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  3. iSPHYNCS: Unsupervised Clustering in Questionnaires and Metadata Reveals Distinct Subtypes in the Narcolepsy Borderland.

iSPHYNCS: Unsupervised Clustering in Questionnaires and Metadata Reveals Distinct Subtypes in the Narcolepsy Borderland.

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Description
Morand Rafael and Fregolente Livia contributed equally to this work.
DOI
10.48620/94852
Publisher DOI
10.1111/jsr.70294
PubMed ID
41657285
Abstract
The international Swiss Primary Hypersomnolence and Narcolepsy Cohort Study (iSPHYNCS) is a multicentre study aimed at identifying novel biomarkers for central disorders of hypersomnolence (CDH). We analysed questionnaires and metadata to uncover distinct clusters of participants and explore phenotypic variability within CDH. Data were collected from 227 patients with CDH and 33 healthy controls. Participants completed validated clinical questionnaires and study-specific questions addressing CDH-related symptoms such as excessive daytime sleepiness, fatigue, cataplexy, disrupted sleep, and sleep paralysis. Demographic metadata (age, gender, BMI) were included. After excluding participants with missing over 30% of data (n = 40), missing values were imputed using a multiple random forest algorithm. A robust clustering pipeline was employed: (1) random sampling of 60% of the dataset, (2) dimensionality reduction via UMAP, (3) K-means clustering, and (4) consensus clustering across 500 iterations. Post hoc analysis was performed to identify biomarkers in data not used for clustering. We identified four distinct clusters. One predominantly comprised healthy controls, while another primarily contained individuals with narcolepsy type 1 (NT1). Two clusters represented predominantly the narcolepsy borderland group (NBL), with one distinctly characterised by higher symptom severity and psychiatric comorbidities. The clustering pipeline produced reproducible results, with the NT1 and healthy control clusters serving as internal validation. The differentiation between the two NBL clusters aligns with prior studies, suggesting a possible NBL subtype marked by increased fatigue and psychiatric comorbidities. These findings emphasise the phenotypic heterogeneity of CDH and the potential for cluster-based approaches in management. Trial Registration: ClinicalTrials.gov identifier: NCT04330963.
Date Issued
2026-08
Publication Type
Article
Subject(s)
600 Technology > 610 Medicine & health
Subjects
central disorders of hypersomnolence
•
clustering analysis
•
fatigue
•
iSPHYNCS
•
narcolepsy
•
psychiatric burden
•
sleepiness
Language(s)
en
Author(s)
Morand, Rafael  
Universitätsklinik für Neurologie - SWEZ  
Fregolente, Livia  
Clinic of Neurology  
van der Meer, Julia  
Clinic of Neurology  
Wenz, Elena S.  
Clinic of Neurology  
Helmy, Annina  
Clinic of Neurology  
Institute of Computer Science  
Brigato, Lorenzo  
ARTORG Center for Biomedical Engineering Research  
ARTORG Center - Artificial Intelligence in Health and Nutrition  
Warncke Jan D.  
Clinic of Neurology  
Zub, Kseniia  
Clinic of Neurology  
Khatami, Ramin  
Clinic of Neurology  
Zhang, Zhongxing
von Manitius, Sigrid
Miano, Silvia  
Acker, Jens
Strub, Mathias
Kallweit, Ulf  
Lammers, Gert Jan
Tzovara, Athina  
Institute of Computer Science  
Clinic of Neurology  
Bassetti, Claudio L. A.  
Clinic of Neurology  
Mougiakakou, Stavroula  
ARTORG Center for Biomedical Engineering Research  
ARTORG Center - Artificial Intelligence in Health and Nutrition  
Schmidt, Markus H.  
Clinic of Neurology  
Additional Credits
Clinic of Neurology  
ARTORG Center for Biomedical Engineering Research  
Universitätsklinik für Neurologie - SWEZ  
Institute of Computer Science  
ARTORG Center - Artificial Intelligence in Health and Nutrition  
Graduate School for Cellular and Biomedical Sciences (GCB)  
Graduate School for Health Sciences (GHS)  
Journal
Journal of Sleep Research
Publisher
Wiley
ISSN
1365-2869
0962-1105
Access(Rights)
open.access
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