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SHIELD:颅骨形状的半球形植入物,可实现小鼠大脑中的大规模电生理数据集。

SHIELD: Skull-shaped hemispheric implants enabling large-scale electrophysiology datasets in the mouse brain.

机构信息

Allen Institute for Neural Dynamics, Seattle, WA 98109, USA.

Allen Institute for Neural Dynamics, Seattle, WA 98109, USA.

出版信息

Neuron. 2024 Sep 4;112(17):2869-2885.e8. doi: 10.1016/j.neuron.2024.06.015. Epub 2024 Jul 11.

Abstract

To understand the neural basis of behavior, it is essential to measure spiking dynamics across many interacting brain regions. Although new technologies, such as Neuropixels probes, facilitate multi-regional recordings, significant surgical and procedural hurdles remain for these experiments to achieve their full potential. Here, we describe skull-shaped hemispheric implants enabling large-scale electrophysiology datasets (SHIELD). These 3D-printed skull-replacement implants feature customizable insertion holes, allowing dozens of cortical and subcortical structures to be recorded in a single mouse using repeated multi-probe insertions over many days. We demonstrate the procedure's high success rate, biocompatibility, lack of adverse effects on behavior, and compatibility with imaging and optogenetics. To showcase SHIELD's scientific utility, we use multi-probe recordings to reveal novel insights into how alpha rhythms organize spiking activity across visual and sensorimotor networks. Overall, this method enables powerful, large-scale electrophysiological experiments for the study of distributed neural computation.

摘要

为了理解行为的神经基础,测量多个相互作用的脑区的尖峰动力学至关重要。尽管神经像素探针等新技术促进了多区域记录,但这些实验要充分发挥其潜力,仍存在重大的手术和程序障碍。在这里,我们描述了半球形植入物,它可以实现大规模的电生理学数据集(SHIELD)。这些 3D 打印的颅骨替换植入物具有可定制的插入孔,允许在一只老鼠中使用重复的多探针插入,在多天内记录数十个皮质和皮质下结构。我们证明了该程序的高成功率、生物相容性、对行为没有不良影响,以及与成像和光遗传学的兼容性。为了展示 SHIELD 的科学实用性,我们使用多探针记录揭示了关于 alpha 节律如何组织视觉和感觉运动网络中的尖峰活动的新见解。总的来说,这种方法为分布式神经计算的研究提供了强大的、大规模的电生理实验。

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