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轻度认知障碍患者静息态功能连接动力学中的网络变化点检测

Network change point detection in resting-state functional connectivity dynamics of mild cognitive impairment patients.

作者信息

Mancho-Fora Núria, Montalà-Flaquer Marc, Farràs-Permanyer Laia, Zarabozo-Hurtado Daniel, Gallardo-Moreno Geisa Bearitz, Gudayol-Farré Esteban, Peró-Cebollero Maribel, Guàrdia-Olmos Joan

机构信息

Facultat de Psicologia, Universitat de Barcelona, Spain.

UB Institute of Complex Systems, Universitat de Barcelona, Spain.

出版信息

Int J Clin Health Psychol. 2020 Sep-Dec;20(3):200-212. doi: 10.1016/j.ijchp.2020.07.005. Epub 2020 Aug 16.

Abstract

: This study aims to characterize the differences on the short-term temporal network dynamics of the undirected and weighted whole-brain functional connectivity between healthy aging individuals and people with mild cognitive impairment (MCI). The Network Change Point Detection algorithm was applied to identify the significant change points in the resting-state fMRI register, and we analyzed the fluctuations in the topological properties of the sub-networks between significant change points. : Ten MCI patients matched by gender and age in 1:1 ratio to healthy controls screened during patient recruitment. A neuropsychological evaluation was done to both groups as well as functional magnetic images were obtained with a Philips 3.0T. All the images were preprocessed and statistically analyzed through dynamic point estimation tools. : No statistically significant differences were found between groups in the number of significant change points in the functional connectivity networks. However, an interaction effect of age and state was detected on the intra-participant variability of the network strength. : The progression of states was associated to higher variability in the patient's group. Additionally, higher performance in the prospective and retrospective memory scale was associated with higher median network strength.

摘要

本研究旨在刻画健康老年人与轻度认知障碍(MCI)患者之间无向加权全脑功能连接的短期时间网络动力学差异。应用网络变化点检测算法识别静息态功能磁共振成像(fMRI)记录中的显著变化点,并分析显著变化点之间子网络拓扑属性的波动情况。在患者招募过程中,按1:1比例选取了10名性别和年龄匹配的MCI患者与健康对照。对两组进行了神经心理学评估,并使用飞利浦3.0T设备获取了功能磁共振图像。所有图像均经过预处理,并通过动态点估计工具进行统计分析。在功能连接网络中,两组之间在显著变化点的数量上未发现统计学显著差异。然而,在网络强度的参与者内变异性方面,检测到年龄和状态的交互作用。状态的进展与患者组中更高的变异性相关。此外,前瞻性和回顾性记忆量表中的较高表现与较高的网络强度中位数相关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a10d/7501449/5c97c9237dea/gr1.jpg

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