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帕金森病伴抑郁患者的动态功能连接改变

Altered Dynamic Functional Connectivity in Parkinson's Disease Patients With Depression.

作者信息

Xu Jianxia, Yu Miao, Wang Hui, Li Yuqian, Li Lanting, Ren Jingru, Pan Chenxi, Liu Weiguo

机构信息

Department of Neurology, The Affiliated Brain Hospital of Nanjing Medical University, Nanjing, China.

Department of Neurology, Lianyungang Hospital of Traditional Chinese Medicine, Lianyungang, China.

出版信息

Front Aging Neurosci. 2022 Feb 14;13:789785. doi: 10.3389/fnagi.2021.789785. eCollection 2021.

Abstract

BACKGROUND

Depression is one of the most prevalent and disturbing non-motor symptoms in Parkinson's disease (PD), with few dynamic functional connectivity (dFC) features measured in previous studies. Our aim was to investigate the alterations of the dynamics in patients with PD with depression (dPD).

METHODS

We performed dFC analysis on the data of resting-state functional MRI from 21 dPD, 34 patients with PD without depression (ndPD), and 43 healthy controls (HCs). Group independent component analysis, a sliding window approach, followed by k-means clustering were conducted to assess functional connectivity states (which represented highly structured connectivity patterns reoccurring over time) and temporal properties for comparison between groups. We further performed dynamic graph-theoretical analysis to examine the variability of topological metrics.

RESULTS

Four distinct functional connectivity states were clustered dFC analysis. Compared to patients with ndPD and HCs, patients with dPD showed increased fractional time and mean dwell time in state 2, characterized by default mode network (DMN)-dominated and cognitive executive network (CEN)-disconnected patterns. Besides, compared to HCs, patients with dPD and patients with ndPD both showed weaker dynamic connectivity within the sensorimotor network (SMN) in state 4, a regionally densely connected state. We additionally observed that patients with dPD presented less variability in the local efficiency of the network.

CONCLUSIONS

Our study demonstrated that altered network connection over time, mainly involving the DMN and CEN, with abnormal dynamic graph properties, may contribute to the presence of depression in patients with PD.

摘要

背景

抑郁症是帕金森病(PD)中最常见且令人困扰的非运动症状之一,以往研究中测量的动态功能连接(dFC)特征较少。我们的目的是研究伴有抑郁症的帕金森病(dPD)患者的动力学改变。

方法

我们对21例dPD患者、34例无抑郁症的帕金森病患者(ndPD)和43名健康对照者(HCs)的静息态功能磁共振成像数据进行了dFC分析。进行了组独立成分分析、滑动窗口方法,随后进行k均值聚类,以评估功能连接状态(代表随时间反复出现的高度结构化连接模式)和时间特性,用于组间比较。我们进一步进行了动态图论分析,以检验拓扑指标的可变性。

结果

通过dFC分析聚类出四种不同的功能连接状态。与ndPD患者和HCs相比,dPD患者在状态2中的分数时间和平均停留时间增加,其特征是默认模式网络(DMN)主导且认知执行网络(CEN)断开连接的模式。此外,与HCs相比,dPD患者和ndPD患者在状态4(一个区域密集连接的状态)下感觉运动网络(SMN)内的动态连接均较弱。我们还观察到,dPD患者在网络局部效率方面的变异性较小。

结论

我们的研究表明,随着时间推移网络连接改变,主要涉及DMN和CEN,且具有异常的动态图属性,可能导致PD患者出现抑郁症。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/197d/8882994/e54c5a392e15/fnagi-13-789785-g001.jpg

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