Effect of high-intensity intermittent cycling sprints on neuromuscular activity

被引:39
作者
Billaut, F
Basset, FA
Giacomoni, M
Lemaître, F
Tricot, V
Falgairette, G
机构
[1] Univ Sud Toulon Var, Lab Ergonomie Sport & Performance, EA 3162, F-83957 La Garde, France
[2] Mem Univ Newfoundland, Sch Human Kinet & Recreat, St John, NF, Canada
[3] Univ Sci Sport & Educ Phys, JE UPRES 2318, Ctr Etude Transformat & Act Phys & Sport, Mont St Aignan, France
关键词
muscle fatigue; EMG; MVC; spectral analysis; neural control;
D O I
10.1055/s-2005-837488
中图分类号
G8 [体育];
学科分类号
04 ; 0403 ;
摘要
High-intensity intermittent sprints induce changes in metabolic and mechanical parameters. However, very few data are available about electrical manifestations of muscle fatigue following such sprints. In this study, quadriceps electromyographic (EMG) responses to repeated all-out exercise bouts of short duration were assessed from maximal voluntary isometric contractions (MVC) performed before and after sprints. Twelve men performed ten 6-s maximal cycling sprints, separated by 30-s rest. The MVC were performed pre-sprints ((pre)), post-sprints ((post)), and 5 min post-sprints ((post5)). Values of root-mean-square (RMS) and median frequency (MF) of vastus lateralis (VL) and vastus medialis (VM) were recorded during each MVC. During sprints, PPO decreased significantly in sprints 8, 9, and 10, compared to sprint 1 (-8%, -10%, and -11%, respectively, p < 0.05). Significant decrements were found in MVCpost (-13 %, p < 0.05) and MVCpost5 (-10.5%, p < 0.05) compared to MVCpre. The RMS value of VL muscle increased significantly after sprints (RMSpre vs. RMSpost: + 15%, p < 0.05). Values of MF decreased significantly in both VL and VM after sprints. In conclusion, our results indicate that the increase in quadriceps EMG amplitude following high-intensity intermittent short sprints was not sufficient to maintain the required force output. The concomitant decrease in frequency components would suggest a modification in the pattern of muscle fiber recruitment, and a decrease in conduction velocity of active fibers.
引用
收藏
页码:25 / 30
页数:6
相关论文
共 37 条
[11]   HUMAN MUSCLE METABOLISM DURING INTERMITTENT MAXIMAL EXERCISE [J].
GAITANOS, GC ;
WILLIAMS, C ;
BOOBIS, LH ;
BROOKS, S .
JOURNAL OF APPLIED PHYSIOLOGY, 1993, 75 (02) :712-719
[12]   IS THE MEAN POWER FREQUENCY-SHIFT OF THE EMG A SELECTIVE INDICATOR OF FATIGUE OF THE FAST TWITCH MOTOR UNITS [J].
GERDLE, B ;
FUGLMEYER, AR .
ACTA PHYSIOLOGICA SCANDINAVICA, 1992, 145 (02) :129-138
[13]   Neural control of force output during maximal and submaximal exercise [J].
Gibson, AS ;
Lambert, MI ;
Noakes, TD .
SPORTS MEDICINE, 2001, 31 (09) :637-650
[14]   ELECTRO-MYOGRAPHIC AND MECHANICAL CHARACTERISTICS OF HUMAN SKELETAL-MUSCLE DURING FATIGUE UNDER VOLUNTARY AND REFLEX CONDITIONS [J].
HAKKINEN, K ;
KOMI, PV .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1983, 55 (04) :436-444
[15]   Influence of fatigue on EMG/force ratio and cocontraction in cycling [J].
Hautier, CA ;
Arsac, LM ;
Deghdegh, K ;
Souquet, J ;
Belli, A ;
Lacour, JR .
MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2000, 32 (04) :839-843
[16]   EMG amplitude in maximal and submaximal exercise is dependent on signal capture rate [J].
Hunter, AM ;
Gibson, AS ;
Lambert, M ;
Dennis, S ;
Mullany, H ;
O'Malley, MJ ;
Vaughan, CL ;
Kay, D ;
Noakes, TD .
INTERNATIONAL JOURNAL OF SPORTS MEDICINE, 2003, 24 (02) :83-89
[17]  
Jones SA, 1998, ENG SPORT, P256
[18]   MUSCLE ACTION-POTENTIAL PROPAGATION VELOCITY CHANGES DURING ACTIVITY [J].
JUEL, C .
MUSCLE & NERVE, 1988, 11 (07) :714-719
[19]   Time-frequency analysis of myoelectric signals during dynamic contractions: A comparative study [J].
Karlsson, S ;
Yu, J ;
Akay, M .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2000, 47 (02) :228-238
[20]   Evidence for neuromuscular fatigue during high-intensity cycling in warm, humid conditions [J].
Kay, D ;
Marino, FE ;
Cannon, J ;
Gibson, AST ;
Lambert, MI ;
Noakes, TD .
EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY, 2001, 84 (1-2) :115-121