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Abnormal Muscle Activity and Variability Before, During, and After the Occurrence of Freezing in Parkinson's Disease

  • Hiram Cantú(corresponding author)
    ,
  • Julie Nantel
    ,
  • Michelle Millán
    ,
  • Caroline Paquette
    ,
  • Julie N. Côté
*Corresponding author for this work
  • ,
  • McGill University
    ,
  • Occupational Biomechanics and Ergonomics Laboratory
    ,
  • Department of Kinesiology and Physical Education
    ,
  • Jewish Rehabilitation Hospital
    ,
  • University of Ottawa
Research Output:
Contribution to journal
Article
Peer-review

Open access

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Citations
13
SciVal
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0.41
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5
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48
Scopus
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Abstract

Freezing of gait (FOG) is often experienced in advanced stages of Parkinson's disease (PD) and can lead to an increased risk of falls. Although spatiotemporal characteristics of FOG are well-described, their underlying neuromuscular mechanisms remain poorly understood. Several studies have demonstrated an abnormal activation of distal muscles of the lower limb and coordination impairments during gait in people with PD (pwPD). However, few have investigated how various characteristics of electromyograms (EMGs) change before, during and after a freezing episode (FE). Our objective was to quantify changes in proximal and distal leg muscle activity associated with FEs. In this study, 12 pwPD, confirmed as freezers, performed a repetitive stepping-in-place task used to elicit FE. Surface EMGs were collected from proximal [rectus femoris and biceps femoris (BF)] and distal [tibialis anterior (TA) and gastrocnemius medialis (GM)] muscles. Data epochs of 500 ms were extracted from EMG time series at four different periods: baseline, 2 s before a FE, during a FE, and 2 s after a FE. For each epoch, EMG amplitude [root-mean-square (RMS)], variability [coefficient of variation (CoV)], and inter-muscle functional connectivity (mutual information) were quantified. Results from the analysis of 21 FEs show a significant main effect of Period for EMG amplitude in bilateral TA and in the least affected GM ( p < 0.01), with decreased activation before freezing that remained low during and after the FE. On the other hand, a main effect of Period was also found in bilateral BF muscles ( p < 0.01) but with increased activation before freezing that was generally sustained during and after FE. Main effects of Period were also found for all measures of variability, except for the least affected GM, showing reduced variability during the FE that returned to baseline in all muscles except both TA. Moreover, an increase in functional connectivity between the least affected distal muscles was seen before the FE. Our findings confirm that many characteristics of EMG patterns of both distal and proximal leg muscles change throughout periods of a FE, suggesting both impairment and adaptive strategies from proximal muscles.

Publication Information

Output type

Research Output:
Contribution to journal
Article
Peer-review

Original language

English

Article number

951

Pages from-to (Number of pages)

Pages 951

Journal (Volume, Issue Number)

Frontiers in Neurology (Volume 10)

Publication milestones

  • Submitted - 05/06/2019
  • Accepted/In press - 19/08/2019
  • Published - 03/09/2019

Publication status

Published - 03/09/2019

ISSN

1664-2295

Publication IDs

  • Scopus: 85072837032
  • Scopus: 85072837032
  • PubMed: 31551912

Funding Details

The authors wish to express their gratitude to all OBEL group for their assistance during data collection, and the students of the Biomedical Engineering program at Universidad de Monterrey for their participation in data analyses. A special thank you goes to the Cummings Center for Seniors, the Quebec Parkinson Network, and all participants for their invaluable contribution to this study. Funding. This work was supported by grants from the Canada Foundation for Innovation (CFI, #10131) and from the Natural Sciences and Engineering Research Council (NSERC, #05111). HC was supported by a Ph.D. scholarship from the National Council on Science and Technology of Mexico (CONACYT) and by the Bloomberg Manulife Fellowship.
FundersFunding numbersUniversidad de Monterrey-
NSERC
05111
CFI
10131
CONACYT
-