodes and 128 stimulation μLEDs monolithically integrated on the surface of its four 30-µm thick silicon micro-needle shanks, covering a large volume with 1.3-mm × 0.9-mm cross-sectional area located as deep as 6 mm inside the brain. The use of this device in behaving mice for dissecting long-distance network interactions across cortical layers and hippocampal regions is demonstrated. The recording-and-stimulation capabilities hectoSTAR μLED optoelectrodes enables will open up new possibilities for the cellular and circuit-based investigation of brain functions in behaving animals.

摘要

大脑区域内部和之间的动态相互作用是行为和认知功能的基础。为了理解这些过程的基础,必须在精确操纵这些回路的输入的同时,同步记录行为动物大脑中分布式局部回路的活动。尽管最近的技术进步使大规模记录成为可能,但伴随这些记录的高时空分辨率和大规模调制技术的发展却滞后了。本工作中提出了一种新型神经探针,它能够以高时空分辨率在大范围内同时进行电监测和光遗传操作。“hectoSTAR”微发光二极管(μLED)光电探测器的特点是在其四个 30μm 厚的硅微针脚的表面上集成了 256 个记录电极和 128 个刺激 μLED,覆盖了一个大体积,其横截面面积为 1.3mm×0.9mm,位于大脑内部深达 6mm 处。该器件在行为小鼠中的使用证明了其在皮层和海马区域之间剖析远距离网络相互作用的能力。hectoSTAR μLED 光电探测器的记录和刺激功能将为在行为动物中基于细胞和回路的大脑功能研究开辟新的可能性。

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