The Effect of Aerobic Exercise on Neuroplasticity within the Motor Cortex following Stroke

PLoS One. 2016 Mar 28;11(3):e0152377. doi: 10.1371/journal.pone.0152377. eCollection 2016.

Abstract

Background: Aerobic exercise is associated with enhanced plasticity in the motor cortex of healthy individuals, but the effect of aerobic exercise on neuroplasticity following a stroke is unknown.

Objective: The aim of this study was to compare corticomotoneuronal excitability and neuroplasticity in the upper limb cortical representation following a single session of low intensity lower limb cycling, or a rest control condition.

Methods: We recruited chronic stroke survivors to take part in three experimental conditions in a randomised, cross-over design. Corticomotoneuronal excitability was examined using transcranial magnetic stimulation to elicit motor evoked potentials in the affected first dorsal interosseus muscle. Following baseline measures, participants either cycled on a stationary bike at a low exercise intensity for 30 minutes, or remained resting in a seated position for 30 minutes. Neuroplasticity within the motor cortex was then examined using an intermittent theta burst stimulation (iTBS) paradigm. During the third experimental condition, participants cycled for the 30 minutes but did not receive any iTBS.

Results: Twelve participants completed the study. We found no significant effect of aerobic exercise on corticomotoneuronal excitability when compared to the no exercise condition (P > 0.05 for all group and time comparisons). The use of iTBS did not induce a neuroplastic-like response in the motor cortex with or without the addition of aerobic exercise.

Conclusions: Our results suggest that following a stroke, the brain may be less responsive to non-invasive brain stimulation paradigms that aim to induce short-term reorganisation, and aerobic exercise was unable to induce or improve this response.

Publication types

  • Clinical Trial
  • Randomized Controlled Trial
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Aged
  • Cross-Over Studies
  • Electromyography
  • Evoked Potentials, Motor / physiology
  • Exercise Therapy*
  • Female
  • Humans
  • Male
  • Middle Aged
  • Motor Cortex / physiology*
  • Neuronal Plasticity / physiology*
  • Stroke / physiopathology
  • Stroke / therapy*
  • Transcranial Magnetic Stimulation

Grants and funding

This research was supported by a Brain Foundation of Australia Research Grant (MM), http://brainfoundation.org.au/research, and a National Stroke Foundation Honours Research Grant (KM), https://strokefoundation.com.au/what-we-do/research/research-grants. MM was supported by a National Health and Medical Research Council Research Training Fellowship, ID 570133, http://www.nhmrc.gov.au/grants-funding/apply-funding/early-career-fellowships. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.