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Published in: Sports Medicine 4/2009

01-04-2009 | Review Article

Muscle Fatigue in Males and Females during Multiple-Sprint Exercise

Authors: Dr François Billaut, David Bishop

Published in: Sports Medicine | Issue 4/2009

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Abstract

Females have often been reported to have a greater muscle fatigue resistance than males, especially during exercise at low-to-moderate intensities. Differences in muscle mass, muscle metabolism and voluntary activation patterns have been the primary explanations for the differences in performance and physiological responses to exercise between sexes. However, while ample data are available for isometric contractions, dynamic activity is a less studied mode of exercise, and there is even less information regarding multiple- sprint exercise (MSE). This is surprising given that MSE places unique demands on metabolic processes in the muscle where energy supply oscillates between fuelling contractile activity and restoring homeostasis. As such, MSE provides a rich area for future applied research. This review examines the limited data available concerning the physiological responses of males and females to sprint exercise, and discusses the methodological confounds arising from non-appropriate comparison methods. Based on original findings, we highlight that sex differences in the absolute mechanical work performed during a given task might explain a significant part of the differences in physiological responses of males and females to sprint exercise. We therefore suggest that future studies using male and female subjects to answer basic physiological questions use mechanical work as a covariate.
Literature
1.
go back to reference Enoka RM, Stuart DG. Neurobiology of muscle fatigue. J Appl Physiol 1992; 72 (5): 1631–48PubMed Enoka RM, Stuart DG. Neurobiology of muscle fatigue. J Appl Physiol 1992; 72 (5): 1631–48PubMed
2.
go back to reference Gandevia S. Spinal and supraspinal factors in human muscle fatigue. Physiol Rev 2001; 81: 1725–89PubMed Gandevia S. Spinal and supraspinal factors in human muscle fatigue. Physiol Rev 2001; 81: 1725–89PubMed
3.
go back to reference Bigland-Ritchie B, Furbush F, Woods JJ. Fatigue of intermittent submaximal voluntary contractions: central and peripheral factors. J Appl Physiol 1986; 61 (2): 421–9PubMed Bigland-Ritchie B, Furbush F, Woods JJ. Fatigue of intermittent submaximal voluntary contractions: central and peripheral factors. J Appl Physiol 1986; 61 (2): 421–9PubMed
4.
go back to reference Fuglevand A, Zackowski K, Huey K, et al. Impairment of neuromuscular propagation during human fatiguing contractions at submaximal forces. J Physiol 1993; 460: 549–72PubMed Fuglevand A, Zackowski K, Huey K, et al. Impairment of neuromuscular propagation during human fatiguing contractions at submaximal forces. J Physiol 1993; 460: 549–72PubMed
6.
go back to reference Merton P. Voluntary strength and fatigue. J Physiol 1954; 123: 553–64PubMed Merton P. Voluntary strength and fatigue. J Physiol 1954; 123: 553–64PubMed
7.
go back to reference Kent-Braun JA. Central and peripheral contributions to muscle fatigue in humans during sustained maximal effort. Eur J Appl Physiol 1999; 80: 57–63CrossRef Kent-Braun JA. Central and peripheral contributions to muscle fatigue in humans during sustained maximal effort. Eur J Appl Physiol 1999; 80: 57–63CrossRef
8.
go back to reference Taylor JL, Allen GM, Butler JE, et al. Supraspinal fatigue during intermittent maximal voluntary contractions of the human elbow flexors. J Appl Physiol 2000; 89: 305–11PubMed Taylor JL, Allen GM, Butler JE, et al. Supraspinal fatigue during intermittent maximal voluntary contractions of the human elbow flexors. J Appl Physiol 2000; 89: 305–11PubMed
9.
10.
go back to reference Hicks AL, Kent-Braun J, Ditor DS. Sex differences in human skeletal muscle fatigue. Exerc Sport Sci Rev 2001; 29 (3): 109–12PubMedCrossRef Hicks AL, Kent-Braun J, Ditor DS. Sex differences in human skeletal muscle fatigue. Exerc Sport Sci Rev 2001; 29 (3): 109–12PubMedCrossRef
11.
go back to reference Shephard RJ. Exercise and training in women: part I. Influence of gender on exercise and training responses. Can J Appl Physiol 2000; 25 (1): 19–34PubMedCrossRef Shephard RJ. Exercise and training in women: part I. Influence of gender on exercise and training responses. Can J Appl Physiol 2000; 25 (1): 19–34PubMedCrossRef
12.
go back to reference Bangsbo J, Norregaard L, Thorso F. Activity profile of competition soccer. Can J Sport Sci 1991; 16 (2): 110–6PubMed Bangsbo J, Norregaard L, Thorso F. Activity profile of competition soccer. Can J Sport Sci 1991; 16 (2): 110–6PubMed
13.
go back to reference Mendez-Villanueva A, Fernandez-Fernandez J, Bishop D, et al. Activity patterns, blood lactate concentrations and ratings of perceived exertion during a professional singles tennis tournament. Br J Sports Med 2007; 41 (5): 296–300PubMedCrossRef Mendez-Villanueva A, Fernandez-Fernandez J, Bishop D, et al. Activity patterns, blood lactate concentrations and ratings of perceived exertion during a professional singles tennis tournament. Br J Sports Med 2007; 41 (5): 296–300PubMedCrossRef
14.
go back to reference Spencer M, Lawrence S, Rechichi C, et al. Time-motion analysis of elite field hockey, with special reference to repeated-sprint activity. J Sports Sci 2004; 22: 843–50PubMedCrossRef Spencer M, Lawrence S, Rechichi C, et al. Time-motion analysis of elite field hockey, with special reference to repeated-sprint activity. J Sports Sci 2004; 22: 843–50PubMedCrossRef
15.
go back to reference Balsom PD, Seger JY, Sjodin B, et al. Maximal-intensity intermittent exercise: effect of recovery duration. Int J Sports Med 1992; 13 (7): 528–33PubMedCrossRef Balsom PD, Seger JY, Sjodin B, et al. Maximal-intensity intermittent exercise: effect of recovery duration. Int J Sports Med 1992; 13 (7): 528–33PubMedCrossRef
16.
go back to reference Billaut F, Giacomoni M, Falgairette G. Maximal intermittent cycling exercise: effects of recovery duration and gender. J Appl Physiol 2003; 95: 1632–7PubMed Billaut F, Giacomoni M, Falgairette G. Maximal intermittent cycling exercise: effects of recovery duration and gender. J Appl Physiol 2003; 95: 1632–7PubMed
17.
go back to reference Batterham AM, Birch KM. Allometry of anaerobic performance: a gender comparison. Can J Appl Physiol 1996; 21: 45–62CrossRef Batterham AM, Birch KM. Allometry of anaerobic performance: a gender comparison. Can J Appl Physiol 1996; 21: 45–62CrossRef
18.
go back to reference Cramer JT, Housh TH, Weir JP, et al. Power output, mechanomyographic, and electromyographic responses tomaximal concentric, isokinetic muscle actions in men and women. J Strength Cond Res 2002; 16: 399–408PubMed Cramer JT, Housh TH, Weir JP, et al. Power output, mechanomyographic, and electromyographic responses tomaximal concentric, isokinetic muscle actions in men and women. J Strength Cond Res 2002; 16: 399–408PubMed
19.
go back to reference Esbjörnsson-Liljedahl M, Sylvén C, Holm I, et al. Fast twitch fibres may predict anaerobic performance in both females and males. Int J Sports Med 1993; 14: 257–63CrossRef Esbjörnsson-Liljedahl M, Sylvén C, Holm I, et al. Fast twitch fibres may predict anaerobic performance in both females and males. Int J Sports Med 1993; 14: 257–63CrossRef
20.
go back to reference Falgairette G, Billaut F, Giacomoni M, et al. Effect of inertia on performance and fatigue pattern during repeated cycle sprints in males and females. Int J Sports Med 2004; 25: 235–40PubMedCrossRef Falgairette G, Billaut F, Giacomoni M, et al. Effect of inertia on performance and fatigue pattern during repeated cycle sprints in males and females. Int J Sports Med 2004; 25: 235–40PubMedCrossRef
21.
go back to reference Falkel JE, Sawka MN, Levine L, et al. Upper to lower body muscular strength and endurance ratios for women and men. Ergonomics 1985; 28 (12): 1661–70PubMedCrossRef Falkel JE, Sawka MN, Levine L, et al. Upper to lower body muscular strength and endurance ratios for women and men. Ergonomics 1985; 28 (12): 1661–70PubMedCrossRef
22.
23.
go back to reference Hunter SK, Enoka RM. Sex differences in the fatigability of arm muscles depends on absolute force during isometric contractions. J Appl Physiol 2001; 91: 2686–94PubMed Hunter SK, Enoka RM. Sex differences in the fatigability of arm muscles depends on absolute force during isometric contractions. J Appl Physiol 2001; 91: 2686–94PubMed
24.
go back to reference Ikegawa S, Fukunaga T. Comparison of muscle cross-sectional area and strength between untrained women and men. Eur J Appl Physiol Occup Physiol 1994; 68 (2): 148–54PubMedCrossRef Ikegawa S, Fukunaga T. Comparison of muscle cross-sectional area and strength between untrained women and men. Eur J Appl Physiol Occup Physiol 1994; 68 (2): 148–54PubMedCrossRef
25.
go back to reference Krivickas LS, Suh D, Wilkins J, et al. Age- and gender related differences in maximum shortening velocity of skeletal muscle fibers. Am J Phys Med Rehabil 2001; 80(6): 447–55PubMedCrossRef Krivickas LS, Suh D, Wilkins J, et al. Age- and gender related differences in maximum shortening velocity of skeletal muscle fibers. Am J Phys Med Rehabil 2001; 80(6): 447–55PubMedCrossRef
26.
go back to reference Laubach LL. Comparative muscular strength of men and women: a review of the literature. Aviat Space Environ Med 1976; 47 (5): 534–42PubMed Laubach LL. Comparative muscular strength of men and women: a review of the literature. Aviat Space Environ Med 1976; 47 (5): 534–42PubMed
27.
go back to reference Martin RJ, Dore E, Twisk J, et al. Longitudinal changes of maximal short-term peak power in girls and boys during growth. Med Sci Sports Exerc 2004; 36 (3): 498–503PubMedCrossRef Martin RJ, Dore E, Twisk J, et al. Longitudinal changes of maximal short-term peak power in girls and boys during growth. Med Sci Sports Exerc 2004; 36 (3): 498–503PubMedCrossRef
28.
go back to reference Mayhew J, Salm P. Gender differences in anaerobic power tests. Eur J Appl Physiol 1990; 60: 133–8CrossRef Mayhew J, Salm P. Gender differences in anaerobic power tests. Eur J Appl Physiol 1990; 60: 133–8CrossRef
29.
go back to reference Miller AEJ, MacDougall JD, Tarnopolsky MA, et al. Gender differences in strength and muscle fibre characteristics. Eur J Appl Physiol 1993; 66: 254–62CrossRef Miller AEJ, MacDougall JD, Tarnopolsky MA, et al. Gender differences in strength and muscle fibre characteristics. Eur J Appl Physiol 1993; 66: 254–62CrossRef
30.
go back to reference Winter EM, Brookes FBC, Hamley EJ. Maximal exercise performance and lean leg volume in men and women. J Sports Sci 1991; 9: 3–13PubMedCrossRef Winter EM, Brookes FBC, Hamley EJ. Maximal exercise performance and lean leg volume in men and women. J Sports Sci 1991; 9: 3–13PubMedCrossRef
31.
go back to reference Clark BC, Manini T M, Thé DJ, et al. Gender differences in skeletal muscle fatigability are related to contraction type and EMG spectral compression. J Appl Physiol 2003; 94: 2263–72PubMed Clark BC, Manini T M, Thé DJ, et al. Gender differences in skeletal muscle fatigability are related to contraction type and EMG spectral compression. J Appl Physiol 2003; 94: 2263–72PubMed
32.
go back to reference Linnamo V, Hakkinen K, Komi PV. Neuromuscular fatigue and recovery in maximal compared to explosives trength loading. Eur J Appl Physiol Occup Physiol 1998; 77 (1-2): 176–81PubMedCrossRef Linnamo V, Hakkinen K, Komi PV. Neuromuscular fatigue and recovery in maximal compared to explosives trength loading. Eur J Appl Physiol Occup Physiol 1998; 77 (1-2): 176–81PubMedCrossRef
33.
go back to reference Maughan RJ, Harmon M, Leiper JB, et al. Endurance capacity of untrained males and females in isometric and dynamic muscular contractions. Eur J Appl Physiol 1986; 55: 395–400CrossRef Maughan RJ, Harmon M, Leiper JB, et al. Endurance capacity of untrained males and females in isometric and dynamic muscular contractions. Eur J Appl Physiol 1986; 55: 395–400CrossRef
34.
go back to reference Semmler JG, Kutzscher DV, Enoka RM. Gender differences in the fatigability of the human skeletal muscle. J Neurophysiol 1999; 82: 3590–93PubMed Semmler JG, Kutzscher DV, Enoka RM. Gender differences in the fatigability of the human skeletal muscle. J Neurophysiol 1999; 82: 3590–93PubMed
35.
go back to reference West W, Hicks AL, Clements L, et al. The relationship between voluntary electromyogram, endurance time and intensity of effort in isometric handgrip exercise. Eur J Appl Physiol 1995; 71: 301–5CrossRef West W, Hicks AL, Clements L, et al. The relationship between voluntary electromyogram, endurance time and intensity of effort in isometric handgrip exercise. Eur J Appl Physiol 1995; 71: 301–5CrossRef
36.
go back to reference Esbjörnsson-Liljedahl M, Bodin K, Jansson E. Smaller muscle ATP reduction in women than in men by repeated bouts of sprints exercise. J Appl Physiol 2002; 93: 1075–83PubMed Esbjörnsson-Liljedahl M, Bodin K, Jansson E. Smaller muscle ATP reduction in women than in men by repeated bouts of sprints exercise. J Appl Physiol 2002; 93: 1075–83PubMed
37.
go back to reference Froese E, Houston M. Performance during the Wingate anaerobic test and muscle morphology in males and females. Int J Sports Med 1987; 8: 35–9PubMedCrossRef Froese E, Houston M. Performance during the Wingate anaerobic test and muscle morphology in males and females. Int J Sports Med 1987; 8: 35–9PubMedCrossRef
38.
go back to reference Glenmark B, Hedberg G, Jansson E. Changes in muscle fibre type from adolescence to adulthood in women and men. Acta Physiol Scand 1992; 146 (2): 251–9PubMedCrossRef Glenmark B, Hedberg G, Jansson E. Changes in muscle fibre type from adolescence to adulthood in women and men. Acta Physiol Scand 1992; 146 (2): 251–9PubMedCrossRef
39.
go back to reference Hill DW, Smith JC. Gender difference in anaerobic capacity: role of aerobic contribution. Br J Sports Med 1993; 27 (1): 45–8PubMedCrossRef Hill DW, Smith JC. Gender difference in anaerobic capacity: role of aerobic contribution. Br J Sports Med 1993; 27 (1): 45–8PubMedCrossRef
40.
go back to reference Kumagai K, Abe T, Brechue WF, et al. Sprint performance is related to muscle fascicle length in male 100-m sprinters. J Appl Physiol 2000; 88 (3): 811–6PubMed Kumagai K, Abe T, Brechue WF, et al. Sprint performance is related to muscle fascicle length in male 100-m sprinters. J Appl Physiol 2000; 88 (3): 811–6PubMed
41.
go back to reference Maughan RJ, Watson JS, Weir J. Strength and cross-sectional area of human skeletal muscle. J Physiol 1983; 338: 37–49PubMed Maughan RJ, Watson JS, Weir J. Strength and cross-sectional area of human skeletal muscle. J Physiol 1983; 338: 37–49PubMed
42.
go back to reference Jaworowski A, Porter MM, Holmback AM, et al. Enzyme activities in the tibialis anterior muscle of young moderately active men and women: relationship with body composition, muscle cross-sectional area and fibre type composition. Acta Physiol Scand 2002; 176 (3): 215–25PubMedCrossRef Jaworowski A, Porter MM, Holmback AM, et al. Enzyme activities in the tibialis anterior muscle of young moderately active men and women: relationship with body composition, muscle cross-sectional area and fibre type composition. Acta Physiol Scand 2002; 176 (3): 215–25PubMedCrossRef
43.
go back to reference Wright A, Marino F, Kay D, et al. Influence of lean body mass on performance differences of male and female distance runners in warm, humid environments. Am J Phys Anthropol 2002; 118: 285–91PubMedCrossRef Wright A, Marino F, Kay D, et al. Influence of lean body mass on performance differences of male and female distance runners in warm, humid environments. Am J Phys Anthropol 2002; 118: 285–91PubMedCrossRef
44.
go back to reference Hakkinen K, Keskinen KL. Muscle cross-sectional area and voluntary force production characteristics in elite strength- and endurance-trained athletes and sprinters. Eur J Appl Physiol Occup Physiol 1989; 59 (3): 215–20PubMedCrossRef Hakkinen K, Keskinen KL. Muscle cross-sectional area and voluntary force production characteristics in elite strength- and endurance-trained athletes and sprinters. Eur J Appl Physiol Occup Physiol 1989; 59 (3): 215–20PubMedCrossRef
45.
go back to reference Maughan RJ. The limits of human athletic performance. Ann Transplant 2005; 10 (4): 52–4PubMed Maughan RJ. The limits of human athletic performance. Ann Transplant 2005; 10 (4): 52–4PubMed
46.
go back to reference Seynnes OR, de Boer M, Narici MV. Early skeletal muscle hypertrophy and architectural changes in response to high-intensity resistance training. J Appl Physiol 2007; 102 (1): 368–73PubMedCrossRef Seynnes OR, de Boer M, Narici MV. Early skeletal muscle hypertrophy and architectural changes in response to high-intensity resistance training. J Appl Physiol 2007; 102 (1): 368–73PubMedCrossRef
47.
go back to reference Tesch PA. Skeletal muscle adaptations consequent to long-term heavy resistance exercise. Med Sci Sports Exerc 1988; 20 (5 Suppl.): S 132–4 Tesch PA. Skeletal muscle adaptations consequent to long-term heavy resistance exercise. Med Sci Sports Exerc 1988; 20 (5 Suppl.): S 132–4
48.
go back to reference Bishop D, Lawrence S, Spencer M. Predictors of repeated sprints ability in elite females hockey players. J Sci Med Sport 2003; 6 (2): 199–209PubMedCrossRef Bishop D, Lawrence S, Spencer M. Predictors of repeated sprints ability in elite females hockey players. J Sci Med Sport 2003; 6 (2): 199–209PubMedCrossRef
49.
go back to reference Maud PJ, Schultz BB. Gender comparisons in anaerobic power and anaerobic capacity test. Br J Sports Med 1986; 20: 51–4PubMedCrossRef Maud PJ, Schultz BB. Gender comparisons in anaerobic power and anaerobic capacity test. Br J Sports Med 1986; 20: 51–4PubMedCrossRef
50.
go back to reference Nindl BC, Mahar MT, Harman EA, et al. Lower and upper body anaerobic performance in male and female adolescent athletes. Med Sci Sports Exerc 1995; 27 (2): 235–41PubMed Nindl BC, Mahar MT, Harman EA, et al. Lower and upper body anaerobic performance in male and female adolescent athletes. Med Sci Sports Exerc 1995; 27 (2): 235–41PubMed
51.
go back to reference Perez-Gomez J, Rodriguez GV, Ara I, et al. Role of muscle mass on sprint performance: gender differences? Eur J Appl Physiol 2008; 102 (6): 685–94PubMedCrossRef Perez-Gomez J, Rodriguez GV, Ara I, et al. Role of muscle mass on sprint performance: gender differences? Eur J Appl Physiol 2008; 102 (6): 685–94PubMedCrossRef
52.
go back to reference Weber CL, Chia M, Inbar O. Gender differences in anaerobic power of the arms and legs: a scaling issue. Med Sci Sports Exerc 2006; 38: 129–37PubMedCrossRef Weber CL, Chia M, Inbar O. Gender differences in anaerobic power of the arms and legs: a scaling issue. Med Sci Sports Exerc 2006; 38: 129–37PubMedCrossRef
53.
go back to reference Ditor DS, Kent-Braun J. The effect of age and gender on the relative fatigability of the human adductor pollicis muscle. Can J Physiol Pharmacol 2000; 78: 781–90PubMedCrossRef Ditor DS, Kent-Braun J. The effect of age and gender on the relative fatigability of the human adductor pollicis muscle. Can J Physiol Pharmacol 2000; 78: 781–90PubMedCrossRef
54.
go back to reference Esbjörnsson-Liljedahl M, Sundberg CJ, Norman B, et al. Metabolic response in type I and type II muscle fibers during a 30-s cycle sprint in men and women. J Appl Physiol 1999; 87: 1326–32PubMed Esbjörnsson-Liljedahl M, Sundberg CJ, Norman B, et al. Metabolic response in type I and type II muscle fibers during a 30-s cycle sprint in men and women. J Appl Physiol 1999; 87: 1326–32PubMed
55.
go back to reference Fulco CS, Rock PB, Muza SR, et al. Slower fatigue and faster recovery of the adductor pollicis muscle in women matched for strength with men. Acta Physiol Scand 1999; 167: 233–9PubMedCrossRef Fulco CS, Rock PB, Muza SR, et al. Slower fatigue and faster recovery of the adductor pollicis muscle in women matched for strength with men. Acta Physiol Scand 1999; 167: 233–9PubMedCrossRef
56.
go back to reference Gratas-Delamarche A, Le Cam R, Delamarche P, et al. Lactate and catecholamine responses in male and females printers during a Wingate test. Eur J Appl Physiol 1994; 68: 362–6CrossRef Gratas-Delamarche A, Le Cam R, Delamarche P, et al. Lactate and catecholamine responses in male and females printers during a Wingate test. Eur J Appl Physiol 1994; 68: 362–6CrossRef
57.
go back to reference Hunter SK, Critchlow A, Shin I-S, et al. Men are more fatigable than strength-matched women when performing intermittent submaximal contractions. J Appl Physiol 2004; 96: 2125–32PubMedCrossRef Hunter SK, Critchlow A, Shin I-S, et al. Men are more fatigable than strength-matched women when performing intermittent submaximal contractions. J Appl Physiol 2004; 96: 2125–32PubMedCrossRef
58.
go back to reference Vincent S, Berthon P, Zouhal H, et al. Plasma glucose, insulin and catecholamine responses to a Wingate test in physically active women and men. Eur J Appl Physiol 2004; 91 (1): 15–21PubMedCrossRef Vincent S, Berthon P, Zouhal H, et al. Plasma glucose, insulin and catecholamine responses to a Wingate test in physically active women and men. Eur J Appl Physiol 2004; 91 (1): 15–21PubMedCrossRef
59.
go back to reference Yanagiya T, Kanehisa H, Kouzaki M, et al. Effect of gender on mechanical power output during repeated bouts of maximal running in trained teenagers. Int J Sports Med 2003; 24: 304–10PubMedCrossRef Yanagiya T, Kanehisa H, Kouzaki M, et al. Effect of gender on mechanical power output during repeated bouts of maximal running in trained teenagers. Int J Sports Med 2003; 24: 304–10PubMedCrossRef
60.
go back to reference Ahtiainen JP, Pakarinen A, Alen M, et al. Muscle hypertrophy, hormonal adaptations and strength development during strength training in strength-trained and untrained men. Eur J Appl Physiol 2003; 89 (6): 555–63PubMedCrossRef Ahtiainen JP, Pakarinen A, Alen M, et al. Muscle hypertrophy, hormonal adaptations and strength development during strength training in strength-trained and untrained men. Eur J Appl Physiol 2003; 89 (6): 555–63PubMedCrossRef
61.
go back to reference Sinha-Hikim I, Cornford M, Gaytan H, et al. Effects of testosterone supplementation on skeletal muscle fiber hypertrophy and satellite cells in community-dwelling older men. J Clin Endocrinol Metab 2006; 91 (8): 3024–33PubMedCrossRef Sinha-Hikim I, Cornford M, Gaytan H, et al. Effects of testosterone supplementation on skeletal muscle fiber hypertrophy and satellite cells in community-dwelling older men. J Clin Endocrinol Metab 2006; 91 (8): 3024–33PubMedCrossRef
62.
go back to reference Nygaard E. Skeletal muscle fibre characteristics in young women. Acta Physiol Scand 1981; 112 (3): 299–304PubMedCrossRef Nygaard E. Skeletal muscle fibre characteristics in young women. Acta Physiol Scand 1981; 112 (3): 299–304PubMedCrossRef
63.
go back to reference Ruby B, Robergs R, Waters D, et al. Effects of estradiol on substrate turnover during exercise in amenorrheic females. Med Sci Sports Exerc 1997; 29 (9): 1160–9PubMedCrossRef Ruby B, Robergs R, Waters D, et al. Effects of estradiol on substrate turnover during exercise in amenorrheic females. Med Sci Sports Exerc 1997; 29 (9): 1160–9PubMedCrossRef
64.
go back to reference Giustina A, Veldhuis JD. Pathophysiology of the neuroregulation of growth hormone secretion in experimental animals and the human. Endocr Rev 1998; 19 (6): 717–97PubMedCrossRef Giustina A, Veldhuis JD. Pathophysiology of the neuroregulation of growth hormone secretion in experimental animals and the human. Endocr Rev 1998; 19 (6): 717–97PubMedCrossRef
65.
go back to reference Pincus SM, Gevers EF, Robinson IC, et al. Females secrete growth hormone with more process irregularity than males in both humans and rats. Am J Physiol 1996; 270(1 Pt 1): E107–15 Pincus SM, Gevers EF, Robinson IC, et al. Females secrete growth hormone with more process irregularity than males in both humans and rats. Am J Physiol 1996; 270(1 Pt 1): E107–15
66.
go back to reference Veldhuis JD. The neuroendocrine regulation and implications of pulsatile GH secretion: gender effects. Endocrinology 1995; 5: 198–213CrossRef Veldhuis JD. The neuroendocrine regulation and implications of pulsatile GH secretion: gender effects. Endocrinology 1995; 5: 198–213CrossRef
67.
go back to reference Wideman L, Weltman JY, Shah N, et al. Effects of gender on exercise-induced growth hormone release. J Appl Physiol 1999; 87 (3): 1154–62PubMed Wideman L, Weltman JY, Shah N, et al. Effects of gender on exercise-induced growth hormone release. J Appl Physiol 1999; 87 (3): 1154–62PubMed
68.
go back to reference Sandoval DA, Matt KS. Gender differences in the endocrine and metabolic responses to hypoxic exercise. J Appl Physiol 2002; 92 (2): 504–12PubMed Sandoval DA, Matt KS. Gender differences in the endocrine and metabolic responses to hypoxic exercise. J Appl Physiol 2002; 92 (2): 504–12PubMed
69.
go back to reference Thompson DL, Weltman JY, Rogol AD, et al. Cholinergic and opioid involvement in release of growth hormone during exercise and recovery. J Appl Physiol 1993; 75 (2): 870–8PubMed Thompson DL, Weltman JY, Rogol AD, et al. Cholinergic and opioid involvement in release of growth hormone during exercise and recovery. J Appl Physiol 1993; 75 (2): 870–8PubMed
70.
go back to reference Tarnopolsky LJ, MacDougall JD, Atkinson SA, et al. Gender differences in substrate for endurance exercise. J Appl Physiol 1990; 68 (1): 302–8PubMed Tarnopolsky LJ, MacDougall JD, Atkinson SA, et al. Gender differences in substrate for endurance exercise. J Appl Physiol 1990; 68 (1): 302–8PubMed
71.
go back to reference Weber CL, Schneider DA. Maximal accumulated oxygen deficit expressed relative to the active muscle mass for cycling in untrained male and female subjects. Eur J Appl Physiol 2000; 82 (4): 255–61PubMedCrossRef Weber CL, Schneider DA. Maximal accumulated oxygen deficit expressed relative to the active muscle mass for cycling in untrained male and female subjects. Eur J Appl Physiol 2000; 82 (4): 255–61PubMedCrossRef
72.
go back to reference Dar DE, Zinder O. Short term effect of steroids on catecholamine secretion from bovine adrenal medulla chromaffin cells. Neuropharmacology 1997; 36 (11-12): 1783–8PubMedCrossRef Dar DE, Zinder O. Short term effect of steroids on catecholamine secretion from bovine adrenal medulla chromaffin cells. Neuropharmacology 1997; 36 (11-12): 1783–8PubMedCrossRef
73.
go back to reference Lebrun CM, Rumball JS. Relationship between athletic performance and menstrual cycle. Curr Women’s Health Rep 2001; 1: 232–40 Lebrun CM, Rumball JS. Relationship between athletic performance and menstrual cycle. Curr Women’s Health Rep 2001; 1: 232–40
74.
go back to reference Glenmark B. Skeletal muscle fibre types, physical performance, physical activity and attitude to physical activity in women and men: a follow-up from age 16 to 27. Acta Physiol Scand Suppl 1994; 623: 1–47PubMed Glenmark B. Skeletal muscle fibre types, physical performance, physical activity and attitude to physical activity in women and men: a follow-up from age 16 to 27. Acta Physiol Scand Suppl 1994; 623: 1–47PubMed
75.
go back to reference Glenmark B, Nilsson M, Gao H, et al. Difference in skeletal muscle function in males versus females: role of estrogen receptor-β. Am J Physiol Endocrinol Metab 2004; 287: E1125–31CrossRef Glenmark B, Nilsson M, Gao H, et al. Difference in skeletal muscle function in males versus females: role of estrogen receptor-β. Am J Physiol Endocrinol Metab 2004; 287: E1125–31CrossRef
76.
go back to reference Middleton LE, Wenger HA. Effects of menstrual phase on performance and recovery in intense intermittent activity. Eur J Appl Physiol 2006; 96: 53–8PubMedCrossRef Middleton LE, Wenger HA. Effects of menstrual phase on performance and recovery in intense intermittent activity. Eur J Appl Physiol 2006; 96: 53–8PubMedCrossRef
77.
go back to reference Phillips SK, Sanderson AG, Birch K, et al. Changes in maximal voluntary force of human adductor pollicis muscle during the menstrual cycle. J Physiol 1996; 496(Pt 2): 551–7PubMed Phillips SK, Sanderson AG, Birch K, et al. Changes in maximal voluntary force of human adductor pollicis muscle during the menstrual cycle. J Physiol 1996; 496(Pt 2): 551–7PubMed
78.
go back to reference Sarwar R, Niclos BB, Rutherford OM. Changes in muscle strength, relaxation rate and fatiguability during the human menstrual cycle. J Physiol 1996; 493 (Pt 1): 267–72PubMed Sarwar R, Niclos BB, Rutherford OM. Changes in muscle strength, relaxation rate and fatiguability during the human menstrual cycle. J Physiol 1996; 493 (Pt 1): 267–72PubMed
79.
go back to reference Jurkowski JE, Jones NL, Toews CJ, et al. Effects of menstrual cycle on blood lactate, O2 delivery, and performance during exercise. J Appl Physiol 1981; 51 (6): 1493–9PubMed Jurkowski JE, Jones NL, Toews CJ, et al. Effects of menstrual cycle on blood lactate, O2 delivery, and performance during exercise. J Appl Physiol 1981; 51 (6): 1493–9PubMed
80.
go back to reference McCracken M, Ainsworth B, Hackney AC. Effects of the menstrual cycle phase on the blood lactate responses to exercise. Eur J Appl Physiol Occup Physiol 1994; 69 (2): 174–5PubMedCrossRef McCracken M, Ainsworth B, Hackney AC. Effects of the menstrual cycle phase on the blood lactate responses to exercise. Eur J Appl Physiol Occup Physiol 1994; 69 (2): 174–5PubMedCrossRef
81.
go back to reference Matsuo T, Saitoh S, Suzuki M. Effects of the menstrual cycle on excess postexercise oxygen consumption in healthy young women. Metabolism 1999; 48 (3): 275–7PubMedCrossRef Matsuo T, Saitoh S, Suzuki M. Effects of the menstrual cycle on excess postexercise oxygen consumption in healthy young women. Metabolism 1999; 48 (3): 275–7PubMedCrossRef
82.
go back to reference DiBrezzo R, Fort IL, Brown B. Relationships among strength, endurance, weight and body fat during three phases of the menstrual cycle. J Sports Med Phys Fitness 1991; 31 (1): 89–94 DiBrezzo R, Fort IL, Brown B. Relationships among strength, endurance, weight and body fat during three phases of the menstrual cycle. J Sports Med Phys Fitness 1991; 31 (1): 89–94
83.
go back to reference Gur H. Concentric and eccentric isokinetic measurements in knee muscles during the menstrual cycle: a special reference to reciprocal moment ratios. Arch Phys Med Rehabil 1997; 78 (5): 501–5PubMedCrossRef Gur H. Concentric and eccentric isokinetic measurements in knee muscles during the menstrual cycle: a special reference to reciprocal moment ratios. Arch Phys Med Rehabil 1997; 78 (5): 501–5PubMedCrossRef
84.
go back to reference Janse de Jonge XA, Boot CR, Thom JM, et al. The influence of menstrual cycle phase on skeletal muscle contractile characteristics in humans. J Physiol 2001; 530(Pt 1): 161–6PubMedCrossRef Janse de Jonge XA, Boot CR, Thom JM, et al. The influence of menstrual cycle phase on skeletal muscle contractile characteristics in humans. J Physiol 2001; 530(Pt 1): 161–6PubMedCrossRef
85.
go back to reference Lebrun CM, McKenzie DC, Prior JC, et al. Effects of menstrual cycle phase on athletic performance. Med Sci Sports Exerc 1995; 27 (3): 437–44PubMed Lebrun CM, McKenzie DC, Prior JC, et al. Effects of menstrual cycle phase on athletic performance. Med Sci Sports Exerc 1995; 27 (3): 437–44PubMed
86.
go back to reference Blomstrand E, Radegran G, Saltin B. Maximum rate of oxygen uptake by human skeletal muscle in relation to maximal activities of enzymes in the Krebs cycle. J Physiol 1997; 501 (Pt 2): 455–60PubMedCrossRef Blomstrand E, Radegran G, Saltin B. Maximum rate of oxygen uptake by human skeletal muscle in relation to maximal activities of enzymes in the Krebs cycle. J Physiol 1997; 501 (Pt 2): 455–60PubMedCrossRef
87.
go back to reference Borges O, Essen-Gustavsson B. Enzyme activities in type I and II muscle fibres of human skeletal muscle in relation to age and torque development. Acta Physiol Scand 1989; 136 (1): 29–36PubMedCrossRef Borges O, Essen-Gustavsson B. Enzyme activities in type I and II muscle fibres of human skeletal muscle in relation to age and torque development. Acta Physiol Scand 1989; 136 (1): 29–36PubMedCrossRef
88.
go back to reference Komi PV, Karlsson J. Skeletal muscle fiber types, enzyme activities and physical performance in young males and females. Acta Physiol Scand 1978; 103: 212–8CrossRef Komi PV, Karlsson J. Skeletal muscle fiber types, enzyme activities and physical performance in young males and females. Acta Physiol Scand 1978; 103: 212–8CrossRef
89.
go back to reference Gauthier JM, Theriault R, Theriault G, et al. Electrical stimulation-induced changes in skeletal muscle enzymes of men and women. Med Sci Sports Exerc 1992; 24 (11): 1252–6PubMed Gauthier JM, Theriault R, Theriault G, et al. Electrical stimulation-induced changes in skeletal muscle enzymes of men and women. Med Sci Sports Exerc 1992; 24 (11): 1252–6PubMed
90.
go back to reference Green HJ, Fraser IG, Ranney DA. Male and female differences in enzyme activities of energy metabolism invastus lateralis muscle. J Neurol Sci 1984; 65: 323–31PubMedCrossRef Green HJ, Fraser IG, Ranney DA. Male and female differences in enzyme activities of energy metabolism invastus lateralis muscle. J Neurol Sci 1984; 65: 323–31PubMedCrossRef
91.
go back to reference Simoneau JA, Bouchard C. Human variation in skeletal muscle fiber-type proportion and enzyme activities. Am J Physiol 1989; 257 (4 Pt 1): E567–72 Simoneau JA, Bouchard C. Human variation in skeletal muscle fiber-type proportion and enzyme activities. Am J Physiol 1989; 257 (4 Pt 1): E567–72
92.
go back to reference Simoneau JA, Lortie G, Boulay MR, et al. Skeletal muscle histochemical and biochemical characteristics in sedentary male and female subjects. Can J Physiol Pharmacol 1985; 63 (1): 30–5PubMedCrossRef Simoneau JA, Lortie G, Boulay MR, et al. Skeletal muscle histochemical and biochemical characteristics in sedentary male and female subjects. Can J Physiol Pharmacol 1985; 63 (1): 30–5PubMedCrossRef
93.
go back to reference Dovey SM, Reeder AI, Chalmers DJ. Continuity and change in sporting and leisure time physical activities during adolescence. Br J Sports Med 1998; 32 (1): 53–7PubMedCrossRef Dovey SM, Reeder AI, Chalmers DJ. Continuity and change in sporting and leisure time physical activities during adolescence. Br J Sports Med 1998; 32 (1): 53–7PubMedCrossRef
94.
95.
go back to reference Santos MP, Gomes H, Mota J. Physical activity and sedentary behaviors in adolescents. Ann Behav Med 2005; 30 (1): 21–4PubMedCrossRef Santos MP, Gomes H, Mota J. Physical activity and sedentary behaviors in adolescents. Ann Behav Med 2005; 30 (1): 21–4PubMedCrossRef
96.
go back to reference Telama R, Yang X. Decline of physical activity from youth to young adulthood in Finland. Med Sci Sports Exerc 2000; 32: 1617–22PubMed Telama R, Yang X. Decline of physical activity from youth to young adulthood in Finland. Med Sci Sports Exerc 2000; 32: 1617–22PubMed
97.
go back to reference Kent-Braun JA, Ng AV, Doyle JW, et al. Human skeletal muscle responses vary with age and gender during fatigue due to incremental isometric exercise. J Appl Physiol 2002; 93: 1813–23PubMed Kent-Braun JA, Ng AV, Doyle JW, et al. Human skeletal muscle responses vary with age and gender during fatigue due to incremental isometric exercise. J Appl Physiol 2002; 93: 1813–23PubMed
98.
go back to reference Carter SL, Rennie CD, Hamilton SJ, et al. Changes in skeletal muscle in males and females following endurance training. Can J Physiol Pharmacol 2001; 79 (5): 386–92PubMedCrossRef Carter SL, Rennie CD, Hamilton SJ, et al. Changes in skeletal muscle in males and females following endurance training. Can J Physiol Pharmacol 2001; 79 (5): 386–92PubMedCrossRef
99.
go back to reference Hoppeler H, Howald H, Conley K, et al. Endurance training in humans: aerobic capacity and structure of skeletal muscle. J Appl Physiol 1985; 59 (2): 320–7PubMed Hoppeler H, Howald H, Conley K, et al. Endurance training in humans: aerobic capacity and structure of skeletal muscle. J Appl Physiol 1985; 59 (2): 320–7PubMed
100.
go back to reference McKenzie S, Phillips SM, Carter SL, et al. Endurance exercise training attenuates leucine oxidation and BCOAD activation during exercise in humans. Am J Physiol Endocrinol Metab 2000; 278 (4): E580–7 McKenzie S, Phillips SM, Carter SL, et al. Endurance exercise training attenuates leucine oxidation and BCOAD activation during exercise in humans. Am J Physiol Endocrinol Metab 2000; 278 (4): E580–7
101.
go back to reference Esbjörnsson-Liljedahl M, Holm I, Christer S, et al. Different responses of skeletal muscle following sprint training in men and women. Eur J Appl Physiol 1996; 74: 375–83CrossRef Esbjörnsson-Liljedahl M, Holm I, Christer S, et al. Different responses of skeletal muscle following sprint training in men and women. Eur J Appl Physiol 1996; 74: 375–83CrossRef
102.
go back to reference Harber V, Petersen S, Chilibeck P. Thyroid hormone concentrations and muscle metabolism in amenorrheic and eumenorrheic athletes. Can J Appl Physiol 1998; 23 (3): 293–306PubMedCrossRef Harber V, Petersen S, Chilibeck P. Thyroid hormone concentrations and muscle metabolism in amenorrheic and eumenorrheic athletes. Can J Appl Physiol 1998; 23 (3): 293–306PubMedCrossRef
103.
go back to reference Russ DW, Kent-Braun JA. Sex differences in human skeletal muscle fatigue are eliminated under ischemic conditions. J Appl Physiol 2003; 94: 2414–22PubMed Russ DW, Kent-Braun JA. Sex differences in human skeletal muscle fatigue are eliminated under ischemic conditions. J Appl Physiol 2003; 94: 2414–22PubMed
104.
go back to reference Brooks S, Nevill ME, Meleagros L, et al. The hormonal responses to repetitive brief maximal exercise in humans. Eur J Appl Physiol 1990; 60: 144–8CrossRef Brooks S, Nevill ME, Meleagros L, et al. The hormonal responses to repetitive brief maximal exercise in humans. Eur J Appl Physiol 1990; 60: 144–8CrossRef
105.
go back to reference Nevill ME, Holmyard DJ, Hall GM, et al. Growth hormone responses to treadmill sprinting in sprint- and endurance-trained athletes. Eur J Appl Physiol Occup Physiol 1996; 72 (5-6): 460–7PubMedCrossRef Nevill ME, Holmyard DJ, Hall GM, et al. Growth hormone responses to treadmill sprinting in sprint- and endurance-trained athletes. Eur J Appl Physiol Occup Physiol 1996; 72 (5-6): 460–7PubMedCrossRef
106.
go back to reference Jacobs I, Tesch P, Bar-Or O, et al. Lactate in human skeletal muscle after 10 and 30 s of supramaximal exercise. J Appl Physiol 1983; 55 (2): 365–7PubMed Jacobs I, Tesch P, Bar-Or O, et al. Lactate in human skeletal muscle after 10 and 30 s of supramaximal exercise. J Appl Physiol 1983; 55 (2): 365–7PubMed
107.
go back to reference Bodin K, Esbjörnsson-Liljedahl M, Jansson E. Alactic ATP turnover rate during a 30-s cycle sprint in females and males [abstract]. Clin Sci 1994; 87 Suppl.: 205 Bodin K, Esbjörnsson-Liljedahl M, Jansson E. Alactic ATP turnover rate during a 30-s cycle sprint in females and males [abstract]. Clin Sci 1994; 87 Suppl.: 205
108.
go back to reference Bishop D, Edge J, Dawson B, et al. Gender differences in muscle metabolism during repeated-sprint exercise [abstract]. International Biochemistry of Exercise Conference; 2003 Jul 13-16; Maastricht Bishop D, Edge J, Dawson B, et al. Gender differences in muscle metabolism during repeated-sprint exercise [abstract]. International Biochemistry of Exercise Conference; 2003 Jul 13-16; Maastricht
109.
go back to reference Brooke MH, Engel WK. The histographic analysis of human muscle biopsies with regard to fiber types, 1: adult male and female. Neurology 1969; 19 (3): 221–33PubMedCrossRef Brooke MH, Engel WK. The histographic analysis of human muscle biopsies with regard to fiber types, 1: adult male and female. Neurology 1969; 19 (3): 221–33PubMedCrossRef
110.
go back to reference Gerdle B, Karlsson S, Crenshaw AG, et al. The relationships between EMG and muscle morphology throughout sustained static knee extension at two submaximal force levels. Acta Physiol Scand 1997; 160 (4): 341–51PubMedCrossRef Gerdle B, Karlsson S, Crenshaw AG, et al. The relationships between EMG and muscle morphology throughout sustained static knee extension at two submaximal force levels. Acta Physiol Scand 1997; 160 (4): 341–51PubMedCrossRef
111.
go back to reference Ruby B, Robergs R. Gender differences in substrate utilisation during exercise. Sports Med 1994; 17 (6): 393–410PubMedCrossRef Ruby B, Robergs R. Gender differences in substrate utilisation during exercise. Sports Med 1994; 17 (6): 393–410PubMedCrossRef
112.
go back to reference Sale DG, MacDougall JD, Alway SE, et al. Voluntary strength and muscle characteristics in untrained men and women and male bodybuilders. J Appl Physiol 1987; 62(5): 1786–93PubMed Sale DG, MacDougall JD, Alway SE, et al. Voluntary strength and muscle characteristics in untrained men and women and male bodybuilders. J Appl Physiol 1987; 62(5): 1786–93PubMed
113.
go back to reference Gerdle B, Karlsson S, Crenshaw AG, et al. The influences of muscle fibre proportions and areas upon EMG during maximal dynamic knee extensions. Eur J Appl Physiol 2000; 81 (1-2): 2–10PubMedCrossRef Gerdle B, Karlsson S, Crenshaw AG, et al. The influences of muscle fibre proportions and areas upon EMG during maximal dynamic knee extensions. Eur J Appl Physiol 2000; 81 (1-2): 2–10PubMedCrossRef
114.
go back to reference De Luca CJ. The use of surface electromyography in biomechanics. J Appl Biomechanics 1997; 13: 135–63 De Luca CJ. The use of surface electromyography in biomechanics. J Appl Biomechanics 1997; 13: 135–63
115.
go back to reference Farina D, Merletti R, Enoka RM. The extraction of neural strategies from the surface EMG. J Appl Physiol 2004; 96: 1486–95PubMedCrossRef Farina D, Merletti R, Enoka RM. The extraction of neural strategies from the surface EMG. J Appl Physiol 2004; 96: 1486–95PubMedCrossRef
116.
go back to reference Hakkinen K. Neuromuscular fatigue and recovery in male and female athletes during heavy resistance exercise. Int J Sports Med 1993; 14: 53–9PubMedCrossRef Hakkinen K. Neuromuscular fatigue and recovery in male and female athletes during heavy resistance exercise. Int J Sports Med 1993; 14: 53–9PubMedCrossRef
117.
go back to reference Gandevia SC, Allen GM, Butler JE, et al. Supraspinal factors in human muscle fatigue: evidence for suboptimal output from the motor cortex. J Physiol 1996; 490 (Pt 2): 529–36PubMed Gandevia SC, Allen GM, Butler JE, et al. Supraspinal factors in human muscle fatigue: evidence for suboptimal output from the motor cortex. J Physiol 1996; 490 (Pt 2): 529–36PubMed
118.
go back to reference Todd G, Taylor JL, Gandevia SC. Measurement of voluntary activation of fresh and fatigued human muscles using transcranial magnetic stimulation. J Physiol 2003; 551 (Pt 2): 661–71PubMedCrossRef Todd G, Taylor JL, Gandevia SC. Measurement of voluntary activation of fresh and fatigued human muscles using transcranial magnetic stimulation. J Physiol 2003; 551 (Pt 2): 661–71PubMedCrossRef
119.
go back to reference Hunter SK, Butler JE, Todd G, et al. Supraspinal fatigue does not explain the sex difference in muscle fatigue of maximal contractions. J Appl Physiol 2006; 101 (4): 1036–44PubMedCrossRef Hunter SK, Butler JE, Todd G, et al. Supraspinal fatigue does not explain the sex difference in muscle fatigue of maximal contractions. J Appl Physiol 2006; 101 (4): 1036–44PubMedCrossRef
120.
go back to reference Gerdle B, Fugl-Meyer AR. Is the mean power frequency shift of the EMG a selective indicator of fatigue of the fast twitch motor units? Acta Physiol Scand 1992; 145 (2): 129–38PubMedCrossRef Gerdle B, Fugl-Meyer AR. Is the mean power frequency shift of the EMG a selective indicator of fatigue of the fast twitch motor units? Acta Physiol Scand 1992; 145 (2): 129–38PubMedCrossRef
121.
go back to reference Juel C. Muscle action potential propagation velocity changes during activity. Muscle Nerve 1988; 11: 714–9PubMedCrossRef Juel C. Muscle action potential propagation velocity changes during activity. Muscle Nerve 1988; 11: 714–9PubMedCrossRef
122.
go back to reference Kupa E, Roy S, Kandarian S, et al. Effects of muscle fiber type and size on EMG median frequency and conduction velocity. J Appl Physiol 1995; 79: 23–32PubMed Kupa E, Roy S, Kandarian S, et al. Effects of muscle fiber type and size on EMG median frequency and conduction velocity. J Appl Physiol 1995; 79: 23–32PubMed
123.
go back to reference Glaister M. Multiple sprint work: physiological responses, mechanisms of fatigue and the influence of aerobic fitness. Sports Med 2005; 35: 757–77PubMedCrossRef Glaister M. Multiple sprint work: physiological responses, mechanisms of fatigue and the influence of aerobic fitness. Sports Med 2005; 35: 757–77PubMedCrossRef
124.
go back to reference Spencer M, Bishop D, Dawson B, et al. Physiological and metabolic responses of repeated-sprint activities: specific to field-based team sports. Sports Med 2005; 35 (12): 1025–44PubMedCrossRef Spencer M, Bishop D, Dawson B, et al. Physiological and metabolic responses of repeated-sprint activities: specific to field-based team sports. Sports Med 2005; 35 (12): 1025–44PubMedCrossRef
125.
go back to reference Bilodeau M, Schindler-Ivens S, Williams DM, et al. EMG frequency content changes with increasing force an dduring fatigue in the quadriceps femoris muscle of men and women. J Electromyogr Kinesiol 2003; 13: 83–92PubMedCrossRef Bilodeau M, Schindler-Ivens S, Williams DM, et al. EMG frequency content changes with increasing force an dduring fatigue in the quadriceps femoris muscle of men and women. J Electromyogr Kinesiol 2003; 13: 83–92PubMedCrossRef
126.
go back to reference Evetovich T, Housh T, Johnson G, et al. Gender comparisons of the mechanomyographic responses to maximal concentric and eccentric isokinetic muscle actions. MedSci Sports Exerc 1998; 30: 1697–702PubMedCrossRef Evetovich T, Housh T, Johnson G, et al. Gender comparisons of the mechanomyographic responses to maximal concentric and eccentric isokinetic muscle actions. MedSci Sports Exerc 1998; 30: 1697–702PubMedCrossRef
127.
go back to reference Hunter SK, Ryan DL, Ortega JD, et al. Task differences with the same load torque alter the endurance time of submaximal fatiguing contractions in humans. J Neurophysiol 2002; 88: 3087–96PubMedCrossRef Hunter SK, Ryan DL, Ortega JD, et al. Task differences with the same load torque alter the endurance time of submaximal fatiguing contractions in humans. J Neurophysiol 2002; 88: 3087–96PubMedCrossRef
128.
go back to reference Bogdanis GC, Nevill ME, Lakomy HK, et al. Power output and muscle metabolism during and following recovery from 10 and 20 s of maximal sprint exercise in humans. Acta Physiol Scand 1998; 163 (3): 261–72PubMedCrossRef Bogdanis GC, Nevill ME, Lakomy HK, et al. Power output and muscle metabolism during and following recovery from 10 and 20 s of maximal sprint exercise in humans. Acta Physiol Scand 1998; 163 (3): 261–72PubMedCrossRef
129.
go back to reference Bogdanis GC, Nevill ME, Lakomy HK, et al. Effects of active recovery on power output during repeated maximal sprint cycling. Eur J Appl Physiol Occup Physiol 1996; 74(5): 461–9PubMedCrossRef Bogdanis GC, Nevill ME, Lakomy HK, et al. Effects of active recovery on power output during repeated maximal sprint cycling. Eur J Appl Physiol Occup Physiol 1996; 74(5): 461–9PubMedCrossRef
130.
go back to reference Cheetham ME, Boobis LH, Brooks S, et al. Human muscle metabolism during sprint running. J Appl Physiol 1986; 61 (1): 54–60PubMed Cheetham ME, Boobis LH, Brooks S, et al. Human muscle metabolism during sprint running. J Appl Physiol 1986; 61 (1): 54–60PubMed
131.
go back to reference Lakomy H. Measurement of work and power output using friction-loaded cycle ergometer. Ergonomics 1986; 29 (4): 509–17PubMedCrossRef Lakomy H. Measurement of work and power output using friction-loaded cycle ergometer. Ergonomics 1986; 29 (4): 509–17PubMedCrossRef
132.
go back to reference Gaitanos GC, Williams C, Boobis LH, et al. Human muscle metabolism during intermittent maximal exercise. J Appl Physiol 1993; 75 (2): 712–9PubMed Gaitanos GC, Williams C, Boobis LH, et al. Human muscle metabolism during intermittent maximal exercise. J Appl Physiol 1993; 75 (2): 712–9PubMed
133.
go back to reference Boobis L, Williams C, Wootton S. Human muscle metabolism during brief maximal exercise [abstract]. J Physiol (Lond) 1982; 338 (21P): 22P Boobis L, Williams C, Wootton S. Human muscle metabolism during brief maximal exercise [abstract]. J Physiol (Lond) 1982; 338 (21P): 22P
134.
go back to reference Parolin ML, Chesley A, Matsos MP, et al. Regulation of skeletal muscle glycogen phosphorylase and PDH during maximal intermittent exercise. Am J Physiol 1999; 277(5 Pt 1): E890–900 Parolin ML, Chesley A, Matsos MP, et al. Regulation of skeletal muscle glycogen phosphorylase and PDH during maximal intermittent exercise. Am J Physiol 1999; 277(5 Pt 1): E890–900
135.
go back to reference Bogdanis GC, Nevill ME, Boobis LH, et al. Contribution of phosphocreatine and aerobic metabolism to energy supply during repeated sprint exercise. J Appl Physiol 1996; 80 (3): 876–84PubMed Bogdanis GC, Nevill ME, Boobis LH, et al. Contribution of phosphocreatine and aerobic metabolism to energy supply during repeated sprint exercise. J Appl Physiol 1996; 80 (3): 876–84PubMed
136.
go back to reference Bogdanis GC, Nevill ME, Boobis LH, et al. Recovery of power output and muscle metabolism after 10s and 20s of maximal sprint exercise in man. Clin Sci 1994; 87 Suppl. 1: 121–2 Bogdanis GC, Nevill ME, Boobis LH, et al. Recovery of power output and muscle metabolism after 10s and 20s of maximal sprint exercise in man. Clin Sci 1994; 87 Suppl. 1: 121–2
137.
go back to reference Boobis LH. Metabolic aspects of fatigue during sprinting. In: MacLeod D, Maughan RJ, Nimmo MA, et al., editors. Exercise: benefits, limitations and adaptations. London: E & FN Spon ed., 1987: 116–40 Boobis LH. Metabolic aspects of fatigue during sprinting. In: MacLeod D, Maughan RJ, Nimmo MA, et al., editors. Exercise: benefits, limitations and adaptations. London: E & FN Spon ed., 1987: 116–40
138.
go back to reference Spriet L, Söderlund K, Bergström M, et al. Anaerobic energy release in skeletal muscle during electrical stimulation in men. J Appl Physiol 1987; 62 (2): 611–5PubMedCrossRef Spriet L, Söderlund K, Bergström M, et al. Anaerobic energy release in skeletal muscle during electrical stimulation in men. J Appl Physiol 1987; 62 (2): 611–5PubMedCrossRef
139.
go back to reference Medbø JI, Tabata I. Anaerobic energy release in working muscle during 30 s to 3 min of exhausting bicycling. J Appl Physiol 1993; 75 (4): 1654–60PubMed Medbø JI, Tabata I. Anaerobic energy release in working muscle during 30 s to 3 min of exhausting bicycling. J Appl Physiol 1993; 75 (4): 1654–60PubMed
140.
go back to reference Dawson B, Goodman C, Lawrence S, et al. Muscle phosphocreatine repletion following single and repeated short sprint efforts. Scand J Med Sci Sports 1997; 7: 206–13PubMedCrossRef Dawson B, Goodman C, Lawrence S, et al. Muscle phosphocreatine repletion following single and repeated short sprint efforts. Scand J Med Sci Sports 1997; 7: 206–13PubMedCrossRef
141.
go back to reference Parra J, Cadefau J, Rodas G, et al. The distribution of rest periods affects performance and adaptations of energy metabolism induced by high-intensity training in human muscle. Acta Physiol Scand 2000; 169: 157–65PubMedCrossRef Parra J, Cadefau J, Rodas G, et al. The distribution of rest periods affects performance and adaptations of energy metabolism induced by high-intensity training in human muscle. Acta Physiol Scand 2000; 169: 157–65PubMedCrossRef
142.
go back to reference Bogdanis GC, Nevill ME, Lakomy HKA, et al. Muscle metabolism during repeated sprint exercise in man. J Physiol 1994; 475: 25P–6P Bogdanis GC, Nevill ME, Lakomy HKA, et al. Muscle metabolism during repeated sprint exercise in man. J Physiol 1994; 475: 25P–6P
143.
go back to reference Bogdanis GC, Nevill ME, Boobis LH, et al. Recovery of power output and muscle metabolites following 30 s of maximal sprint cycling in man. J Physiol 1995; 482 (Pt 2): 467–80PubMed Bogdanis GC, Nevill ME, Boobis LH, et al. Recovery of power output and muscle metabolites following 30 s of maximal sprint cycling in man. J Physiol 1995; 482 (Pt 2): 467–80PubMed
144.
go back to reference Casey A, Constantin-Teodosiu D, Howell S, et al. Metabolic response of type I and II muscle fibers during repeated bouts of maximal exercise in humans. Am J Physiol 1996; 271 (1 Pt 1): E38–43 Casey A, Constantin-Teodosiu D, Howell S, et al. Metabolic response of type I and II muscle fibers during repeated bouts of maximal exercise in humans. Am J Physiol 1996; 271 (1 Pt 1): E38–43
145.
go back to reference Hirvonen J, Rehunen S, Rusko H, et al. Breakdown of high-energy phosphate compounds and lactate accumulation during short supramaximal exercise. Eur J Appl Physiol Occup Physiol 1987; 56 (3): 253–9PubMedCrossRef Hirvonen J, Rehunen S, Rusko H, et al. Breakdown of high-energy phosphate compounds and lactate accumulation during short supramaximal exercise. Eur J Appl Physiol Occup Physiol 1987; 56 (3): 253–9PubMedCrossRef
146.
go back to reference Karatzaferi C, de Haan A, Ferguson RA, et al. Phosphocreatine and ATP content in human single muscle fibres before and after maximum dynamic exercise. Pflügers Arch-Eur J Physiol 2001; 442: 467–74CrossRef Karatzaferi C, de Haan A, Ferguson RA, et al. Phosphocreatine and ATP content in human single muscle fibres before and after maximum dynamic exercise. Pflügers Arch-Eur J Physiol 2001; 442: 467–74CrossRef
147.
go back to reference Bangsbö J, Graham TE, Kiens B, et al. Elevated muscle glycogen and anaerobic energy production during exhaustive exercise in man. J Physiol 1992; 451: 205–27PubMed Bangsbö J, Graham TE, Kiens B, et al. Elevated muscle glycogen and anaerobic energy production during exhaustive exercise in man. J Physiol 1992; 451: 205–27PubMed
148.
go back to reference Hargreaves M, McKenna MJ, Jenkins DG, et al. Muscle metabolites and performance during high-intensity, intermittent exercise. J Appl Physiol 1998; 84 (5): 1687–91PubMed Hargreaves M, McKenna MJ, Jenkins DG, et al. Muscle metabolites and performance during high-intensity, intermittent exercise. J Appl Physiol 1998; 84 (5): 1687–91PubMed
149.
go back to reference Nevill ME, Boobis LH, Brooks S, et al. Effect of training on muscle metabolism during treadmill sprinting. J Appl Physiol 1989; 67 (6): 2376–82PubMed Nevill ME, Boobis LH, Brooks S, et al. Effect of training on muscle metabolism during treadmill sprinting. J Appl Physiol 1989; 67 (6): 2376–82PubMed
151.
go back to reference Harris R, Sahlin K, Hultman E. Phosphagen and lactate contents of m. quadriceps femoris of man after exercise. J Appl Physiol 1977; 43 (5): 852–7PubMed Harris R, Sahlin K, Hultman E. Phosphagen and lactate contents of m. quadriceps femoris of man after exercise. J Appl Physiol 1977; 43 (5): 852–7PubMed
152.
go back to reference Spriet L, Lindinger M, McKelvie R, et al. Muscle glycogenolysis and H+ concentration during maximal intermittent cycling. J Appl Physiol 1989; 66 (1): 8–13PubMed Spriet L, Lindinger M, McKelvie R, et al. Muscle glycogenolysis and H+ concentration during maximal intermittent cycling. J Appl Physiol 1989; 66 (1): 8–13PubMed
153.
go back to reference Spriet L, Söderlund K, Bergström M, et al. Skeletal muscle glycogenolysis, glycolysis, and pH during electrical stimulation in men. J Appl Physiol 1987; 62 (2): 616–21PubMed Spriet L, Söderlund K, Bergström M, et al. Skeletal muscle glycogenolysis, glycolysis, and pH during electrical stimulation in men. J Appl Physiol 1987; 62 (2): 616–21PubMed
154.
go back to reference Allen DG, Westerblad H, Lännergren J. The role of intracellular acidosis in muscle fatigue. Adv Exp Med Biol 1995; 384: 57–68PubMed Allen DG, Westerblad H, Lännergren J. The role of intracellular acidosis in muscle fatigue. Adv Exp Med Biol 1995; 384: 57–68PubMed
155.
go back to reference Harris R, Edwards R, Hultman E, et al. The time course of phosphorylcreatine resynthesis during recovery of the quadriceps muscle in man. Pflügers Arch 1976; 367: 137–42PubMedCrossRef Harris R, Edwards R, Hultman E, et al. The time course of phosphorylcreatine resynthesis during recovery of the quadriceps muscle in man. Pflügers Arch 1976; 367: 137–42PubMedCrossRef
156.
go back to reference Mercier J, Mercier B, Prefaut C. Blood lactate increases during the force velocity exercise test. Int J Sports Med 1991; 12 (1): 17–20PubMedCrossRef Mercier J, Mercier B, Prefaut C. Blood lactate increases during the force velocity exercise test. Int J Sports Med 1991; 12 (1): 17–20PubMedCrossRef
157.
go back to reference Bergström M, Hultman E. Relaxation and force during fatigue and recovery of human quadriceps muscle: relations to metabolite changes. Eur J Appl Physiol 1991; 418: 153–60 Bergström M, Hultman E. Relaxation and force during fatigue and recovery of human quadriceps muscle: relations to metabolite changes. Eur J Appl Physiol 1991; 418: 153–60
158.
go back to reference MacIntosh BR, Allen DG. Contractile changes and mechanisms of muscle fatigue. In: Nigg BM, MacIntosh BR, Mester J, editors. Biomechanics and biology of movement. Champaign (IL): Human Kinetics, 2000: 365–83 MacIntosh BR, Allen DG. Contractile changes and mechanisms of muscle fatigue. In: Nigg BM, MacIntosh BR, Mester J, editors. Biomechanics and biology of movement. Champaign (IL): Human Kinetics, 2000: 365–83
159.
go back to reference Rotto DM, Kaufman MP. Effect of metabolic products of muscular contraction on discharge of group III and IV afferents. J Appl Physiol 1988; 64 (6): 2306–13PubMed Rotto DM, Kaufman MP. Effect of metabolic products of muscular contraction on discharge of group III and IV afferents. J Appl Physiol 1988; 64 (6): 2306–13PubMed
160.
go back to reference Sacco P, Newberry R, McFadden L, et al. Depression of human electromyographic activity by fatigue of a synergistic muscle. Muscle Nerve 1997; 20: 710–7PubMedCrossRef Sacco P, Newberry R, McFadden L, et al. Depression of human electromyographic activity by fatigue of a synergistic muscle. Muscle Nerve 1997; 20: 710–7PubMedCrossRef
161.
go back to reference Sinoway LI, Hill JM, Pickar JG, et al. Effects of contraction and lactic acid on the discharge of group III muscle afferents in cats. J Neurophysiol 1993; 69 (4): 1053–9PubMed Sinoway LI, Hill JM, Pickar JG, et al. Effects of contraction and lactic acid on the discharge of group III muscle afferents in cats. J Neurophysiol 1993; 69 (4): 1053–9PubMed
162.
go back to reference Juel C, Pilegaard H, Nielsen JJ, et al. Interstitial K(+) in human skeletal muscle during and after dynamic graded exercise determined by microdialysis. Am J Physiol Regul Integr Comp Physiol 2000; 278 (2): R400–6 Juel C, Pilegaard H, Nielsen JJ, et al. Interstitial K(+) in human skeletal muscle during and after dynamic graded exercise determined by microdialysis. Am J Physiol Regul Integr Comp Physiol 2000; 278 (2): R400–6
163.
go back to reference Lindinger MI, Heigenhauser GJ. The roles of ion fluxes in skeletal muscle fatigue. Can J Physiol Pharmacol 1991; 69(2): 246–53PubMedCrossRef Lindinger MI, Heigenhauser GJ. The roles of ion fluxes in skeletal muscle fatigue. Can J Physiol Pharmacol 1991; 69(2): 246–53PubMedCrossRef
164.
go back to reference Lindinger MI, Heigenhauser GJ, McKelvie RS, et al. Blood ion regulation during repeated maximal exercise and recovery in humans. Am J Physiol 1992; 262 (1 Pt 2): R126–36 Lindinger MI, Heigenhauser GJ, McKelvie RS, et al. Blood ion regulation during repeated maximal exercise and recovery in humans. Am J Physiol 1992; 262 (1 Pt 2): R126–36
165.
go back to reference Medbo JI, Sejersted OM. Plasma potassium changes with high intensity exercise. J Physiol 1990; 421: 105–22PubMed Medbo JI, Sejersted OM. Plasma potassium changes with high intensity exercise. J Physiol 1990; 421: 105–22PubMed
166.
go back to reference Mohr M, Nordsborg N, Nielsen JJ, et al. Potassium kinetics in human muscle interstitium during repeated intense exercise in relation to fatigue. Pflugers Arch 2004; 448 (4): 452–6PubMedCrossRef Mohr M, Nordsborg N, Nielsen JJ, et al. Potassium kinetics in human muscle interstitium during repeated intense exercise in relation to fatigue. Pflugers Arch 2004; 448 (4): 452–6PubMedCrossRef
167.
go back to reference Allen DG, Westerblad H. Role of phosphate and calcium stores in muscle fatigue. J Physiol 2001; 536: 657–65PubMedCrossRef Allen DG, Westerblad H. Role of phosphate and calcium stores in muscle fatigue. J Physiol 2001; 536: 657–65PubMedCrossRef
168.
go back to reference Steele D, Duke A. Metabolic factors contributing to altered Ca2+ regulation in skeletal muscle fatigue. Acta Physiol Scand 2003; 179: 39–48PubMedCrossRef Steele D, Duke A. Metabolic factors contributing to altered Ca2+ regulation in skeletal muscle fatigue. Acta Physiol Scand 2003; 179: 39–48PubMedCrossRef
169.
go back to reference Westerblad H, Lee JA, Lännergren J, et al. Cellular mechanisms of fatigue in skeletal muscle. Am J Physiol 1991; 261: C195–209 Westerblad H, Lee JA, Lännergren J, et al. Cellular mechanisms of fatigue in skeletal muscle. Am J Physiol 1991; 261: C195–209
170.
go back to reference Vandewalle H, Maton B, Le Bozec S, et al. An electromyographic study of an all-out exercise on a cycle ergometer. Arch Int Physiol Biochim Biophys 1991; 99 (1): 89–93PubMedCrossRef Vandewalle H, Maton B, Le Bozec S, et al. An electromyographic study of an all-out exercise on a cycle ergometer. Arch Int Physiol Biochim Biophys 1991; 99 (1): 89–93PubMedCrossRef
171.
go back to reference Hunter AM, St Clair Gibson A, Lambert MI, et al. Effects of supramaximal exercise on the electromyographic signal. Br J Sports Med 2003; 37: 296–9PubMedCrossRef Hunter AM, St Clair Gibson A, Lambert MI, et al. Effects of supramaximal exercise on the electromyographic signal. Br J Sports Med 2003; 37: 296–9PubMedCrossRef
172.
go back to reference Taylor AD, Bronks R, Smith P, et al. Myoelectric evidence of peripheral muscle fatigue during exercise in severe hypoxia: some references to m. vastus lateralis myosin heavy chain composition. Eur J Appl Physiol Occup Physiol 1997; 75 (2): 151–9PubMedCrossRef Taylor AD, Bronks R, Smith P, et al. Myoelectric evidence of peripheral muscle fatigue during exercise in severe hypoxia: some references to m. vastus lateralis myosin heavy chain composition. Eur J Appl Physiol Occup Physiol 1997; 75 (2): 151–9PubMedCrossRef
173.
go back to reference Linnamo V, Bottas R, Komi PV. Force and EMG power spectrum during and after eccentric and concentric fatigue. J Electromyogr Kinesiol 2000; 10: 293–300PubMedCrossRef Linnamo V, Bottas R, Komi PV. Force and EMG power spectrum during and after eccentric and concentric fatigue. J Electromyogr Kinesiol 2000; 10: 293–300PubMedCrossRef
174.
go back to reference Linssen W, Jacobs M, Stegeman D, et al. Muscle fatigue in McArdle’s disease: muscle fibre conduction velocity and surface EMG frequency spectrum during ischaemic exercise. Brain 1990; 113: 1779–93PubMedCrossRef Linssen W, Jacobs M, Stegeman D, et al. Muscle fatigue in McArdle’s disease: muscle fibre conduction velocity and surface EMG frequency spectrum during ischaemic exercise. Brain 1990; 113: 1779–93PubMedCrossRef
175.
go back to reference St Clair Gibson A, Lambert MI, Noakes TD. Neural control of force output during maximal and submaximal exercise. Sports Med 2001; 31: 637–50PubMedCrossRef St Clair Gibson A, Lambert MI, Noakes TD. Neural control of force output during maximal and submaximal exercise. Sports Med 2001; 31: 637–50PubMedCrossRef
176.
go back to reference Murphy M, Patton J, Frederick F. Comparative anaerobic power of men and women. Aviat Space Environ Med 1986; 57: 636–41PubMed Murphy M, Patton J, Frederick F. Comparative anaerobic power of men and women. Aviat Space Environ Med 1986; 57: 636–41PubMed
177.
go back to reference Doré E, Martin R, Ratel S, et al. Gender differences in peak muscle performance during growth. Int J Sports Med 2005; 26: 274–80PubMedCrossRef Doré E, Martin R, Ratel S, et al. Gender differences in peak muscle performance during growth. Int J Sports Med 2005; 26: 274–80PubMedCrossRef
178.
go back to reference Esbjörnsson-Liljedahl M, Jansson E. Sex difference in plasma ammonia but not in muscle inosine monophosphate accumulation following sprint exercise in humans. Eur J Appl Physiol Occup Physiol 1999; 79 (5): 404–8PubMedCrossRef Esbjörnsson-Liljedahl M, Jansson E. Sex difference in plasma ammonia but not in muscle inosine monophosphate accumulation following sprint exercise in humans. Eur J Appl Physiol Occup Physiol 1999; 79 (5): 404–8PubMedCrossRef
179.
go back to reference Tarnopolsky MA. Gender differences in substrate metabolism during endurance exercise. Can J Appl Physiol 2000; 25 (4): 312–27PubMedCrossRef Tarnopolsky MA. Gender differences in substrate metabolism during endurance exercise. Can J Appl Physiol 2000; 25 (4): 312–27PubMedCrossRef
180.
go back to reference Tarnopolsky MA. Gender differences in metabolism, nutrition and supplements. J Sci Med Sport 2000; 3 (3): 287–98PubMedCrossRef Tarnopolsky MA. Gender differences in metabolism, nutrition and supplements. J Sci Med Sport 2000; 3 (3): 287–98PubMedCrossRef
181.
go back to reference Russ DW, Lanza IR, Rothman D, et al. Sex differences in glycolysis during brief, intense isometric contractions. Muscle Nerve 2005; 32: 647–55PubMedCrossRef Russ DW, Lanza IR, Rothman D, et al. Sex differences in glycolysis during brief, intense isometric contractions. Muscle Nerve 2005; 32: 647–55PubMedCrossRef
182.
go back to reference Glenmark B, Hedberg G, Kaijser L, et al. Muscle strength from adolescence to adulthood: relationship to muscle fibre types. Eur J Appl Physiol Occup Physiol 1994; 68 (1): 9–19PubMedCrossRef Glenmark B, Hedberg G, Kaijser L, et al. Muscle strength from adolescence to adulthood: relationship to muscle fibre types. Eur J Appl Physiol Occup Physiol 1994; 68 (1): 9–19PubMedCrossRef
183.
go back to reference Krotkiewski M, Kral JG, Karlsson J. Effects of castration and testosterone substitution on body composition and muscle metabolism in rats. Acta Physiol Scand 1980; 109 (3): 233–7PubMedCrossRef Krotkiewski M, Kral JG, Karlsson J. Effects of castration and testosterone substitution on body composition and muscle metabolism in rats. Acta Physiol Scand 1980; 109 (3): 233–7PubMedCrossRef
184.
go back to reference Bishop D, Edge J, Goodman C. Muscle buffer capacity and aerobic fitness are associated with repeated-sprint ability in women. Eur J Appl Physiol 2004; 92: 540–7PubMedCrossRef Bishop D, Edge J, Goodman C. Muscle buffer capacity and aerobic fitness are associated with repeated-sprint ability in women. Eur J Appl Physiol 2004; 92: 540–7PubMedCrossRef
185.
go back to reference Mayhew SR, Wenger HA. Time-motion analysis of professional soccer. J Hum Mov Stud 1985; 11 (1): 49–52 Mayhew SR, Wenger HA. Time-motion analysis of professional soccer. J Hum Mov Stud 1985; 11 (1): 49–52
186.
go back to reference Balsom PD, Seger JY, Sjodin B, et al. Physiological responses to maximal intensity intermittent exercise. Eur J Appl Physiol Occup Physiol 1992; 65 (2): 144–9PubMedCrossRef Balsom PD, Seger JY, Sjodin B, et al. Physiological responses to maximal intensity intermittent exercise. Eur J Appl Physiol Occup Physiol 1992; 65 (2): 144–9PubMedCrossRef
187.
go back to reference Spencer M, Bishop D, Lawrence S. Longitudinal assessment of the effects of field-hockey training on repeated sprint ability. J Sci Med Sport 2004; 7: 323–34PubMedCrossRef Spencer M, Bishop D, Lawrence S. Longitudinal assessment of the effects of field-hockey training on repeated sprint ability. J Sci Med Sport 2004; 7: 323–34PubMedCrossRef
188.
go back to reference Stathis CG, Zhao S, Carey MF, et al. Purine loss after repeated sprint bouts in humans. J Appl Physiol 1999; 87: 2037–42PubMed Stathis CG, Zhao S, Carey MF, et al. Purine loss after repeated sprint bouts in humans. J Appl Physiol 1999; 87: 2037–42PubMed
189.
go back to reference Sjodin B, Hellsten Westing Y. Changes in plasma concentration of hypoxanthine and uric acid in man with short-distance running at various intensities. Int J Sports Med 1990; 11 (6): 493–5PubMedCrossRef Sjodin B, Hellsten Westing Y. Changes in plasma concentration of hypoxanthine and uric acid in man with short-distance running at various intensities. Int J Sports Med 1990; 11 (6): 493–5PubMedCrossRef
190.
go back to reference Harris R, Hultman E, Kaijser L, et al. The effect of circulatory occlusion on isometric exercise capacity and energy metabolism of the quadriceps muscle in man. Scand J Clin Lab Invest 1975; 35: 87–95PubMedCrossRef Harris R, Hultman E, Kaijser L, et al. The effect of circulatory occlusion on isometric exercise capacity and energy metabolism of the quadriceps muscle in man. Scand J Clin Lab Invest 1975; 35: 87–95PubMedCrossRef
191.
go back to reference Trump ME, Heigenhauser GJ, Putman CT, et al. Importance of muscle phosphocreatine during intermittent maximal cycling. J Appl Physiol 1996; 80 (5): 1574–80PubMed Trump ME, Heigenhauser GJ, Putman CT, et al. Importance of muscle phosphocreatine during intermittent maximal cycling. J Appl Physiol 1996; 80 (5): 1574–80PubMed
192.
go back to reference Wiroth JB, Bermon S, Andrei S, et al. Effects of oral creatine supplementation on maximal pedalling performance in older adults. Eur J Appl Physiol 2001; 84 (6): 533–9PubMedCrossRef Wiroth JB, Bermon S, Andrei S, et al. Effects of oral creatine supplementation on maximal pedalling performance in older adults. Eur J Appl Physiol 2001; 84 (6): 533–9PubMedCrossRef
193.
go back to reference Yquel RJ, Arsac LM, Thiaudiere E, et al. Effect of creatine supplementation on phosphocreatine resynthesis, inorganic phosphate accumulation and pH during intermittent maximal exercise. J Sports Sci 2002; 20 (5): 427–37PubMedCrossRef Yquel RJ, Arsac LM, Thiaudiere E, et al. Effect of creatine supplementation on phosphocreatine resynthesis, inorganic phosphate accumulation and pH during intermittent maximal exercise. J Sports Sci 2002; 20 (5): 427–37PubMedCrossRef
194.
go back to reference Bishop D, Edge J. Determinants of repeated-sprint ability in females matched for single-sprint performance. Eur J Appl Physiol 2006; 97 (4): 373–9PubMedCrossRef Bishop D, Edge J. Determinants of repeated-sprint ability in females matched for single-sprint performance. Eur J Appl Physiol 2006; 97 (4): 373–9PubMedCrossRef
195.
go back to reference Edge J, Bishop D, Hill-Haas S, et al. Comparison of muscle buffer capacity and repeated-sprint ability of untrained, endurance-trained and team-sport athletes. Eur J Appl Physiol 2006; 96 (3): 225–34CrossRef Edge J, Bishop D, Hill-Haas S, et al. Comparison of muscle buffer capacity and repeated-sprint ability of untrained, endurance-trained and team-sport athletes. Eur J Appl Physiol 2006; 96 (3): 225–34CrossRef
196.
go back to reference Mohr M, Krustrup P, Nielsen JJ, et al. Effect of two different intense training regimens on skeletal muscle ion transport proteins and fatigue development. Am J Physiol Regul Integr Comp Physiol 2007; 292 (4): R 1594–602CrossRef Mohr M, Krustrup P, Nielsen JJ, et al. Effect of two different intense training regimens on skeletal muscle ion transport proteins and fatigue development. Am J Physiol Regul Integr Comp Physiol 2007; 292 (4): R 1594–602CrossRef
197.
go back to reference Bishop D, Edge J, Davis C, et al. Induced metabolic alkalosis affects muscle metabolism and repeated-sprint ability. Med Sci Sports Exerc 2004; 36 (5): 807–13PubMed Bishop D, Edge J, Davis C, et al. Induced metabolic alkalosis affects muscle metabolism and repeated-sprint ability. Med Sci Sports Exerc 2004; 36 (5): 807–13PubMed
198.
go back to reference Gaitanos G, Nevill M, Brooks S, et al. Repeated bouts of sprint running after induced alkalosis. J Sports Sci 1991; 9: 355–70PubMedCrossRef Gaitanos G, Nevill M, Brooks S, et al. Repeated bouts of sprint running after induced alkalosis. J Sports Sci 1991; 9: 355–70PubMedCrossRef
199.
go back to reference Street D, Nielsen JJ, Bangsbo J, et al. Metabolic alkalosis reduces exercise-induced acidosis and potassium accumulation in human skeletal muscle interstitium. J Physiol 2005; 566 (Pt 2): 481–9PubMedCrossRef Street D, Nielsen JJ, Bangsbo J, et al. Metabolic alkalosis reduces exercise-induced acidosis and potassium accumulation in human skeletal muscle interstitium. J Physiol 2005; 566 (Pt 2): 481–9PubMedCrossRef
200.
go back to reference Sejersted OM, Sjogaard G. Dynamics and consequences of potassium shifts in skeletal muscle and heart during exercise. Physiol Rev 2000; 80 (4): 1411–81PubMed Sejersted OM, Sjogaard G. Dynamics and consequences of potassium shifts in skeletal muscle and heart during exercise. Physiol Rev 2000; 80 (4): 1411–81PubMed
201.
go back to reference McKenna MJ, Heigenhauser GJ, McKelvie RS, et al. Sprint training enhances ionic regulation during intense exercise in men. J Physiol 1997; 501 (Pt 3): 687–702PubMedCrossRef McKenna MJ, Heigenhauser GJ, McKelvie RS, et al. Sprint training enhances ionic regulation during intense exercise in men. J Physiol 1997; 501 (Pt 3): 687–702PubMedCrossRef
202.
go back to reference Nielsen JJ, Mohr M, Klarskov C, et al. Effects of high-intensity intermittent training on potassium kinetics and performance in human skeletal muscle. J Physiol 2004; 554 (Pt 3): 857–70PubMed Nielsen JJ, Mohr M, Klarskov C, et al. Effects of high-intensity intermittent training on potassium kinetics and performance in human skeletal muscle. J Physiol 2004; 554 (Pt 3): 857–70PubMed
203.
go back to reference Billaut F, Basset FA. Effect of different recovery patterns on repeated-sprint ability and neuromuscular responses. J Sports Sci 2007; 25 (8): 905–13PubMedCrossRef Billaut F, Basset FA. Effect of different recovery patterns on repeated-sprint ability and neuromuscular responses. J Sports Sci 2007; 25 (8): 905–13PubMedCrossRef
204.
go back to reference Billaut F, Basset FA, Falgairette G. Muscle coordination changes during intermittent cycling sprints. Neurosci Lett 2005; 380: 265–9PubMedCrossRef Billaut F, Basset FA, Falgairette G. Muscle coordination changes during intermittent cycling sprints. Neurosci Lett 2005; 380: 265–9PubMedCrossRef
205.
go back to reference Hautier C, Arsac L, Deghdegh K, et al. Influence of fatigue on EMG/force ratio and cocontraction in cycling. Med Sci Sports Exerc 2000; 32 (4): 839–43PubMedCrossRef Hautier C, Arsac L, Deghdegh K, et al. Influence of fatigue on EMG/force ratio and cocontraction in cycling. Med Sci Sports Exerc 2000; 32 (4): 839–43PubMedCrossRef
206.
go back to reference Billaut F, Basset FA, Giacomoni M, et al. Effect of high-intensity intermittent cycling sprints on neuromuscular activity. Int J Sports Med 2006; 27: 25–30PubMedCrossRef Billaut F, Basset FA, Giacomoni M, et al. Effect of high-intensity intermittent cycling sprints on neuromuscular activity. Int J Sports Med 2006; 27: 25–30PubMedCrossRef
207.
go back to reference Drust B, Rasmussen P, Mohr M, et al. Elevations in core and muscle temperature impairs repeated sprint performance. Acta Physiol Scand 2005; 183: 181–90PubMedCrossRef Drust B, Rasmussen P, Mohr M, et al. Elevations in core and muscle temperature impairs repeated sprint performance. Acta Physiol Scand 2005; 183: 181–90PubMedCrossRef
208.
go back to reference Mendez-Villanueva A, Hamer P, Bishop D. Physical fitness and performance: fatigue responses during repeated sprints matched for initial mechanical output. Med Sci Sports Exerc 2007; 39 (12): 2219–25PubMedCrossRef Mendez-Villanueva A, Hamer P, Bishop D. Physical fitness and performance: fatigue responses during repeated sprints matched for initial mechanical output. Med Sci Sports Exerc 2007; 39 (12): 2219–25PubMedCrossRef
209.
go back to reference Racinais S, Bishop D, Denis R, et al. Muscle deoxygenation and neural drive to the muscle during repeated sprint cycling. Med Sci Sports Exerc 2007; 39 (2): 268–74PubMedCrossRef Racinais S, Bishop D, Denis R, et al. Muscle deoxygenation and neural drive to the muscle during repeated sprint cycling. Med Sci Sports Exerc 2007; 39 (2): 268–74PubMedCrossRef
210.
go back to reference Balsom PD, Gaitanos GC, Soderlund K, et al. High-intensity exercise and muscle glycogen availability in humans. Acta Physiol Scand 1999; 165 (4): 337–45PubMedCrossRef Balsom PD, Gaitanos GC, Soderlund K, et al. High-intensity exercise and muscle glycogen availability in humans. Acta Physiol Scand 1999; 165 (4): 337–45PubMedCrossRef
211.
go back to reference Bishop D, Spencer M. Determinants of repeated-sprint ability in well-trained team-sport athletes and endurance-trained athletes. J Sports Med Phys Fitness 2004; 44: 1–7PubMed Bishop D, Spencer M. Determinants of repeated-sprint ability in well-trained team-sport athletes and endurance-trained athletes. J Sports Med Phys Fitness 2004; 44: 1–7PubMed
212.
go back to reference Blonc S, Casas H, Duché P, et al. Effect of recovery duration on the force-velocity relationship. Int J Sports Med 1998; 19: 272–6PubMedCrossRef Blonc S, Casas H, Duché P, et al. Effect of recovery duration on the force-velocity relationship. Int J Sports Med 1998; 19: 272–6PubMedCrossRef
213.
go back to reference Chamari K, Ahmaidi S, Fabre C, et al. Pulmonary gas exchange and ventilatory responses to brief intense intermittent exercise in young trained and untrained adults. Eur J Appl Physiol Occup Physiol 1995; 70 (5): 442–50PubMedCrossRef Chamari K, Ahmaidi S, Fabre C, et al. Pulmonary gas exchange and ventilatory responses to brief intense intermittent exercise in young trained and untrained adults. Eur J Appl Physiol Occup Physiol 1995; 70 (5): 442–50PubMedCrossRef
214.
go back to reference Hamilton A, Nevill M, Brooks S, et al. Physiological responses to maximal intermittent exercise: differences between endurance-trained runners and game players. J Sports Sci 1991; 9: 371–82PubMedCrossRef Hamilton A, Nevill M, Brooks S, et al. Physiological responses to maximal intermittent exercise: differences between endurance-trained runners and game players. J Sports Sci 1991; 9: 371–82PubMedCrossRef
215.
go back to reference Wadley G, Le Rossignol P. The relationship between repeated sprint ability and the aerobic and anaerobic energy systems. J Sci Med Sport 1998; 1 (2): 100–10PubMedCrossRef Wadley G, Le Rossignol P. The relationship between repeated sprint ability and the aerobic and anaerobic energy systems. J Sci Med Sport 1998; 1 (2): 100–10PubMedCrossRef
216.
go back to reference Tomlin DL, Wenger HA. The relationship between aerobic fitness and recovery from high intensity intermittent exercise. Sports Med 2001; 31 (1): 1–11PubMedCrossRef Tomlin DL, Wenger HA. The relationship between aerobic fitness and recovery from high intensity intermittent exercise. Sports Med 2001; 31 (1): 1–11PubMedCrossRef
Metadata
Title
Muscle Fatigue in Males and Females during Multiple-Sprint Exercise
Authors
Dr François Billaut
David Bishop
Publication date
01-04-2009
Publisher
Springer International Publishing
Published in
Sports Medicine / Issue 4/2009
Print ISSN: 0112-1642
Electronic ISSN: 1179-2035
DOI
https://doi.org/10.2165/00007256-200939040-00001

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