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Algebraic connectivity of brain networks shows patterns of segregation leading to reduced network robustness in Alzheimers disease

机译:脑网络的代数连接性显示了分离的模式导致阿尔茨海默氏病网络的健壮性降低

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摘要

Measures of network topology and connectivity aid the understanding of network breakdown as the brain degenerates in Alzheimer's disease (AD). We analyzed 3-Tesla diffusion-weighted images from 202 patients scanned by the Alzheimer's Disease Neuroimaging Initiative – 50 healthy controls, 72 with early- and 38 with late-stage mild cognitive impairment (eMCI/lMCI) and 42 with AD. Using whole-brain tractography, we reconstructed structural connectivity networks representing connections between pairs of cortical regions. We examined, for the first time in this context, the network's Laplacian matrix and its Fiedler value, describing the network's algebraic connectivity, and the Fiedler vector, used to partition a graph. We assessed algebraic connectivity and four additional supporting metrics, revealing a decrease in network robustness and increasing disarray among nodes as dementia progressed. Network components became more disconnected and segregated, and their modularity increased. These measures are sensitive to diagnostic group differences, and may help understand the complex changes in AD.
机译:网络拓扑和连通性的度量有助于了解大脑在阿尔茨海默氏病(AD)退化时的网络故障。我们分析了由阿尔茨海默氏病神经影像学计划扫描的202例患者的3-Tesla扩散加权图像-50例健康对照,72例早期轻度认知障碍(eMCI / lMCI)和38例晚期AD和42例。使用全脑束摄影术,我们重建了代表大脑皮层区域对之间连接的结构连接网络。在这种情况下,我们首次检查了网络的拉普拉斯矩阵及其Fiedler值(描述了网络的代数连通性)和Fiedler向量,该向量用于划分图。我们评估了代数连接性和四个其他支持指标,发现随着痴呆症的发展,网络的健壮性降低,节点之间的混乱加剧。网络组件变得更加分离和隔离,并且它们的模块性提高了。这些措施对诊断组的差异很敏感,可能有助于了解AD的复杂变化。

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