ArticleBrain communications2023
Uncovering spatiotemporal patterns of atrophy in progressive supranuclear palsy using unsupervised machine learning.
Article in Brain communications, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. An erratum has been issued. Cited by 18 papers.
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Who cites it
18 citing papers in PubMed, 27 citations in OpenAlex.
- Data-driven modelling of tau pathology reveals distinct progressive supranuclear palsy subtypes.Brain : a journal of neurology · 2026Article
- Hypothalamic atrophy in progressive supranuclear palsy, assessed by convolutional neural network-based automatic segmentation.Journal of neurology · 2026Article
- Midsagittal Midbrain Area and Midbrain-to-Pons-Ratio Cannot Distinguish Overlap Syndromes Between Amyotrophic Lateral Sclerosis and Progressive Supranuclear Palsy.Clinical neuroradiology · 2026Article
- White matter hyperintensities in the deep cerebral venous territory differ between subcortical and cortical 4-repeat tauopathies.Parkinsonism & related disorders · 2026Article
- From clinical phenotypes to molecular stratification: early differential diagnosis of four-repeat tauopathies.Frontiers in aging neuroscience · 2026Review
- Neuropathology of Lewy body dementia: Lewy-related pathology, α-synuclein oligomers, and comorbid pathologies.Molecular neurodegeneration · 2025Review
- Brain Networks Route Neurodegeneration Patterns in Patients with Progressive Supranuclear Palsy.Movement disorders : official journal of the Movement Disorder Society · 2025Article
- Neuroanatomical normative modelling in frontotemporal lobar degeneration: higher heterogeneity in the behavioural variant.Journal of neurology · 2025Article
- Annual percentage change of MR Parkinsonism index in progressive supranuclear palsy: a feasibility study.European radiology · 2025Article
- Uncovering Image-Driven Subtypes with Distinct Pathology and Clinical Course in Autopsy-Confirmed Four Repeat Tauopathies.Annals of neurology · 2025Article
- Data-driven neuroanatomical subtypes of primary progressive aphasia.Brain : a journal of neurology · 2025Article
- Identification of metabolic progression and subtypes in progressive supranuclear palsy by PET molecular imaging.European journal of nuclear medicine and molecular imaging · 2025Article
- Distinct spatiotemporal atrophy patterns in corticobasal syndrome are associated with different underlying pathologies.Brain communications · 2025Article
- A data-driven model of disability progression in progressive multiple sclerosis.Brain communications · 2025Article
- Frontal hypometabolism in the diagnosis of progressive supranuclear palsy clinical variants.Journal of neurology · 2024Article
- Histologic tau lesions and magnetic resonance imaging biomarkers differ across two progressive supranuclear palsy variants.Brain communications · 2024Article
- Staging of progressive supranuclear palsy-Richardson syndrome using MRI brain charts for the human lifespan.Brain communications · 2024Article
- Patterns of brain volume and metabolism predict clinical features in the progressive supranuclear palsy spectrum.Brain communications · 2024Article
Corrections and comments
- Erratum issued
Authors and funding
16 authors at 19 institutions in 3 countries.
Funding
Abstract
To better understand the pathological and phenotypic heterogeneity of progressive supranuclear palsy and the links between the two, we applied a novel unsupervised machine learning algorithm (Subtype and Stage Inference) to the largest MRI data set to date of people with clinically diagnosed progressive supranuclear palsy (including progressive supranuclear palsy-Richardson and variant progressive supranuclear palsy syndromes). Our cohort is comprised of 426 progressive supranuclear palsy cases, of which 367 had at least one follow-up scan, and 290 controls. Of the progressive supranuclear palsy cases, 357 were clinically diagnosed with progressive supranuclear palsy-Richardson, 52 with a progressive supranuclear palsy-cortical variant (progressive supranuclear palsy-frontal, progressive supranuclear palsy-speech/language, or progressive supranuclear palsy-corticobasal), and 17 with a progressive supranuclear palsy-subcortical variant (progressive supranuclear palsy-parkinsonism or progressive supranuclear palsy-progressive gait freezing). Subtype and Stage Inference was applied to volumetric MRI features extracted from baseline structural (T1-weighted) MRI scans and then used to subtype and stage follow-up scans. The subtypes and stages at follow-up were used to validate the longitudinal consistency of subtype and stage assignments. We further compared the clinical phenotypes of each subtype to gain insight into the relationship between progressive supranuclear palsy pathology, atrophy patterns, and clinical presentation. The data supported two subtypes, each with a distinct progression of atrophy: a 'subcortical' subtype, in which early atrophy was most prominent in the brainstem, ventral diencephalon, superior cerebellar peduncles, and the dentate nucleus, and a 'cortical' subtype, in which there was early atrophy in the frontal lobes and the insula alongside brainstem atrophy. There was a strong association between clinical diagnosis and the Subtype and Stage Inference subtype with 82% of progressive supranuclear palsy-subcortical cases and 81% of progressive supranuclear palsy-Richardson cases assigned to the subcortical subtype and 82% of progressive supranuclear palsy-cortical cases assigned to the cortical subtype. The increasing stage was associated with worsening clinical scores, whilst the 'subcortical' subtype was associated with worse clinical severity scores compared to the 'cortical subtype' (progressive supranuclear palsy rating scale and Unified Parkinson's Disease Rating Scale). Validation experiments showed that subtype assignment was longitudinally stable (95% of scans were assigned to the same subtype at follow-up) and individual staging was longitudinally consistent with 90% remaining at the same stage or progressing to a later stage at follow-up. In summary, we applied Subtype and Stage Inference to structural MRI data and empirically identified two distinct subtypes of spatiotemporal atrophy in progressive supranuclear palsy. These image-based subtypes were differentially enriched for progressive supranuclear palsy clinical syndromes and showed different clinical characteristics. Being able to accurately subtype and stage progressive supranuclear palsy patients at baseline has important implications for screening patients on entry to clinical trials, as well as tracking disease progression.
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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.