Study2018Open access

Core and skin temperature influences on the surface electromyographic responses to an isometric force and position task

Coletta NA, Mallette MM, Gabriel DA, Tyler CJ, Cheung SS

PloS one · 12 citations

How it was studied

Design
Controlled clinical trial (classified by our AI screen)
Studied in
People
Main outcome
Health markers and function

Who paid for it

Funding
Independent funding
Government
Natural Sciences and Engineering Research Council of Canada
Government
Natural Sciences and Engineering Research Council of Canada (CA)
Grants
Natural Sciences and Engineering Research Council of Canada (#227912‐12)

Based on 2 listed funder(s) and full-text disclosure statement.

Publication

Published
2018-03-29 · PLoS One · vol. 13 · issue 3 · p. e0195219
Publisher
Public Library of Science
Cited
27 citations · more than 83% of similar papers · 1.7× the field average
References
43 works
Access
Open access (journal) · CC-BY
Research areas
Thermoregulation and physiological responses · Infrared Thermography in Medicine · Sports Performance and Training
Keywords
Isometric exercise, Electromyography, Amplitude, Wrist, Contraction (grammar), Physical medicine and rehabilitation, Physics, Mathematics, Biomedical engineering, Materials science, Anatomy, Medicine, Physical therapy, Internal medicine, Optics
MeSH
muscle, skeletal, neuromuscular junction, humans, electromyography, body temperature, skin temperature, physical endurance, muscle contraction, isometric contraction, adult, female, male, young adult

5 authors

From CA, GB

  • Nico A. ColettaBrock University
  • Matthew M. MalletteBrock University
  • David A. GabrielBrock University
  • Christopher J. TylerUniversity of Roehampton
  • Stephen S. Cheung · correspondingBrock University

Abstract

The large body of work demonstrating hyperthermic impairment of neuromuscular function has utilized maximal isometric contractions, but extrapolating these findings to whole-body exercise and submaximal, dynamic contractions may be problematic. We isolated and compared core and skin temperature influences on an isometric force task versus a position task requiring dynamic maintenance of joint angle. Surface electromyography (sEMG) was measured on the flexor carpi radialis at 60% of baseline maximal voluntary contraction while either pushing against a rigid restraint (force task) or while maintaining a constant wrist angle and supporting an equivalent inertial load (position task). Twenty participants performed each task at 0.5°C rectal temperature (Tre) intervals while being passively heated from 37.1±0.3°C to ≥1.5°C Tre and then cooled to 37.8±0.3°C, permitting separate analyses of core versus skin temperature influences. During a 3-s contraction, trend analysis revealed a quadratic trend that peaked during hyperthermia for root-mean-square (RMS) amplitude during the force task. In contrast, RMS amplitude during the position task remained stable with passive heating, then rapidly increased with the initial decrease in skin temperature at the onset of passive cooling (p = 0.010). Combined hot core and hot skin elicited shifts toward higher frequencies in the sEMG signal during the force task (p = 0.003), whereas inconsistent changes in the frequency spectra occurred for the position task. Based on the patterns of RMS amplitude in response to thermal stress, we conclude that core temperature was the primary thermal afferent influencing neuromuscular response during a submaximal force task, with minimal input from skin temperature. However, skin temperature was the primary thermal afferent during a position task with minimal core temperature influence. Therefore, temperature has a task-dependent impact on neuromuscular responses.

Abstract via Europe PMC. Copyright remains with the authors or publisher (CC BY).

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