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运动想象任务对老年人功能性脑网络社区结构的影响:来自脑网络与运动功能(B-NET)研究的数据。

Effects of a Motor Imagery Task on Functional Brain Network Community Structure in Older Adults: Data from the Brain Networks and Mobility Function (B-NET) Study.

作者信息

Neyland Blake R, Hugenschmidt Christina E, Lyday Robert G, Burdette Jonathan H, Baker Laura D, Rejeski W Jack, Miller Michael E, Kritchevsky Stephen B, Laurienti Paul J

机构信息

Sticht Center for Healthy Aging and Alzheimer's Prevention, Department of Internal Medicine Section on Gerontology and Geriatric Medicine, Wake Forest School of Medicine, Winston-Salem, NC 27103, USA.

Department of Radiology, Wake Forest School of Medicine, Winston-Salem, NC 27103, USA.

出版信息

Brain Sci. 2021 Jan 17;11(1):118. doi: 10.3390/brainsci11010118.

Abstract

Elucidating the neural correlates of mobility is critical given the increasing population of older adults and age-associated mobility disability. In the current study, we applied graph theory to cross-sectional data to characterize functional brain networks generated from functional magnetic resonance imaging data both at rest and during a motor imagery (MI) task. Our MI task is derived from the Mobility Assessment Tool-short form (MAT-sf), which predicts performance on a 400 m walk, and the Short Physical Performance Battery (SPPB). Participants ( = 157) were from the Brain Networks and Mobility (B-NET) Study (mean age = 76.1 ± 4.3; % female = 55.4; % African American = 8.3; mean years of education = 15.7 ± 2.5). We used community structure analyses to partition functional brain networks into communities, or subnetworks, of highly interconnected regions. Global brain network community structure decreased during the MI task when compared to the resting state. We also examined the community structure of the default mode network (DMN), sensorimotor network (SMN), and the dorsal attention network (DAN) across the study population. The DMN and SMN exhibited a task-driven decline in consistency across the group when comparing the MI task to the resting state. The DAN, however, displayed an increase in consistency during the MI task. To our knowledge, this is the first study to use graph theory and network community structure to characterize the effects of a MI task, such as the MAT-sf, on overall brain network organization in older adults.

摘要

鉴于老年人口不断增加以及与年龄相关的行动能力残疾问题,阐明行动能力的神经关联至关重要。在当前研究中,我们将图论应用于横断面数据,以表征在静息状态和运动想象(MI)任务期间从功能磁共振成像数据生成的功能性脑网络。我们的MI任务源自行动能力评估工具简表(MAT-sf),该工具可预测400米步行的表现,以及简短体能状况量表(SPPB)。参与者(n = 157)来自脑网络与行动能力(B-NET)研究(平均年龄 = 76.1 ± 4.3;女性占比 = 55.4%;非裔美国人占比 = 8.3%;平均受教育年限 = 15.7 ± 2.5)。我们使用社区结构分析将功能性脑网络划分为高度互连区域的社区或子网。与静息状态相比,在MI任务期间全脑网络社区结构有所下降。我们还研究了整个研究人群中默认模式网络(DMN)、感觉运动网络(SMN)和背侧注意网络(DAN)的社区结构。将MI任务与静息状态进行比较时,DMN和SMN在全组中表现出任务驱动的一致性下降。然而,DAN在MI任务期间一致性增加。据我们所知,这是第一项使用图论和网络社区结构来表征诸如MAT-sf之类的MI任务对老年人整体脑网络组织影响的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2f3b/7830141/a7ad472e4c60/brainsci-11-00118-g001.jpg

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