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任务态和静息态 fMRI 的变异性和复杂性测量的可靠性。

Reliability of variability and complexity measures for task and task-free BOLD fMRI.

机构信息

Department of Psychology, Goethe University Frankfurt, Frankfurt, Germany.

Department of Computer Science and Mathematics, Goethe University Frankfurt, Frankfurt, Germany.

出版信息

Hum Brain Mapp. 2024 Jul 15;45(10):e26778. doi: 10.1002/hbm.26778.

Abstract

Brain activity continuously fluctuates over time, even if the brain is in controlled (e.g., experimentally induced) states. Recent years have seen an increasing interest in understanding the complexity of these temporal variations, for example with respect to developmental changes in brain function or between-person differences in healthy and clinical populations. However, the psychometric reliability of brain signal variability and complexity measures-which is an important precondition for robust individual differences as well as longitudinal research-is not yet sufficiently studied. We examined reliability (split-half correlations) and test-retest correlations for task-free (resting-state) BOLD fMRI as well as split-half correlations for seven functional task data sets from the Human Connectome Project to evaluate their reliability. We observed good to excellent split-half reliability for temporal variability measures derived from rest and task fMRI activation time series (standard deviation, mean absolute successive difference, mean squared successive difference), and moderate test-retest correlations for the same variability measures under rest conditions. Brain signal complexity estimates (several entropy and dimensionality measures) showed moderate to good reliabilities under both, rest and task activation conditions. We calculated the same measures also for time-resolved (dynamic) functional connectivity time series and observed moderate to good reliabilities for variability measures, but poor reliabilities for complexity measures derived from functional connectivity time series. Global (i.e., mean across cortical regions) measures tended to show higher reliability than region-specific variability or complexity estimates. Larger subcortical regions showed similar reliability as cortical regions, but small regions showed lower reliability, especially for complexity measures. Lastly, we also show that reliability scores are only minorly dependent on differences in scan length and replicate our results across different parcellation and denoising strategies. These results suggest that the variability and complexity of BOLD activation time series are robust measures well-suited for individual differences research. Temporal variability of global functional connectivity over time provides an important novel approach to robustly quantifying the dynamics of brain function. PRACTITIONER POINTS: Variability and complexity measures of BOLD activation show good split-half reliability and moderate test-retest reliability. Measures of variability of global functional connectivity over time can robustly quantify neural dynamics. Length of fMRI data has only a minor effect on reliability.

摘要

大脑活动随时间不断波动,即使大脑处于受控状态(例如,实验诱导)。近年来,人们越来越感兴趣于理解这些时间变化的复杂性,例如,与大脑功能的发育变化或健康人群和临床人群之间的个体差异有关。然而,脑信号变异性和复杂性测量的心理测量可靠性——这是稳健的个体差异以及纵向研究的重要前提条件——尚未得到充分研究。我们检查了任务无关(静息状态)BOLD fMRI 的可靠性(两半相关)和测试-重测相关性,以及来自人类连接组计划的七个功能任务数据集的两半相关,以评估其可靠性。我们观察到从静息和任务 fMRI 激活时间序列中得出的时间变异性测量的良好到极好的两半可靠性(标准差,平均绝对连续差异,平均平方连续差异),并且在静息条件下相同变异性测量的中等测试-重测相关性。在静息和任务激活条件下,几种熵和维度测量的脑信号复杂性估计都表现出中等至良好的可靠性。我们还为时间分辨(动态)功能连接时间序列计算了相同的测量值,并观察到变异性测量的中等至良好的可靠性,但功能连接时间序列的复杂性测量的可靠性较差。全局(即,皮质区域的平均值)测量值的可靠性往往高于区域特定的变异性或复杂性估计。较大的皮质下区域显示出与皮质区域相似的可靠性,但较小的区域显示出较低的可靠性,特别是对于复杂性测量。最后,我们还表明,可靠性评分仅与扫描长度的差异略有相关,并在不同的分区和去噪策略中复制了我们的结果。这些结果表明,BOLD 激活时间序列的变异性和复杂性是稳健的适合个体差异研究的测量方法。随着时间的推移,全局功能连接的时间变异性为稳健地量化大脑功能的动力学提供了一种新的重要方法。从业者要点:BOLD 激活的变异性和复杂性测量值具有良好的两半可靠性和中等的测试-重测可靠性。随时间变化的全局功能连接的变异性测量值可以稳健地量化神经动力学。fMRI 数据的长度对可靠性只有很小的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a22a/11232465/38767d4f42a9/HBM-45-e26778-g003.jpg

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