Acute effect of high-definition and conventional tDCS on exercise performance and psychophysiological responses in endurance athletes: a randomized controlled trial.

Daniel Gomes da Silva Machado, Marom Bikson, Abhishek Datta, Egas Caparelli-Dáquer, Gozde Unal, Abrahão F Baptista, Edilson Serpeloni Cyrino, Li Min Li, Edgard Morya, Alexandre Moreira, Alexandre Hideki Okano

Journal: Scientific reports 2021;11(1):13911

PMID: 34230503

Plain Language Summary

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Exercise-induced fatigue can be associated with a limited descending command from the central nervous system to the muscle which may affect muscle contraction and its ability to generate force. Transcranial direct current stimulation (tDCS) is the application of weak electrical current to stimulate different areas of the brain to influence exercise performance and perception. High-definition transcranial direct current stimulation (HD-tDCS) is a modification of conventional tDCS to increase the focality, precision, long-lasting effects and greater neuronal excitability change. This single-centre, randomised, crossover, single-blinded, sham-controlled trial compared the effects of HD-tDCS and conventional tDCS on exercise performance and psychophysiological responses in healthy young male endurance athletes. The study found no effect of HD-tDCS or conventional tDCS on exercise performance and psychophysiological responses to exhaustive exercise. Further robust studies are required to evaluate the effects of both forms of tDCS in athletes compared to non-athletes and its effects when tDCS is applied to other areas of the central nervous system. Healthcare professionals can use the results of this study to understand that there is no evidence currently to support the utilisation of tDCS in improving exercise performance in athletes.

Abstract

Transcranial direct current stimulation (tDCS) has been used aiming to boost exercise performance and inconsistent findings have been reported. One possible explanation is related to the limitations of the so-called "conventional" tDCS, which uses large rectangular electrodes, resulting in a diffuse electric field. A new tDCS technique called high-definition tDCS (HD-tDCS) has been recently developed. HD-tDCS uses small ring electrodes and produces improved focality and greater magnitude of its aftereffects. This study tested whether HD-tDCS would improve exercise performance to a greater extent than conventional tDCS. Twelve endurance athletes (29.4 ± 7.3 years; 60.15 ± 5.09 ml kg min) were enrolled in this single-center, randomized, crossover, and sham-controlled trial. To test reliability, participants performed two time to exhaustion (TTE) tests (control conditions) on a cycle simulator with 80% of peak power until volitional exhaustion. Next, they randomly received HD-tDCS (2.4 mA), conventional (2.0 mA), or active sham tDCS (2.0 mA) over the motor cortex for 20-min before performing the TTE test. TTE, heart rate (HR), associative thoughts, peripheral (lower limbs), and whole-body ratings of perceived exertion (RPE) were recorded every minute. Outcome measures were reliable. There was no difference in TTE between HD-tDCS (853.1 ± 288.6 s), simulated conventional (827.8 ± 278.7 s), sham (794.3 ± 271.2 s), or control conditions (TTE1 = 751.1 ± 261.6 s or TTE2 = 770.8 ± 250.6 s) [F = 1.537; P = 0.24; ηp = 0.123]. There was no effect on peripheral or whole-body RPE and associative thoughts (P > 0.05). No serious adverse effect was reported. A single session of neither HD-tDCS nor conventional tDCS changed exercise performance and psychophysiological responses in athletes, suggesting that a ceiling effect may exist.

Address: Associate Graduate Program in Physical Education - UEM/UEL, State University of Londrina, Londrina, PR, Brazil.; Department of Physical Education, Universidade Federal do Rio Grande do Norte, Natal, RN, Brazil.; Department of Biomedical Engineering, The City College of New York of CUNY, New York, NY, USA.; Nervous System Electric Stimulation Lab (LabEEL), Rio de Janeiro State University (UERJ), Rio de Janeiro, RJ, Brazil.; Center of Mathematics, Computation, and Cognition, Universidade Federal do ABC, São Bernardo do Campo, SP, Brazil.; Brazilian Institute of Neuroscience and Neurotechnology (BRAINN/CEPID-FAPESP), Faculty of Medical Sciences, Department of Neurology, University of Campinas, Campinas, São Paulo, Brazil.; Edmond and Lily Safra International Institute of Neuroscience, Santos Dumont Institute, Macaíba, RN, Brazil.; Department of Sport, School of Physical Education and Sport, University of São Paulo, São Paulo, SP, Brazil.; Associate Graduate Program in Physical Education - UEM/UEL, State University of Londrina, Londrina, PR, Brazil. [email protected].; Center of Mathematics, Computation, and Cognition, Universidade Federal do ABC, São Bernardo do Campo, SP, Brazil. [email protected].; Brazilian Institute of Neuroscience and Neurotechnology (BRAINN/CEPID-FAPESP), Faculty of Medical Sciences, Department of Neurology, University of Campinas, Campinas, São Paulo, Brazil. [email protected].
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