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内侧缰核皮质 2 层中星状细胞和小白蛋白中间神经元之间的突触相互作用是在网格细胞簇的尺度上组织的。

Synaptic interactions between stellate cells and parvalbumin interneurons in layer 2 of the medial entorhinal cortex are organized at the scale of grid cell clusters.

机构信息

Centre for Discovery Brain Sciences, University of Edinburgh, Edinburgh, United Kingdom.

Simons Initiative for the Developing Brain, University of Edinburgh, Edinburgh, United Kingdom.

出版信息

Elife. 2024 Nov 1;12:RP92854. doi: 10.7554/eLife.92854.

Abstract

Interactions between excitatory and inhibitory neurons are critical to computations in cortical circuits but their organization is difficult to assess with standard electrophysiological approaches. Within the medial entorhinal cortex, representation of location by grid and other spatial cells involves circuits in layer 2 in which excitatory stellate cells interact with each other via inhibitory parvalbumin expressing interneurons. Whether this connectivity is structured to support local circuit computations is unclear. Here, we introduce strategies to address the functional organization of excitatory-inhibitory interactions using crossed Cre- and Flp-driver mouse lines to direct targeted presynaptic optogenetic activation and postsynaptic cell identification. We then use simultaneous patch-clamp recordings from postsynaptic neurons to assess their shared input from optically activated presynaptic populations. We find that extensive axonal projections support spatially organized connectivity between stellate cells and parvalbumin interneurons, such that direct connections are often, but not always, shared by nearby neurons, whereas multisynaptic interactions coordinate inputs to neurons with greater spatial separation. We suggest that direct excitatory-inhibitory synaptic interactions may operate at the scale of grid cell clusters, with local modules defined by excitatory-inhibitory connectivity, while indirect interactions may coordinate activity at the scale of grid cell modules.

摘要

兴奋性神经元和抑制性神经元之间的相互作用对于皮质回路中的计算至关重要,但它们的组织很难用标准的电生理方法来评估。在内侧缰核中,网格和其他空间细胞的位置表示涉及到 2 层中的回路,其中兴奋性星状细胞通过表达抑制性 parvalbumin 的中间神经元相互作用。这种连接是否被结构化以支持局部回路计算尚不清楚。在这里,我们引入了使用交叉 Cre 和 Flp 驱动小鼠系来指导靶向突触前光遗传学激活和突触后细胞鉴定的策略,以解决兴奋性-抑制性相互作用的功能组织问题。然后,我们使用来自突触后神经元的同时膜片钳记录来评估它们从光激活的突触前群体共享的输入。我们发现广泛的轴突投射支持星状细胞和 parvalbumin 中间神经元之间空间组织的连接,使得直接连接通常但并非总是由附近的神经元共享,而多突触相互作用则协调具有更大空间分离的神经元的输入。我们认为,直接的兴奋性-抑制性突触相互作用可能在网格细胞簇的规模上运作,局部模块由兴奋性-抑制性连接定义,而间接相互作用可能在网格细胞模块的规模上协调活动。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b55/11530233/db294db7014d/elife-92854-fig1.jpg

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