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Updated: Sep 3, 2025

Dynamic Digital Biomarkers of Motor and Cognitive Function in Parkinson's Disease
Published on: July 24, 2019
Application of longitudinal item response theory models to modeling Parkinson's disease progression
Haotian Zou1, Varun Aggarwal2, Glenn T Stebbins3
1University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, USA.
Abstract:
The Movement Disorder Society revised version of the Unified Parkinson's Disease Rating Scale (MDS-UPDRS) parts 2 and 3 reflect patient-reported functional impact and clinician-reported severity of motor signs of Parkinson's disease (PD), respectively. Total scores are common clinical outcomes but may obscure important time-based changes in items. We aim to analyze longitudinal disease progression based on MDS-UPRDS parts 2 and 3 item-level responses over time and as functions of Hoehn & Yahr (H&Y) stages 1 and 2 for subjects with early PD. The longitudinal item response theory (IRT) modeling is a novel statistical method addressing limitations in traditional linear regression approaches, such as ignoring varying item sensitivities and the sum score balancing out improvements and declines. We utilized a harmonized dataset consisting of six studies with 3573 subjects with early PD and 14,904 visits, and mean follow-up time of 2.5 years (±1.57). We applied both a unidimensional (each part separately) and multidimensional (both parts combined) longitudinal IRT models. We assessed the progression rates for both parts, anchored to baseline H&Y stages 1 and 2. Both the uni- and multidimensional longitudinal IRT models indicate significant worsening time effects in both parts 2 and 3. Baseline H&Y stage 2 was associated with significantly higher baseline severities, but slower progression rates in both parts, as compared with stage 1. Patients with baseline H&Y stage 1 demonstrated slower progression in part 2 severity compared to part 3, whereas patients with baseline H&Y stage 2 progressed faster in part 2 than part 3. The multidimensional model had a superior fit compared to the unidimensional models and it had excellent model performance.
Insights
Longitudinal Item Response Theory modeling reveals Parkinson's disease (PD) progression patterns. Early-stage PD patients show worsening motor and functional symptoms over time, with distinct progression rates based on Hoehn & Yahr stage.
Area of Science:
- Neurology
- Biostatistics
- Movement Disorders
Background:
- The Movement Disorder Society revised version of the Unified Parkinson's Disease Rating Scale (MDS-UPDRS) parts 2 and 3 assess functional impact and motor severity in Parkinson's disease (PD).
- Total scores may obscure nuanced longitudinal changes, necessitating advanced analytical methods for detailed progression analysis.
Purpose of the Study:
- To analyze longitudinal disease progression in early Parkinson's disease using item-level MDS-UPDRS parts 2 and 3 data.
- To compare progression patterns based on Hoehn & Yahr (H&Y) stages 1 and 2 using longitudinal Item Response Theory (IRT) modeling.
Main Methods:
- Utilized a harmonized dataset from six studies with 3573 early PD subjects and 14,904 visits.
- Applied unidimensional and multidimensional longitudinal IRT models to item-level MDS-UPDRS data.
- Assessed progression rates anchored to baseline H&Y stages 1 and 2.
Main Results:
- Both uni- and multidimensional IRT models showed significant worsening time effects for MDS-UPDRS parts 2 and 3.
- Baseline H&Y stage 2 was linked to higher initial severity but slower progression compared to stage 1.
- Differential progression rates between parts 2 and 3 were observed based on baseline H&Y stage.
Conclusions:
- Longitudinal IRT modeling provides a robust method for analyzing PD progression at the item level.
- Early PD progression is characterized by worsening motor and functional symptoms, with distinct trajectories influenced by H&Y stage.
- The multidimensional IRT model demonstrated superior fit and performance, highlighting its utility in capturing complex disease dynamics.
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