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切线高密度电极插入允许在小鼠上丘的视野扩展区域内同时测量神经元活动。

Tangential high-density electrode insertions allow to simultaneously measure neuronal activity across an extended region of the visual field in mouse superior colliculus.

机构信息

Neuroscience Research Center, Charité-Universitätsmedizin Berlin, 10117 Berlin, Germany; Bernstein Center for Computational Neuroscience Berlin, 10115 Berlin, Germany; Institute for Theoretical Biology, Humboldt-Universität zu Berlin, 10115 Berlin, Germany; Einstein Center for Neurosciences Berlin, 10117 Berlin, Germany.

Neuroscience Research Center, Charité-Universitätsmedizin Berlin, 10117 Berlin, Germany; Bernstein Center for Computational Neuroscience Berlin, 10115 Berlin, Germany; Institute for Theoretical Biology, Humboldt-Universität zu Berlin, 10115 Berlin, Germany; Einstein Center for Neurosciences Berlin, 10117 Berlin, Germany.

出版信息

J Neurosci Methods. 2022 Jul 1;376:109622. doi: 10.1016/j.jneumeth.2022.109622. Epub 2022 May 4.

Abstract

BACKGROUND

The superior colliculus (SC) is a midbrain structure that plays a central role in visual processing. Although we have learned a considerable amount about the function of single SC neurons, the way in which sensory information is represented and processed on the population level in awake behaving animals and across a large region of the retinotopic map is still largely unknown. Partially because the SC is anatomically located below the cortical sheet and the transverse sinus, which render the measure of neuronal activity from a large population of neurons in the SC technically difficult to perform.

NEW METHOD

To address this, we propose a tangential recording configuration using high-density electrode probes (Neuropixels) in mouse SC in vivo. This method permits a large number of recording sites (~200) inside the SC circuitry allowing to record from a large population of SC neurons along a vast area of retinotopic space.

RESULTS

This approach provides a unique opportunity to measure the activity of SC neuronal populations over up to ~2 mm of SC tissue reporting for the first time the continuous receptive fields coverage of almost the entire SC retinotopy. Here we describe how to perform targeted tangential recordings along the anterior-posterior and the medio-lateral axis of the mouse SC in vivo in the upper visual layers. Furthermore, we describe how to combine this approach with optogenetic tools for cell-type identification on the population level.

COMPARISON WITH EXISTING METHODS

Vertical insertion has been a standard way to record visual responses in the SC. Inserting multi-shank probes vertically allows to cover a larger region of the SC but misses both the complete extent of the available retinotopy and the continuous measure allowed by the high density of recording sites on Neuropixels probes.

CONCLUSION

Altogether tangential insertions in the upper visual layers of the mouse SC using Neuropixels permit for the first time to access a majority of the retinotopically organized visual representation of the world at an unprecedented precision.

摘要

背景

上丘(SC)是中脑结构,在视觉处理中起着核心作用。尽管我们已经对单个 SC 神经元的功能有了相当多的了解,但在清醒行为动物和整个视网膜映射区域中,感觉信息在群体水平上的表示和处理方式仍在很大程度上不为人知。部分原因是 SC 在解剖学上位于皮质层和横窦下方,这使得从 SC 中的大量神经元群体中测量神经元活动在技术上变得非常困难。

新方法

为了解决这个问题,我们提出了一种在活体小鼠 SC 中使用高密度电极探针(Neuropixels)进行切向记录的配置。这种方法允许在 SC 电路内部有大量的记录位点(~200 个),从而可以在一个大的视网膜空间区域内从大量的 SC 神经元中进行记录。

结果

这种方法提供了一个独特的机会来测量 SC 神经元群体的活动,覆盖 SC 组织的长达~2mm 的区域,首次报告了几乎整个 SC 视网膜的连续感受野覆盖。在这里,我们描述了如何在活体小鼠 SC 的前-后和中-外侧轴线上进行靶向切向记录,以及如何在群体水平上结合光遗传学工具来进行细胞类型识别。

与现有方法的比较

垂直插入一直是在 SC 中记录视觉反应的标准方法。插入多针探针垂直方向可以覆盖更大的 SC 区域,但既错过了完整的可用视网膜图范围,也错过了 Neuropixels 探针高密度记录点允许的连续测量。

结论

使用 Neuropixels 在小鼠 SC 的上视觉层进行切向插入,首次以前所未有的精度访问了世界上大部分组织良好的视网膜代表。

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