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Title:Parkinson’s disease non-motor subtypes classification in a group of Slovenian patients : actuarial vs. data-driven approach
Authors:ID Petrijan, Timotej (Author)
ID Zmazek, Jan (Author)
ID Menih, Marija (Author)
Files:.pdf Petrijan_2023_Parkinson’s_Disease_Non-Motor_Subtypes.pdf (1,37 MB)
MD5: 17A8482076058C15860E356E09934335
 
URL https://doi.org/10.3390/jcm12237434
 
Language:English
Work type:Scientific work
Typology:1.01 - Original Scientific Article
Organization:FNM - Faculty of Natural Sciences and Mathematics
Abstract:Background and purpose: The aim of this study was to examine the risk factors, prodromal symptoms, non-motor symptoms (NMS), and motor symptoms (MS) in different Parkinson’s disease (PD) non-motor subtypes, classified using newly established criteria and a data-driven approach. Methods: A total of 168 patients with idiopathic PD underwent comprehensive NMS and MS examinations. NMS were assessed by the Non-Motor Symptom Scale (NMSS), Montreal Cognitive Assessment (MoCA), Hamilton Depression Scale (HAM-D), Hamilton Anxiety Rating Scale (HAM-A), REM Sleep Behavior Disorder Screening Questionnaire (RBDSQ), Epworth Sleepiness Scale (ESS), Starkstein Apathy Scale (SAS) and Fatigue Severity Scale (FSS). Motor subtypes were classified based on Stebbins’ method. Patients were classified into groups of three NMS subtypes (cortical, limbic, and brainstem) based on the newly designed inclusion criteria. Further, data-driven clustering was performed as an alternative, statistical learning-based classification approach. The two classification approaches were compared for consistency. Results: We identified 38 (22.6%) patients with the cortical subtype, 48 (28.6%) with the limbic, and 82 (48.8%) patients with the brainstem NMS PD subtype. Using a data-driven approach, we identified five different clusters. Three corresponded to the cortical, limbic, and brainstem subtypes, while the two additional clusters may have represented patients with early and advanced PD. Pearson chi-square test of independence revealed that a priori classification and cluster membership were significantly related to one another with a large effect size (χ2(8) = 175.001, p < 0.001, Cramer’s V = 0.722). The demographic and clinical profiles differed between NMS subtypes and clusters. Conclusion: Using the actuarial and clustering approach, marked differences between individual NMS subtypes were found. The newly established criteria have potential as a simplified tool for future clinical research of NMS subtypes of Parkinson’s disease.
Keywords:Parkinson’s disease, non-motor symptoms subtypes, a priori classification, cluster analysis
Publication status:Published
Publication version:Version of Record
Submitted for review:29.10.2023
Article acceptance date:28.11.2023
Publication date:30.11.2023
Publisher:MDPI
Year of publishing:2023
Number of pages:Str. 1-15
Numbering:Letn. 12, št. 23, št. članka 7434
PID:20.500.12556/DKUM-92418 New window
UDC:616.8
ISSN on article:2077-0383
COBISS.SI-ID:174334211 New window
DOI:10.3390/jcm12237434 New window
Publication date in DKUM:07.04.2025
Views:152
Downloads:13
Metadata:XML DC-XML DC-RDF
Categories:Misc.
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Record is a part of a journal

Title:Journal of clinical medicine
Shortened title:J. clin. med.
Publisher:MDPI
ISSN:2077-0383
COBISS.SI-ID:5405759 New window

Licences

License:CC BY 4.0, Creative Commons Attribution 4.0 International
Link:http://creativecommons.org/licenses/by/4.0/
Description:This is the standard Creative Commons license that gives others maximum freedom to do what they want with the work as long as they credit the author.
Licensing start date:30.11.2023

Secondary language

Language:Slovenian
Keywords:Parkinsonova bolezen, podtipi nemotoričnih simptomov, a priori klasifikacija, analiza grozdov


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