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用于瞬时脑功能中断的焦点和连接组映射的框架。

A framework for focal and connectomic mapping of transiently disrupted brain function.

机构信息

UCL Queen Square Institute of Neurology, London, UK.

National Hospital for Neurology and Neurosurgery, London, UK.

出版信息

Commun Biol. 2023 Apr 19;6(1):430. doi: 10.1038/s42003-023-04787-1.

Abstract

The distributed nature of the neural substrate, and the difficulty of establishing necessity from correlative data, combine to render the mapping of brain function a far harder task than it seems. Methods capable of combining connective anatomical information with focal disruption of function are needed to disambiguate local from global neural dependence, and critical from merely coincidental activity. Here we present a comprehensive framework for focal and connective spatial inference based on sparse disruptive data, and demonstrate its application in the context of transient direct electrical stimulation of the human medial frontal wall during the pre-surgical evaluation of patients with focal epilepsy. Our framework formalizes voxel-wise mass-univariate inference on sparsely sampled data within the statistical parametric mapping framework, encompassing the analysis of distributed maps defined by any criterion of connectivity. Applied to the medial frontal wall, this transient dysconnectome approach reveals marked discrepancies between local and distributed associations of major categories of motor and sensory behaviour, revealing differentiation by remote connectivity to which purely local analysis is blind. Our framework enables disruptive mapping of the human brain based on sparsely sampled data with minimal spatial assumptions, good statistical efficiency, flexible model formulation, and explicit comparison of local and distributed effects.

摘要

神经基质的分布式特性,以及从相关数据中确定必然性的困难,使得大脑功能的映射成为一项远比看起来困难得多的任务。需要能够将连接解剖信息与功能的焦点破坏相结合的方法,以区分局部与全局神经依赖性,以及关键与仅仅偶然的活动。在这里,我们提出了一个基于稀疏破坏数据的聚焦和连接空间推理的综合框架,并在对局部癫痫患者进行术前评估时,通过对人类内侧额壁进行短暂直接电刺激的背景下展示了其应用。我们的框架在统计参数映射框架内对稀疏采样数据进行了体素级别的多元推断,包括对任何连通性标准定义的分布式图谱的分析。应用于内侧额壁,这种瞬态去连接组学方法揭示了主要运动和感觉行为类别的局部和分布式关联之间的显著差异,揭示了纯粹局部分析无法识别的远程连通性的分化。我们的框架能够基于最小空间假设、良好的统计效率、灵活的模型构建以及局部和分布式效应的显式比较,对稀疏采样数据进行破坏性映射。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c671/10115870/007c62a6d08d/42003_2023_4787_Fig1_HTML.jpg

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