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用于神经动力学大型多区域地形电生理图谱的多柄1024通道有源SiNAPS探针。

Multi-shank 1024 channels active SiNAPS probe for large multi-regional topographical electrophysiological mapping of neural dynamics.

作者信息

Angotzi Gian Nicola, Vöröslakos Mihály, Perentos Nikolas, Ribeiro Joao Filipe, Vincenzi Matteo, Boi Fabio, Lecomte Aziliz, Orban Gabor, Genewsky Andreas, Schwesig Gerrit, Aykan Deren, Buzsáki György, Sirota Anton, Berdondini Luca

机构信息

Fondazione Istituto Italiano di Tecnologia, Microtechnology for Neuroelectronics Unit (NetS lab), Genova, Italy.

Corticale Srl, Genova, Italy.

出版信息

Res Sq. 2024 Aug 7:rs.3.rs-4800131. doi: 10.21203/rs.3.rs-4800131/v1.

Abstract

Implantable active dense CMOS neural probes unlock the possibility of spatiotemporally resolving the activity of hundreds of single neurons in multiple brain circuits to investigate brain dynamics. Mapping neural dynamics in brain circuits with anatomical structures spanning several millimeters, however, remains challenging. Here, we demonstrate the first CMOS neural probe for mapping intracortical neural dynamics (both LFPs and spikes) in awake, behaving mice from an area >4 mm. By taking advantage of the modularity of our SiNAPS technology, we realized an eight shanks probe with 1024 electrode channels arranged on each shank in regular arrays with an electrode pitch <30 μm. Low-noise recordings from all electrodes at 20 kHz/channel demonstrate a field of view spanning the 2D lattice of the entire mice hippocampal circuit, together with cortical and thalamic regions. This arrangement allows combining large population unit recording across distributed networks with precise intra- and interlaminar/nuclear mapping of the oscillatory dynamics.

摘要

可植入式有源密集互补金属氧化物半导体(CMOS)神经探针开启了在时空上解析多个脑回路中数百个单个神经元活动以研究脑动力学的可能性。然而,在跨越数毫米解剖结构的脑回路中绘制神经动力学图谱仍然具有挑战性。在此,我们展示了首款用于在清醒、行为活动的小鼠中从大于4毫米的区域绘制皮层内神经动力学(局部场电位和动作电位)的CMOS神经探针。通过利用我们的SiNAPS技术的模块化特点,我们实现了一种八根探针杆的探针,每根探针杆上以小于30微米的电极间距将1024个电极通道排列成规则阵列。以20千赫/通道对所有电极进行的低噪声记录展示了一个跨越整个小鼠海马回路以及皮层和丘脑区域二维晶格的视野范围。这种排列方式能够将分布式网络中的大量神经元单元记录与振荡动力学的精确层内和层间/核映射相结合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e772/11326390/bf2f2d0f98e3/nihpp-rs4800131v1-f0001.jpg

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