Altered Brain Functional Network in Subtypes of Parkinson's Disease: A Dynamic Perspective

被引:20
作者
Zhu, Junlan [1 ,2 ,3 ]
Zeng, Qiaoling [1 ]
Shi, Qiao [1 ]
Li, Jiao [1 ]
Dong, Shuwen [1 ]
Lai, Chao [1 ]
Cheng, Guanxun [1 ]
机构
[1] Peking Univ, Dept Radiol, Shenzhen Hosp, Shenzhen, Peoples R China
[2] Chinese Acad Med Sci & Peking Union Med Coll, Dept Radiol, Natl Canc Ctr, Natl Clin Res Ctr Canc,Canc Hosp, Shenzhen, Peoples R China
[3] Chinese Acad Med Sci & Peking Union Med Coll, Shenzhen Hosp, Shenzhen, Peoples R China
来源
FRONTIERS IN AGING NEUROSCIENCE | 2021年 / 13卷
关键词
Parkinson's disease; functional magnet resonance imaging; functional connectivity; dynamic; graph theory; CONNECTIVITY; TREMOR; MOTOR; ARCHITECTURE; PROGRESSION; ACTIVATION;
D O I
10.3389/fnagi.2021.710735
中图分类号
R592 [老年病学]; C [社会科学总论];
学科分类号
03 ; 0303 ; 100203 ;
摘要
Background: Parkinson's disease (PD) is a highly heterogeneous disease, especially in the clinical characteristics and prognosis. The PD is divided into two subgroups: tremor-dominant phenotype and non-tremor-dominant phenotype. Previous studies reported abnormal changes between the two PD phenotypes by using the static functional connectivity analysis. However, the dynamic properties of brain networks between the two PD phenotypes are not yet clear. Therefore, we aimed to uncover the dynamic functional network connectivity (dFNC) between the two PD phenotypes at the subnetwork level, focusing on the temporal properties of dFNC and the variability of network efficiency. Methods: We investigated the resting-state functional MRI (fMRI) data from 29 tremor-dominant PD patients (PDTD), 25 non-tremor-dominant PD patients (PDNTD), and 20 healthy controls (HCs). Sliding window approach, k-means clustering, independent component analysis (ICA), and graph theory analysis were applied to analyze the dFNC. Furthermore, the relationship between alterations in the dynamic properties and clinical features was assessed. Results: The dFNC analyses identified four reoccurring states, one of them showing sparse connections (state I). PDTD patients stayed longer time in state I and showed increased FNC between BG and vSMN in state IV. Both PD phenotypes exhibited higher FNC between dSMN and FPN in state II and state III compared with the controls. PDNTD patients showed decreased FNC between BG and FPN but increased FNC in the bilateral FPN compared with both PDTD patients and controls. In addition, PDNTD patients exhibited greater variability in global network efficiency. Tremor scores were positively correlated with dwell time in state I along with increased FNC between BG and vSMN in state IV. Conclusions: This study explores the dFNC between the PDTD and PDNTD patients, which offers new evidence on the abnormal time-varying brain functional connectivity and their network destruction of the two PD phenotypes, and may help better understand the neural substrates underlying different types of PD.
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页数:12
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