Altered static and dynamic functional network connectivity in individuals with subthreshold depression: a large-scale resting-state fMRI study.

IF 3.5 3区 医学 Q1 CLINICAL NEUROLOGY European Archives of Psychiatry and Clinical Neuroscience Pub Date : 2024-07-24 DOI:10.1007/s00406-024-01871-3
Dan Liao, Li-Song Liang, Di Wang, Xiao-Hai Li, Yuan-Cheng Liu, Zhi-Peng Guo, Zhu-Qing Zhang, Xin-Feng Liu
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Abstract

Dynamic functional network connectivity (dFNC) is an expansion of static FNC (sFNC) that reflects connectivity variations among brain networks. This study aimed to investigate changes in sFNC and dFNC strength and temporal properties in individuals with subthreshold depression (StD). Forty-two individuals with subthreshold depression and 38 healthy controls (HCs) were included in this study. Group independent component analysis (GICA) was used to determine target resting-state networks, namely, executive control network (ECN), default mode network (DMN), sensorimotor network (SMN) and dorsal attentional network (DAN). Sliding window and k-means clustering analyses were used to identify dFNC patterns and temporal properties in each subject. We compared sFNC and dFNC differences between the StD and HCs groups. Relationships between changes in FNC strength, temporal properties, and neurophysiological score were evaluated by Spearman's correlation analysis. The sFNC analysis revealed decreased FNC strength in StD individuals, including the DMN-CEN, DMN-SMN, SMN-CEN, and SMN-DAN. In the dFNC analysis, 4 reoccurring FNC patterns were identified. Compared to HCs, individuals with StD had increased mean dwell time and fraction time in a weakly connected state (state 4), which is associated with self-focused thinking status. In addition, the StD group demonstrated decreased dFNC strength between the DMN-DAN in state 2. sFNC strength (DMN-ECN) and temporal properties were correlated with HAMD-17 score in StD individuals (all p < 0.01). Our study provides new evidence on aberrant time-varying brain activity and large-scale network interaction disruptions in StD individuals, which may provide novel insight to better understand the underlying neuropathological mechanisms.

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阈下抑郁症患者静态和动态功能网络连接的改变:大规模静息态 fMRI 研究。
动态功能网络连通性(dFNC)是静态功能网络连通性(sFNC)的扩展,反映了大脑网络之间的连通性变化。本研究旨在调查阈下抑郁症(StD)患者的 sFNC 和 dFNC 强度及时间特性的变化。本研究纳入了 42 名阈下抑郁症患者和 38 名健康对照组(HCs)。研究采用组独立成分分析法(GICA)确定目标静息态网络,即执行控制网络(ECN)、默认模式网络(DMN)、感觉运动网络(SMN)和背侧注意网络(DAN)。我们使用滑动窗口和k均值聚类分析来确定每个受试者的dFNC模式和时间特性。我们比较了 StD 组和 HCs 组之间的 sFNC 和 dFNC 差异。通过斯皮尔曼相关分析评估了 FNC 强度变化、时间特性和神经生理学评分之间的关系。sFNC分析显示,StD患者的FNC强度下降,包括DMN-CEN、DMN-SMN、SMN-CEN和SMN-DAN。在dFNC分析中,发现了4种重复出现的FNC模式。与HCs相比,StD患者在弱连接状态(状态4)下的平均停留时间和部分时间都有所增加,这与自我关注的思维状态有关。此外,StD组在状态2中显示出DMN-DAN之间的dFNC强度下降。sFNC强度(DMN-ECN)和时间属性与StD患者的HAMD-17评分相关(所有p均为0.05)。
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来源期刊
CiteScore
8.80
自引率
4.30%
发文量
154
审稿时长
6-12 weeks
期刊介绍: The original papers published in the European Archives of Psychiatry and Clinical Neuroscience deal with all aspects of psychiatry and related clinical neuroscience. Clinical psychiatry, psychopathology, epidemiology as well as brain imaging, neuropathological, neurophysiological, neurochemical and moleculargenetic studies of psychiatric disorders are among the topics covered. Thus both the clinician and the neuroscientist are provided with a handy source of information on important scientific developments.
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