人体脊髓功能结构的活体解析

Nawal Kinany, Caroline Landelle, B. De Leener, O. Lungu, Julien Doyon, D. Van de Ville
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引用次数: 0

摘要

摘要 脊髓是中枢神经系统的重要组成部分,通过地形组织的功能层次在大脑和外周之间传输和整合信号。尽管脊髓在感觉运动过程和多种神经运动障碍中发挥着核心作用,但绘制人体体内脊髓的功能组织图一直是一项长期挑战。在这里,我们测试了两种数据驱动的连通性方法在两个不同的功能磁共振成像(fMRI)数据集中通过静息态网络产生可靠且时间上稳定的颈脊髓功能划分的有效性。我们的研究结果表明,不同方法和数据集之间的模式具有稳健性和可复制性,能有效捕捉脊髓功能水平。此外,我们还首次证明了脊柱静息态网络在个体参与者中的功能水平组织,揭示了脊柱功能组织的个性化图谱。这些发现强调了非侵入性、数据驱动的方法在可靠地勾勒脊髓功能结构方面的潜力。从脊髓 fMRI 处理到对健康和受损脊髓功能的个性化研究,其影响都是深远的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In vivo parcellation of the human spinal cord functional architecture
Abstract The spinal cord is a critical component of the central nervous system, transmitting and integrating signals between the brain and the periphery via topographically organized functional levels. Despite its central role in sensorimotor processes and several neuromotor disorders, mapping the functional organization of the spinal cord in vivo in humans has been a long-standing challenge. Here, we test the efficacy of two data-driven connectivity approaches to produce a reliable and temporally stable functional parcellation of the cervical spinal cord through resting-state networks in two different functional magnetic resonance imaging (fMRI) datasets. Our results demonstrate robust and replicable patterns across methods and datasets, effectively capturing the spinal functional levels. Furthermore, we present the first evidence of spinal resting-state networks organized in functional levels in individual participants, unveiling personalized maps of the spinal functional organization. These findings underscore the potential of non-invasive, data-driven approaches to reliably outline the spinal cord’s functional architecture. The implications are far-reaching, from spinal cord fMRI processing to personalized investigations of healthy and impaired spinal cord function.
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