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Structural network connectivity and cognition in cerebral small vessel disease

机译:脑小血管疾病的结构网络连通性和认知

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摘要

Cerebral small vessel disease (SVD), including white matter hyperintensities (WMH), lacunes and microbleeds, and brain atrophy, are related to cognitive impairment. However, these magnetic resonance imaging (MRI) markers for SVD do not account for all the clinical variances observed in subjects with SVD. Here, we investigated the relation between conventional MRI markers for SVD, network efficiency and cognitive performance in 436 nondemented elderly with cerebral SVD. We computed a weighted structural connectivity network from the diffusion tensor imaging and deterministic streamlining. We found that SVD‐severity (indicated by higher WMH load, number of lacunes and microbleeds, and lower total brain volume) was related to networks with lower density, connection strengths, and network efficiency, and to lower scores on cognitive performance. In multiple regressions models, network efficiency remained significantly associated with cognitive index and psychomotor speed, independent of MRI markers for SVD and mediated the associations between these markers and cognition. This study provides evidence that network (in)efficiency might drive the association between SVD and cognitive performance. This hightlights the importance of network analysis in our understanding of SVD‐related cognitive impairment in addition to conventional MRI markers for SVD and might provide an useful tool as disease marker. . ©
机译:脑小血管疾病(SVD),包括白质高信号(WMH),腔隙和微出血以及脑萎缩,与认知障碍有关。但是,这些SVD的磁共振成像(MRI)标记不能解决SVD受试者中观察到的所有临床差异。在这里,我们调查了436名非痴呆老年人脑SVD的SVD常规MRI标记,网络效率和认知表现之间的关系。我们从扩散张量成像和确定性流线化计算了加权结构连接网络。我们发现SVD严重性(由较高的WMH负荷,内陷和微出血的数量以及较低的总脑容量指示)与密度较低,连接强度和网络效率较低的网络有关,并且与认知表现得分较低有关。在多元回归模型中,网络效率仍然与认知指数和心理运动速度显着相关,而与SVD的MRI标记无关,并介导了这些标记与认知之间的关联。这项研究提供的证据表明,网络(低效率)可能会导致SVD与认知表现之间的关联。除了针对SVD的常规MRI标记外,这凸显了网络分析在我们对SVD相关的认知障碍的理解中的重要性,并且可能提供作为疾病标记的有用工具。 。 ©

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