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Uncovering the heterogeneity and temporal complexity of neurodegenerative diseases with Subtype and Stage Inference.

Published version
Peer-reviewed

Type

Article

Change log

Authors

Marinescu, Razvan V  ORCID logo  https://orcid.org/0000-0003-4042-8493
Bocchetta, Martina 
Yong, Keir 

Abstract

The heterogeneity of neurodegenerative diseases is a key confound to disease understanding and treatment development, as study cohorts typically include multiple phenotypes on distinct disease trajectories. Here we introduce a machine-learning technique-Subtype and Stage Inference (SuStaIn)-able to uncover data-driven disease phenotypes with distinct temporal progression patterns, from widely available cross-sectional patient studies. Results from imaging studies in two neurodegenerative diseases reveal subgroups and their distinct trajectories of regional neurodegeneration. In genetic frontotemporal dementia, SuStaIn identifies genotypes from imaging alone, validating its ability to identify subtypes; further the technique reveals within-genotype heterogeneity. In Alzheimer's disease, SuStaIn uncovers three subtypes, uniquely characterising their temporal complexity. SuStaIn provides fine-grained patient stratification, which substantially enhances the ability to predict conversion between diagnostic categories over standard models that ignore subtype (p = 7.18 × 10-4) or temporal stage (p = 3.96 × 10-5). SuStaIn offers new promise for enabling disease subtype discovery and precision medicine.

Description

Keywords

Alzheimer Disease, Frontotemporal Dementia, Genotype, Humans, Models, Neurological, Neurodegenerative Diseases, Phenotype, Reproducibility of Results, Time Factors

Journal Title

Nat Commun

Conference Name

Journal ISSN

2041-1723
2041-1723

Volume Title

9

Publisher

Springer Science and Business Media LLC
Sponsorship
Wellcome Trust (103838/Z/14/Z)
Medical Research Council (MR/J009482/1)
Medical Research Council (MR/M009041/1)
Medical Research Council (MC_U105597119)
Medical Research Council (MR/M024873/1)
Medical Research Council (MC_UU_00005/12)
Medical Research Council (MR/L023784/1)
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