作者
Xiuming Zhang, Elizabeth C Mormino, Nanbo Sun, Reisa A Sperling, Mert R Sabuncu, BT Thomas Yeo
发表日期
2016/10/18
期刊
Proceedings of the National Academy of Sciences
卷号
113
期号
42
页码范围
E6535-E6544
出版商
National Academy of Sciences
简介
We used a data-driven Bayesian model to automatically identify distinct latent factors of overlapping atrophy patterns from voxelwise structural MRIs of late-onset Alzheimer’s disease (AD) dementia patients. Our approach estimated the extent to which multiple distinct atrophy patterns were expressed within each participant rather than assuming that each participant expressed a single atrophy factor. The model revealed a temporal atrophy factor (medial temporal cortex, hippocampus, and amygdala), a subcortical atrophy factor (striatum, thalamus, and cerebellum), and a cortical atrophy factor (frontal, parietal, lateral temporal, and lateral occipital cortices). To explore the influence of each factor in early AD, atrophy factor compositions were inferred in beta-amyloid–positive (Aβ+) mild cognitively impaired (MCI) and cognitively normal (CN) participants. All three factors were associated with memory decline across the …
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