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利用个体结构连接网络预测阿尔茨海默病。

Prediction of Alzheimer's disease using individual structural connectivity networks.

机构信息

Department of Neuroradiology of Klinikum rechts der Isar, Technische Universität München, Ismaningerstrasse 22, 81675 Munich, Germany.

出版信息

Neurobiol Aging. 2012 Dec;33(12):2756-65. doi: 10.1016/j.neurobiolaging.2012.01.017. Epub 2012 Mar 8.

Abstract

Alzheimer's disease (AD) progressively degrades the brain's gray and white matter. Changes in white matter reflect changes in the brain's structural connectivity pattern. Here, we established individual structural connectivity networks (ISCNs) to distinguish predementia and dementia AD from healthy aging in individual scans. Diffusion tractography was used to construct ISCNs with a fully automated procedure for 21 healthy control subjects (HC), 23 patients with mild cognitive impairment and conversion to AD dementia within 3 years (AD-MCI), and 17 patients with mild AD dementia. Three typical pattern classifiers were used for AD prediction. Patients with AD and AD-MCI were separated from HC with accuracies greater than 95% and 90%, respectively, irrespective of prediction approach and specific fiber properties. Most informative connections involved medial prefrontal, posterior parietal, and insular cortex. Patients with mild AD were separated from those with AD-MCI with an accuracy of approximately 85%. Our finding provides evidence that ISCNs are sensitive to the impact of earliest stages of AD. ISCNs may be useful as a white matter-based imaging biomarker to distinguish healthy aging from AD.

摘要

阿尔茨海默病(AD)会逐渐损害大脑的灰质和白质。白质的变化反映了大脑结构连接模式的变化。在这里,我们在个体扫描中建立了个体结构连接网络(ISCN),以区分痴呆前 AD 和痴呆 AD 与健康衰老。弥散张量成像用于构建 ISCN,采用全自动程序对 21 名健康对照受试者(HC)、23 名轻度认知障碍且在 3 年内转化为 AD 痴呆的患者(AD-MCI)和 17 名轻度 AD 痴呆患者进行分析。使用三种典型的模式分类器进行 AD 预测。AD 和 AD-MCI 患者与 HC 的分离准确率均大于 95%和 90%,与预测方法和特定纤维特性无关。最具信息性的连接涉及内侧前额叶、顶后皮质和脑岛。轻度 AD 患者与 AD-MCI 患者的分离准确率约为 85%。我们的发现为 ISCN 对 AD 早期阶段的影响具有敏感性提供了证据。ISCN 可能作为一种基于白质的成像生物标志物,用于区分健康衰老和 AD。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c789/3778749/4743ecd1c489/gr1.jpg

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