轻度认知障碍工作记忆检索阶段的探索:基于动态脑网络的时变脑电图因果分析。

IF 5.2 2区 医学 Q1 ENGINEERING, BIOMEDICAL
Yi Jiang, Zhiwei Guo, Xiaobo Zhou, Ning Jiang, Jiayuan He
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引用次数: 0

摘要

背景:轻度认知障碍(Mild Cognitive Impairment, MCI)是介于正常衰老认知能力下降和阿尔茨海默病(Alzheimer's disease, AD)之间的一个中间阶段。它的管理是至关重要的,因为它有助于干预和减缓认知能力下降到AD的进展。然而,对MCI机制的理解并不完全清楚。由于工作记忆(WM)损伤是MCI的常见症状,本研究以WM的核心阶段,即记忆检索阶段为研究对象,基于脑电图(EEG)信号,探讨WM的信息加工及其脑区间的因果关系。方法:招募21名轻度认知障碍参与者和20名正常认知控制(NC)参与者。采用两种不同载荷下的延迟匹配样本范式来评估它们的WM函数。基于自适应传递函数(ADTF)对记忆检索实验的脑电信号进行时变网络构建。执行动态大脑网络分析。结果:研究结果表明:(a)行为数据分析:MCI和NC在低负载4和高负载6任务上的正确率和正确率/反应时存在显著差异,尤其是在记忆负载4任务上。(b)动态脑网络分析:在WM任务的记忆检索阶段,两组脑网络模式的动态变化有显著差异。具体而言,在低负荷WM任务中,NC的动态脑网络变化更有规律,以适应高效的信息处理,重要的核心节点呈现从下向上的过渡,而MCI则没有表现出规则的动态脑网络模式。此外,与低负荷WM障碍相关的脑功能区主要位于左侧前额叶(FC1)和右侧枕叶(PO8)。与低负荷WM任务相比,在高负荷WM任务中,NC在记忆检索阶段的动态脑网络变化具有规律性,核心节点呈现出从上到下到上的一致过渡现象,这在MCI中没有观察到。结论:低负荷WM任务模式下的行为数据和左前额叶(FC1)和右枕叶(PO8)异常的电生理信号可用于MCI的诊断。这是首次基于大规模动态网络方法研究不同负载WM任务下MCI记忆检索阶段的动态网络模式,为MCI患者WM缺陷的神经机制提供了新的视角,并为MCI-WM记忆障碍的临床干预治疗提供了一定的参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploration of working memory retrieval stage for mild cognitive impairment: time-varying causality analysis of electroencephalogram based on dynamic brain networks.

Background: Mild Cognitive Impairment (MCI) is an intermediate stage between the expected cognitive decline of normal aging and Alzheimer's disease (AD). Its management is crucial for it helps intervene and slow the progression of cognitive decline to AD. However, the understanding of the MCI mechanism is not completely clear. As working memory (WM) damage is a common symptom of MCI, this study focused on the core stage of WM, i.e., the memory retrieval stage, to investigate information processing and the causality relationships among brain regions based on electroencephalogram (EEG) signals.

Method: 21 MCI and 20 normal cognitive control (NC) participants were recruited. The delayed matching sample paradigm with two different loads was employed to evaluate their WM functions. A time-varying network based on the Adaptive transfer function (ADTF) was constructed on the EEG of the memory retrieval trials.to perform the dynamic brain network analysis.

Results: Our results showed that: (a) Behavioral data analysis: there were significant differences in accuracy and accuracy / reaction time between MCI and NC in tasks with memory load capacity of low load-four and high load-six, especially in tasks with memory load capacity of four. (b) Dynamic brain network analysis: there were significant differences in the dynamic changes of brain network patterns between the two groups during the memory retrieval stage of the WM task. Specifically, in low load WM tasks, the dynamic brain network changes of NC were more regular to accommodate for efficient information processing, with important core nodes showing a transition from bottom to up, while MCI did not display a regular dynamic brain network pattern. Further, the brain functional areas associated with low load WM disorders were mainly located in the left prefrontal lobe (FC1) and right occipital lobe (PO8). Compared with low load WM task, during the high load WM task, the dynamic brain network changes of NC during the memory retrieval stage were regular, and the core nodes exhibited a consistent transition phenomenon from up to bottom to up, which were not observed in MCI.

Conclusions: Behavioral data in the low load WM task paradigm and abnormal electrophysiological signals in the left prefrontal (FC1) and right occipital lobes (PO8) could be used for MCI diagnosis. This is the first time based on large-scale dynamic network methods to investigate the dynamic network patterns of MCI memory retrieval stages under different load WM tasks, providing a new perspective on the neural mechanisms of WM deficits in MCI patients and providing some reference for the clinical intervention treatment of MCI-WM memory disorders.

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来源期刊
Journal of NeuroEngineering and Rehabilitation
Journal of NeuroEngineering and Rehabilitation 工程技术-工程:生物医学
CiteScore
9.60
自引率
3.90%
发文量
122
审稿时长
24 months
期刊介绍: Journal of NeuroEngineering and Rehabilitation considers manuscripts on all aspects of research that result from cross-fertilization of the fields of neuroscience, biomedical engineering, and physical medicine & rehabilitation.
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