PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 27, 2013British Journal of Sports Medicine295 citations

Brain stimulation modulates the autonomic nervous system, rating of perceived exertion and performance during maximal exercise

View Full Paper
AOAlexandre Hideki OkanoEFEduardo Bodnariuc FontesRMRafael Ayres Montenegro

Structured PICO

Does anodal tDCS over the left temporal cortex improve exercise performance and modulate autonomic nervous system activity in trained cyclists?

P
Population
10 trained cyclists (mean age 33±9 years; 171.5±5.8 cm; 72.8±9.5 kg; 10-11 training years)
I
Intervention
20-min of anodal transcranial direct current stimulation (tDCS) applied over the left temporal cortex (T3)
C
Comparator
Sham stimulation
O
Outcome
Peak power output (PPO), rating of perceived exertion (RPE), heart rate (HR), and R-R intervals during a maximal incremental cycling exercise testsurrogate

Non-invasive brain stimulation over the temporal cortex improves peak power output and delays parasympathetic vagal withdrawal during maximal exercise in trained cyclists.

Abstract

BACKGROUND: The temporal and insular cortex (TC, IC) have been associated with autonomic nervous system (ANS) control and the awareness of emotional feelings from the body. Evidence shows that the ANS and rating of perceived exertion (RPE) regulate exercise performance. Non-invasive brain stimulation can modulate the cortical area directly beneath the electrode related to ANS and RPE, but it could also affect subcortical areas by connection within the cortico-cortical neural networks. This study evaluated the effects of transcranial direct current stimulation (tDCS) over the TC on the ANS, RPE and performance during a maximal dynamic exercise. METHODS: Ten trained cyclists participated in this study (33±9 years; 171.5±5.8 cm; 72.8±9.5 kg; 10-11 training years). After 20-min of receiving either anodal tDCS applied over the left TC (T3) or sham stimulation, subjects completed a maximal incremental cycling exercise test. RPE, heart rate (HR) and R-R intervals (as a measure of ANS function) were recorded continuously throughout the tests. Peak power output (PPO) was recorded at the end of the tests. RESULTS: With anodal tDCS, PPO improved by ~4% (anodal tDCS: 313.2±29.9 vs 301.0±19.8 watts: sham tDCS; p=0.043), parasympathetic vagal withdrawal was delayed (anodal tDCS: 147.5±53.3 vs 125.0±35.4 watts: sham tDCS; p=0.041) and HR was reduced at submaximal workloads. RPE also increased more slowly during exercise following anodal tDCS application, but maximal RPE and HR values were not affected by cortical stimulation. CONCLUSIONS: The findings suggest that non-invasive brain stimulation over the TC modulates the ANS activity and the sensory perception of effort and exercise performance, indicating that the brain plays a crucial role in the exercise performance regulation.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Okano et al. (2013) studied this question.

synapsesocial.com/papers/6a2bbcd9056c73c5a5484e11https://doi.org/10.1136/bjsports-2012-091658
Ask AI
Helpful
Bookmark
Share
View Full Paper