Transcranial magnetic stimulation probes the excitability of the primary motor cortex: A framework to account for the facilitating effects of acute whole-body exercise on motor processes

被引:12
作者
Davranche, Karen [1 ]
Temesi, John [2 ]
Verges, Samuel [3 ,4 ]
Hasbroucq, Thierry [5 ]
机构
[1] Univ Aix Marseille 1, CNRS, LPC UMR 7290, FR FR 3512 3C, F-13331 Marseille 3, France
[2] Univ Calgary, Fac Kinesiol, Human Performance Lab, Calgary, AB T2N 1N4, Canada
[3] Grenoble Alpes Univ, Lab HP2, Grenoble, France
[4] INSERM, U1042, Grenoble, France
[5] Univ Aix Marseille 1, CNRS, LNC UMR 7291, FR FR 3512 3C, F-13331 Marseille 3, France
关键词
Corticospinal excitability; Exercise-cognitive function interaction; Intracortical inhibition; Transcranial magnetic stimulation; SUSTAINED CYCLING EXERCISE; SUPRASPINAL FATIGUE; PHYSICAL-EXERCISE; SILENT PERIOD; REACTION-TIME; PERFORMANCE; SUPPRESSION; SPEED; INHIBITION; ACCURACY;
D O I
10.1016/j.jshs.2014.09.001
中图分类号
F [经济];
学科分类号
02 ;
摘要
The effects of exercise on decision-making performance have been studied using a wide variety of cognitive tasks and exercise interventions. Although the current literature supports a beneficial influence of acute exercise on cognitive performance, the mechanisms underlying this phenomenon have not yet been elucidated. We review studies that used single-pulse transcranial magnetic stimulation (TMS) to probe the excitability of motor structures during whole-body exercise and present a framework to account for the facilitating effects of acute exercise on motor processes. Recent results suggest that, even in the absence of fatigue, the increase in corticospinal excitability classically reported during submaximal and exhausting exercises may be accompanied by a reduction in intracortical inhibition. We propose that reduced intracortical inhibition elicits an adaptive central mechanism that counteracts the progressive reduction in muscle responsiveness caused by peripheral fatigue. Such a reduction would render the motor cortex more sensitive to upstream influences, thus causing increased corticospinal excitability. Furthermore, reduction of intracortical inhibition may account for the more efficient descending drive and for the improvement of reaction time performance during exercise. The adaptive modulation in intracortical inhibition could be implemented through a general increase in reticular activation that would further account for enhanced sensory sensitivity. Copyright (C) 2015, Shanghai University of Sport. Production and hosting by Elsevier B.V. All rights reserved.
引用
收藏
页码:24 / 29
页数:6
相关论文
共 40 条
[1]   Effect of Hypohydration on Peripheral and Corticospinal Excitability and Voluntary Activation [J].
Bowtell, Joanna L. ;
Avenell, Gareth ;
Hunter, Steven P. ;
Mileva, Katya N. .
PLOS ONE, 2013, 8 (10)
[2]   The nature of corticospinal paths driving human motoneurones during voluntary contractions [J].
Butler, Jane E. ;
Larsen, Thomas S. ;
Gandevia, Simon C. ;
Petersen, Nicolas T. .
JOURNAL OF PHYSIOLOGY-LONDON, 2007, 584 (02) :651-659
[3]   The effects of acute exercise on cognitive performance: A meta-analysis [J].
Chang, Y. K. ;
Labban, J. D. ;
Gapin, J. I. ;
Etnier, J. L. .
BRAIN RESEARCH, 2012, 1453 :87-101
[4]   CHOICE-REACTION TIME DURING GRADED-EXERCISE IN RELATION TO BLOOD LACTATE AND PLASMA-CATECHOLAMINE THRESHOLDS [J].
CHMURA, J ;
NAZAR, K ;
KACIUBAUSCILKO, H .
INTERNATIONAL JOURNAL OF SPORTS MEDICINE, 1994, 15 (04) :172-176
[5]   SUPPRESSION OF VOLUNTARY MOTOR-ACTIVITY REVEALED USING TRANSCRANIAL MAGNETIC STIMULATION OF THE MOTOR CORTEX IN MAN [J].
DAVEY, NJ ;
ROMAIGUERE, P ;
MASKILL, DW ;
ELLAWAY, PH .
JOURNAL OF PHYSIOLOGY-LONDON, 1994, 477 (02) :223-235
[6]   Physical exercise facilitates motor processes in simple reaction time performance: An electromyographic analysis [J].
Davranche, K ;
Burle, B ;
Audiffren, M ;
Hasbroucq, T .
NEUROSCIENCE LETTERS, 2006, 396 (01) :54-56
[7]   Critical flicker frequency threshold increment after an exhausting exercise [J].
Davranche, K ;
Pichon, A .
JOURNAL OF SPORT & EXERCISE PSYCHOLOGY, 2005, 27 (04) :515-520
[8]   Information processing during physical exercise: a chronometric and electromyographic study [J].
Davranche, K ;
Burle, B ;
Audiffren, M ;
Hasbroucq, T .
EXPERIMENTAL BRAIN RESEARCH, 2005, 165 (04) :532-540
[9]   Facilitating effects of exercise on information processing [J].
Davranche, K ;
Audiffren, M .
JOURNAL OF SPORTS SCIENCES, 2004, 22 (05) :419-428
[10]  
Davranche K, 2009, EXERCISE COGNITIVE F