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在公共参照空间中分析丘脑皮质束追踪实验。

Analyzing Thalamocortical Tract-Tracing Experiments in a Common Reference Space.

机构信息

Neuroinformatics Department, Donders Centre for Neuroscience, Radboud University Nijmegen, Heyendaalseweg 135, 6525 AJ, Nijmegen, The Netherlands.

Department of Anatomy and Neuroscience, School of Medicine, Autónoma de Madrid University, C. Arzobispo Morcillo 4, 28029, Madrid, Spain.

出版信息

Neuroinformatics. 2024 Jan;22(1):23-43. doi: 10.1007/s12021-023-09644-4. Epub 2023 Oct 21.

Abstract

Current mesoscale connectivity atlases provide limited information about the organization of thalamocortical projections in the mouse brain. Labeling the projections of spatially restricted neuron populations in thalamus can provide a functionally relevant level of connectomic analysis, but these need to be integrated within the same common reference space. Here, we present a pipeline for the segmentation, registration, integration and analysis of multiple tract-tracing experiments. The key difference with other workflows is that the data is transformed to fit the reference template. As a test-case, we investigated the axonal projections and intranuclear arrangement of seven neuronal populations of the ventral posteromedial nucleus of the thalamus (VPM), which we labeled with an anterograde tracer. Their soma positions corresponded, from dorsal to ventral, to cortical representations of the whiskers, nose and mouth. They strongly targeted layer 4, with the majority exclusively targeting one cortical area and the ones in ventrolateral VPM branching to multiple somatosensory areas. We found that our experiments were more topographically precise than similar experiments from the Allen Institute and projections to the primary somatosensory area were in agreement with single-neuron morphological reconstructions from publicly available databases. This pilot study sets the basis for a shared virtual connectivity atlas that could be enriched with additional data for studying the topographical organization of different thalamic nuclei. The pipeline is accessible with only minimal programming skills via a Jupyter Notebook, and offers multiple visualization tools such as cortical flatmaps, subcortical plots and 3D renderings and can be used with custom anatomical delineations.

摘要

当前的中尺度连接图谱提供了关于小鼠大脑丘脑皮质投射组织的有限信息。标记丘脑中空间限制的神经元群体的投射可以提供功能相关的连接组学分析水平,但这些需要在同一共同参考空间内进行整合。在这里,我们提出了一个用于分割、注册、集成和分析多个示踪实验的流水线。与其他工作流程的关键区别在于,数据被转换以适应参考模板。作为一个测试案例,我们研究了七个丘脑腹后内侧核(VPM)神经元群体的轴突投射和核内排列,我们用顺行示踪剂标记了这些群体。从背侧向腹侧,它们的胞体位置对应于胡须、鼻子和嘴巴的皮层代表区。它们强烈靶向第 4 层,其中大多数群体仅靶向一个皮层区域,而腹外侧 VPM 的分支则靶向多个体感区域。我们发现,我们的实验比艾伦研究所的类似实验更具有地形精确性,并且到初级体感区的投射与来自公开可用数据库的单个神经元形态重建一致。这项初步研究为共享虚拟连接图谱奠定了基础,该图谱可以通过添加来自不同丘脑核的额外数据来丰富,以研究不同丘脑核的地形组织。该流水线可通过 Jupyter Notebook 以最小的编程技能访问,并提供多种可视化工具,如皮层平面图、皮质下图以及 3D 渲染,并可用于自定义解剖定义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4336/10917831/b60dcbbba299/12021_2023_9644_Fig1_HTML.jpg

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