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Published in: Neurological Sciences 8/2021

01-08-2021 | COVID-19 | COVID-19

Remote smartphone gait monitoring and fall prediction in Parkinson’s disease during the COVID-19 lockdown

Authors: Massimo Marano, Francesco Motolese, Mariagrazia Rossi, Alessandro Magliozzi, Ziv Yekutieli, Vincenzo Di Lazzaro

Published in: Neurological Sciences | Issue 8/2021

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Abstract

Background

Falls could be serious events in Parkinson’s disease (PD). Patient remote monitoring strategies are on the raise and may be an additional aid in identifying patients who are at risk of falling. The aim of the study was to evaluate if balance and timed-up-and-go data obtained by a smartphone application during COVID-19 lockdown were able to predict falls in PD patients.

Methods

A cohort of PD patients were monitored for 4 weeks during the COVID-19 lockdown with an application measuring static balance and timed-up-and-go test. The main outcome was the occurrence of falls (UPDRS-II item 13) during the observation period.

Results

Thirty-three patients completed the study, and 4 (12%) reported falls in the observation period. The rate of falls was reduced with respect to patient previous falls history (24%). The stand-up time and the mediolateral sway, acquired through the application, differed between “fallers” and “non-fallers” and related to the occurrence of new falls (OR 1.7 and 1.6 respectively, p < 0.05), together with previous falling (OR 7.5, p < 0.01). In a multivariate model, the stand-up time and the history of falling independently related to the outcome (p < 0.01).

Conclusions

Our study provides new data on falls in Parkinson’s disease during the lockdown. The reduction of falling events and the relationship with the stand-up time might suggest that a different quality of falls occurs when patient is forced to stay home — hence, clinicians should point their attention also on monitoring patients’ sit-to-stand body transition other than more acknowledged features based on step quality.
Literature
Metadata
Title
Remote smartphone gait monitoring and fall prediction in Parkinson’s disease during the COVID-19 lockdown
Authors
Massimo Marano
Francesco Motolese
Mariagrazia Rossi
Alessandro Magliozzi
Ziv Yekutieli
Vincenzo Di Lazzaro
Publication date
01-08-2021
Publisher
Springer International Publishing
Published in
Neurological Sciences / Issue 8/2021
Print ISSN: 1590-1874
Electronic ISSN: 1590-3478
DOI
https://doi.org/10.1007/s10072-021-05351-7

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