Digital Mobility Measures: A Window into Real-World Severity and Progression of Parkinson's Disease
- PMID: 38151859
- DOI: 10.1002/mds.29689
Digital Mobility Measures: A Window into Real-World Severity and Progression of Parkinson's Disease
Abstract
Background: Real-world monitoring using wearable sensors has enormous potential for assessing disease severity and symptoms among persons with Parkinson's disease (PD). Many distinct features can be extracted, reflecting multiple mobility domains. However, it is unclear which digital measures are related to PD severity and are sensitive to disease progression.
Objectives: The aim was to identify real-world mobility measures that reflect PD severity and show discriminant ability and sensitivity to disease progression, compared to the Movement Disorder Society-Unified Parkinson's Disease Rating Scale (MDS-UPDRS) scale.
Methods: Multicenter real-world continuous (24/7) digital mobility data from 587 persons with PD and 68 matched healthy controls were collected using an accelerometer adhered to the lower back. Machine learning feature selection and regression algorithms evaluated associations of the digital measures using the MDS-UPDRS (I-III). Binary logistic regression assessed discriminatory value using controls, and longitudinal observational data from a subgroup (n = 33) evaluated sensitivity to change over time.
Results: Digital measures were only moderately correlated with the MDS-UPDRS (part II-r = 0.60 and parts I and III-r = 0.50). Most associated measures reflected activity quantity and distribution patterns. A model with 14 digital measures accurately distinguished recently diagnosed persons with PD from healthy controls (81.1%, area under the curve: 0.87); digital measures showed larger effect sizes (Cohen's d: [0.19-0.66]), for change over time than any of the MDS-UPDRS parts (Cohen's d: [0.04-0.12]).
Conclusions: Real-world mobility measures are moderately associated with clinical assessments, suggesting that they capture different aspects of motor capacity and function. Digital mobility measures are sensitive to early-stage disease and to disease progression, to a larger degree than conventional clinical assessments, demonstrating their utility, primarily for clinical trials but ultimately also for clinical care. © 2023 The Authors. Movement Disorders published by Wiley Periodicals LLC on behalf of International Parkinson and Movement Disorder Society.
Keywords: Parkinson's disease; digital mobility measures; disease progression; wearable sensors.
© 2023 The Authors. Movement Disorders published by Wiley Periodicals LLC on behalf of International Parkinson and Movement Disorder Society.
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- BeaT-PD/Biogen Inc.
- W81XWH2010468/Defense Human Resources Activity
- V-TIME-278169/European Commission FP7 project
- 820820/Innovative Medicines Initiative 2 Joint Undertaking
- Israel Science Foundation
- NIHR/Wellcome Trust Clinical Research Facility (CRF) infrastructure at Newcastle upon Tyne Hospitals NHS Foundation Trust
- 853981/The Innovative Medicines Initiative 2 Joint Undertaking (IMI2 JU) project IDEA-FAST
- The Michael J Fox Foundation for Parkinson's research
- EP/W031590/1/UK Research and Innovation (UKRI) Engineering and Physical Sciences Research Council (EPSRC)- National Institute for Health and Care Research (NIHR)
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