High-throughput digital quantification of Alzheimer disease pathology and associated infrastructure in large autopsy studies

Author:

Kapasi Alifiya12ORCID,Poirier Jennifer1,Hedayat Ahmad3,Scherlek Ashley1,Mondal Srabani1,Wu Tiffany1,Gibbons John1,Barnes Lisa L14,Bennett David A14,Leurgans Sue E14,Schneider Julie A124

Affiliation:

1. Rush Alzheimer’s Disease Center, Rush University Medical Center, Chicago, Illinois, USA

2. Department of Pathology, Rush University Medical Center, Chicago, Illinois, USA

3. Department of Pathology, Washington University School of Medicine, St Louis, Missouri, USA

4. Department of Neurological Sciences, Rush University Medical Center, Chicago, Illinois, USA

Abstract

Abstract High-throughput digital pathology offers considerable advantages over traditional semiquantitative and manual methods of counting pathology. We used brain tissue from 5 clinical-pathologic cohort studies of aging; the Religious Orders Study, the Rush Memory and Aging Project, the Minority Aging Research Study, the African American Clinical Core, and the Latino Core to (1) develop a workflow management system for digital pathology processes, (2) optimize digital algorithms to quantify Alzheimer disease (AD) pathology, and (3) harmonize data statistically. Data from digital algorithms for the quantification of β-amyloid (Aβ, n = 413) whole slide images and tau-tangles (n = 639) were highly correlated with manual pathology data (r = 0.83 to 0.94). Measures were robust and reproducible across different magnifications and repeated scans. Digital measures for Aβ and tau-tangles across multiple brain regions reproduced established patterns of correlations, even when samples were stratified by clinical diagnosis. Finally, we harmonized newly generated digital measures with historical measures across multiple large autopsy-based studies. We describe a multidisciplinary approach to develop a digital pathology pipeline that reproducibly identifies AD neuropathologies, Aβ load, and tau-tangles. Digital pathology is a powerful tool that can overcome critical challenges associated with traditional microscopy methods.

Publisher

Oxford University Press (OUP)

Subject

Cellular and Molecular Neuroscience,Neurology (clinical),Neurology,General Medicine,Pathology and Forensic Medicine

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