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Published in: Sports Medicine 2/2007

01-02-2007 | Review Article

Morphological and Neurological Contributions to Increased Strength

Authors: Dr Jonathan P. Folland, Alun G. Williams

Published in: Sports Medicine | Issue 2/2007

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Abstract

High-resistance strength training (HRST) is one of the most widely practiced forms of physical activity, which is used to enhance athletic performance, augment musculo-skeletal health and alter body aesthetics. Chronic exposure to this type of activity produces marked increases in muscular strength, which are attributed to a range of neurological and morphological adaptations. This review assesses the evidence for these adaptations, their interplay and contribution to enhanced strength and the methodologies employed.
The primary morphological adaptations involve an increase in the cross-sectional area of the whole muscle and individual muscle fibres, which is due to an increase in myofibrillar size and number. Satellite cells are activated in the very early stages of training; their proliferation and later fusion with existing fibres appears to be intimately involved in the hypertrophy response. Other possible morphological adaptations include hyperplasia, changes in fibre type, muscle architecture, myofilament density and the structure of connective tissue and tendons.
Indirect evidence for neurological adaptations, which encompasses learning and coordination, comes from the specificity of the training adaptation, transfer of unilateral training to the contralateral limb and imagined contractions. The apparent rise in whole-muscle specific tension has been primarily used as evidence for neurological adaptations; however, morphological factors (e.g. preferential hypertrophy of type 2 fibres, increased angle of fibre pennation, increase in radiological density) are also likely to contribute to this phenomenon. Changes in inter-muscular coordination appear critical. Adaptations in agonist muscle activation, as assessed by electromyography, tetanic stimulation and the twitch interpolation technique, suggest small, but significant increases. Enhanced firing frequency and spinal reflexes most likely explain this improvement, although there is contrary evidence suggesting no change in cortical or corticospinal excitability.
The gains in strength with HRST are undoubtedly due to a wide combination of neurological and morphological factors. Whilst the neurological factors may make their greatest contribution during the early stages of a training programme, hypertrophic processes also commence at the onset of training.
Literature
1.
go back to reference Morganti CM, Nelson ME, Fiatarone MA, et al. Strength improvements with 1 yr of progressive resistance training in older women. Med Sci Sports Exerc 1995; 27: 906–12PubMed Morganti CM, Nelson ME, Fiatarone MA, et al. Strength improvements with 1 yr of progressive resistance training in older women. Med Sci Sports Exerc 1995; 27: 906–12PubMed
2.
go back to reference Paavolainen L, Paavolainen L, Hakkinen K, et al. Explosive strength training improves 5-km running time by improving running economy and muscle power. J Appl Physiol 1999; 86:1527–33PubMed Paavolainen L, Paavolainen L, Hakkinen K, et al. Explosive strength training improves 5-km running time by improving running economy and muscle power. J Appl Physiol 1999; 86:1527–33PubMed
3.
go back to reference Garfinkel S, Cafarelli E. Relative changes in maximal force, emg, and muscle cross-sectional area after isometric training. Med Sci Sports Exerc 1992; 24: 1220–7PubMed Garfinkel S, Cafarelli E. Relative changes in maximal force, emg, and muscle cross-sectional area after isometric training. Med Sci Sports Exerc 1992; 24: 1220–7PubMed
4.
go back to reference Housh DJ, Housh TJ, Johnson GO, et al. Hypertrophic response to unilateral concentric isokinetic resistance training. J Appl Physiol 1992; 73: 65–70PubMed Housh DJ, Housh TJ, Johnson GO, et al. Hypertrophic response to unilateral concentric isokinetic resistance training. J Appl Physiol 1992; 73: 65–70PubMed
5.
go back to reference Tracy B, Ivey F, Hurlbut D, et al. Muscle quality: II. Effects of strength training in 65- to 75-yr-old men and women. J Appl Physiol 1999; 86: 195–201PubMed Tracy B, Ivey F, Hurlbut D, et al. Muscle quality: II. Effects of strength training in 65- to 75-yr-old men and women. J Appl Physiol 1999; 86: 195–201PubMed
6.
go back to reference Abe T, DeHoyos D, Pollock M, et al. Time course for strength and muscle thickness changes following upper and lower body resistance training in men and women. Eur J Appl Physiol 2000; 81: 174–80PubMed Abe T, DeHoyos D, Pollock M, et al. Time course for strength and muscle thickness changes following upper and lower body resistance training in men and women. Eur J Appl Physiol 2000; 81: 174–80PubMed
7.
go back to reference Engstrom CM, Loeb GE, Reid JG, et al. Morphometry of the human thigh muscles: a comparison between anatomical sections and computer tomographic and magnetic-resonance images. J Anat 1991; 176: 139–56PubMed Engstrom CM, Loeb GE, Reid JG, et al. Morphometry of the human thigh muscles: a comparison between anatomical sections and computer tomographic and magnetic-resonance images. J Anat 1991; 176: 139–56PubMed
8.
go back to reference Narici M, Hoppeler H, Kayser B, et al. Human quadriceps cross sectional area, torque and neural activation during 6 months strength training. Acta Physiol Scand 1996; 157: 175–86PubMed Narici M, Hoppeler H, Kayser B, et al. Human quadriceps cross sectional area, torque and neural activation during 6 months strength training. Acta Physiol Scand 1996; 157: 175–86PubMed
9.
go back to reference Alway SE, Grurillt WH, Stray-Gundersen J, et al. Effects of resistance training on elbow flexors of highly competitive body builders. J Appl PhysioI 1992; 72: 1512–21 Alway SE, Grurillt WH, Stray-Gundersen J, et al. Effects of resistance training on elbow flexors of highly competitive body builders. J Appl PhysioI 1992; 72: 1512–21
10.
go back to reference Tracy B, Ivey F, Metter JE, et al. A more efficient magnetic resonance imaging-based strategy for measuring quadriceps muscle volume. Med Sci Sports Exerc 2003; 35: 425–33PubMed Tracy B, Ivey F, Metter JE, et al. A more efficient magnetic resonance imaging-based strategy for measuring quadriceps muscle volume. Med Sci Sports Exerc 2003; 35: 425–33PubMed
11.
go back to reference Aagaard P, Andersen J, Dyhre-Poulsen P, et al. A mechanism for increased contractile strength of human pennate muscle in response to strength training: changes in muscle architecture. J Physiol 2001; 534: 613–23PubMed Aagaard P, Andersen J, Dyhre-Poulsen P, et al. A mechanism for increased contractile strength of human pennate muscle in response to strength training: changes in muscle architecture. J Physiol 2001; 534: 613–23PubMed
12.
go back to reference Fukunaga T, Roy RR, Shellock FG, et al. Specific tension of human plantar flexors and dorsiflexors. J Appl Physiol 1996; 80: 158–65PubMed Fukunaga T, Roy RR, Shellock FG, et al. Specific tension of human plantar flexors and dorsiflexors. J Appl Physiol 1996; 80: 158–65PubMed
13.
go back to reference Roman WJ, Aeckenstein J, Straygundersen J, et al. Adaptations in the elbow flexors of elderly males after heavy-resistance training. J Appl Physiol 1993; 74: 750–4PubMed Roman WJ, Aeckenstein J, Straygundersen J, et al. Adaptations in the elbow flexors of elderly males after heavy-resistance training. J Appl Physiol 1993; 74: 750–4PubMed
14.
go back to reference Keen DA, Yue GH, Enoka RM. Training-related enhancement in the control of motor output in elderly humans. J Appl Physiol 1994; 77: 2648–58PubMed Keen DA, Yue GH, Enoka RM. Training-related enhancement in the control of motor output in elderly humans. J Appl Physiol 1994; 77: 2648–58PubMed
15.
go back to reference Aagaard P, Simonsen E, Andersen J, et al. Neural inhibition during maximal eccentric and concentric quadriceps contraction: effects of resistance training. J Appl Physiol 2000; 89:2249–57PubMed Aagaard P, Simonsen E, Andersen J, et al. Neural inhibition during maximal eccentric and concentric quadriceps contraction: effects of resistance training. J Appl Physiol 2000; 89:2249–57PubMed
16.
go back to reference Bamman MM, Newcomer BR, Larson-Meyer DE, et al. Evaluation of the strength-size relationship in vivo using various muscle size indices. Med Sci Sports Exerc 2000; 32: 1307–13PubMed Bamman MM, Newcomer BR, Larson-Meyer DE, et al. Evaluation of the strength-size relationship in vivo using various muscle size indices. Med Sci Sports Exerc 2000; 32: 1307–13PubMed
17.
go back to reference Fukunaga T, Miyatani M, Tachi M, et al. Muscle volume is a major determinant of joint torque in humans. Acta Physiol Scand 2001; 172: 249–55PubMed Fukunaga T, Miyatani M, Tachi M, et al. Muscle volume is a major determinant of joint torque in humans. Acta Physiol Scand 2001; 172: 249–55PubMed
18.
go back to reference Maganaris CN, Baltzopoulos V, Sargeant AI. Changes in Achilles tendon moment arm from rest to maximum isometric plant arflexion: in vivo observations in man. J Physiol 1998;510: 977–85PubMed Maganaris CN, Baltzopoulos V, Sargeant AI. Changes in Achilles tendon moment arm from rest to maximum isometric plant arflexion: in vivo observations in man. J Physiol 1998;510: 977–85PubMed
19.
go back to reference Maganaris CN, Baltzopoulos V. Predictability of in vivo changes in pennation angle of human tibialis anterior musclefrom rest to maximum isometric dorsiflexion. Eur J Appl Physiol Occup Physiol 1999; 79: 294–7PubMed Maganaris CN, Baltzopoulos V. Predictability of in vivo changes in pennation angle of human tibialis anterior musclefrom rest to maximum isometric dorsiflexion. Eur J Appl Physiol Occup Physiol 1999; 79: 294–7PubMed
20.
go back to reference Narici MY, Binzoni T, Hiltbrand E, et al. In vivo human gastrocnemius architecture with changing joint angle at rest and during graded isometric contraction. J Physiol 1996; 496:287–97PubMed Narici MY, Binzoni T, Hiltbrand E, et al. In vivo human gastrocnemius architecture with changing joint angle at rest and during graded isometric contraction. J Physiol 1996; 496:287–97PubMed
21.
go back to reference Wilmore JD. Alterations in strength, body corrposition and anthropometric measurements consequent to a 10-week weight training-program. Med Sci Sports Exerc 1974; 6: 133–8 Wilmore JD. Alterations in strength, body corrposition and anthropometric measurements consequent to a 10-week weight training-program. Med Sci Sports Exerc 1974; 6: 133–8
22.
go back to reference Cureton KJ, Collins MA, Hill DW, et al. Muscle hypertrophy in men and women. Med Sci Sports Exerc 1988; 20: 338–44PubMed Cureton KJ, Collins MA, Hill DW, et al. Muscle hypertrophy in men and women. Med Sci Sports Exerc 1988; 20: 338–44PubMed
23.
go back to reference Welle S, Tottennan S, Thornton C. Effect of age on muscle hypertrophy induced by resistance training. J Gerontol A Biol Sci Med Sci 1996; 51: M270–5 Welle S, Tottennan S, Thornton C. Effect of age on muscle hypertrophy induced by resistance training. J Gerontol A Biol Sci Med Sci 1996; 51: M270–5
24.
go back to reference Kadi F, Bonnerud P, Eriksson A, et al. The expression of androgen receptors in human neck and limb muscles: effects of training and self-administration of androgenic-anabolic steroids. Histochem Cell Biol 2000; 113: 9 Kadi F, Bonnerud P, Eriksson A, et al. The expression of androgen receptors in human neck and limb muscles: effects of training and self-administration of androgenic-anabolic steroids. Histochem Cell Biol 2000; 113: 9
25.
go back to reference Edwards RH, Young A, Hosking GP, et al. Human skeletal muscle function: description of tests and normal values. Clin Sci Mol Med 1977; 52: 283–90PubMed Edwards RH, Young A, Hosking GP, et al. Human skeletal muscle function: description of tests and normal values. Clin Sci Mol Med 1977; 52: 283–90PubMed
26.
go back to reference Schantz P, Randall-Fox E, Hutchison W, et al. Muscle fibre type distribution, muscle cross-sectional area and maximal voluntary strength in humans. Acta Physiol Scand 1983; 117: 219–26PubMed Schantz P, Randall-Fox E, Hutchison W, et al. Muscle fibre type distribution, muscle cross-sectional area and maximal voluntary strength in humans. Acta Physiol Scand 1983; 117: 219–26PubMed
27.
go back to reference Neder JA, Nery LE, Silva AC, et al. Maximal aerobic power and leg muscle mass and strength related to age in non-athlethic males and females. Eur J Appl Physiol Occup Physiol 1999; 79: 522–30PubMed Neder JA, Nery LE, Silva AC, et al. Maximal aerobic power and leg muscle mass and strength related to age in non-athlethic males and females. Eur J Appl Physiol Occup Physiol 1999; 79: 522–30PubMed
28.
go back to reference Toft I, Lindal S, Bnaa KH, et al. Quantitative measurement of muscle fiber composition in a normal population. Muscle Nerve 2003; 28: 101–8PubMed Toft I, Lindal S, Bnaa KH, et al. Quantitative measurement of muscle fiber composition in a normal population. Muscle Nerve 2003; 28: 101–8PubMed
29.
go back to reference Asmussen E. Development patterns in physical performance capacity. In: Larsson L, editor. Fitness, health and work capacity: international standards for assessment. New York: MacMillan, Asmussen E. Development patterns in physical performance capacity. In: Larsson L, editor. Fitness, health and work capacity: international standards for assessment. New York: MacMillan,
30.
go back to reference Hettinger T. Physiology of strength. Springfield (IL): CC Thomas, 1961f Hettinger T. Physiology of strength. Springfield (IL): CC Thomas, 1961f
31.
go back to reference Brown CH, Wilmore JD. The effects of maximal resistance training on the strength and body composition of women athletes. Med Sci Sports 1974; 6: 174–7PubMed Brown CH, Wilmore JD. The effects of maximal resistance training on the strength and body composition of women athletes. Med Sci Sports 1974; 6: 174–7PubMed
32.
go back to reference Wells CL. Women, sport and performance: a physiological perspective. Champaign (IL): Human Kinetics, 1985 Wells CL. Women, sport and performance: a physiological perspective. Champaign (IL): Human Kinetics, 1985
33.
go back to reference Hakkinen K, Kallinen M, Linnamo V, et al. Neuromuscular adaptations during bilateral versus unilateral strength training in middle-aged and elderly men and women. Acta Physiol Scand 1996; 158: 77–88PubMed Hakkinen K, Kallinen M, Linnamo V, et al. Neuromuscular adaptations during bilateral versus unilateral strength training in middle-aged and elderly men and women. Acta Physiol Scand 1996; 158: 77–88PubMed
34.
go back to reference Roth SM, Ivey FM, Martel GF, et al. Muscle size responses to strength training in young and older men and women. J Am Geriatr Soc 2001; 49: 1428–33PubMed Roth SM, Ivey FM, Martel GF, et al. Muscle size responses to strength training in young and older men and women. J Am Geriatr Soc 2001; 49: 1428–33PubMed
35.
go back to reference Colliander EB, Tesch PA. Responses to eccentric and concentric resistance training in females and males. Acta Physiol Scand 1991; 141: 149–56PubMed Colliander EB, Tesch PA. Responses to eccentric and concentric resistance training in females and males. Acta Physiol Scand 1991; 141: 149–56PubMed
36.
go back to reference Lexell J, Downham DY, Larsson Y, et al. Heavy-resistance training in older scandinavian men and women: short- and long-term effects on arm and leg muscles. Scand J Med Sci Sports 1995; 5: 329–41PubMed Lexell J, Downham DY, Larsson Y, et al. Heavy-resistance training in older scandinavian men and women: short- and long-term effects on arm and leg muscles. Scand J Med Sci Sports 1995; 5: 329–41PubMed
37.
go back to reference Weiss LW, Clark FC, Howard DG. Effects of heavy-resistance triceps surae muscle training on strength and muscularity of men and women. Phys Ther 1988; 68: 208–13PubMed Weiss LW, Clark FC, Howard DG. Effects of heavy-resistance triceps surae muscle training on strength and muscularity of men and women. Phys Ther 1988; 68: 208–13PubMed
38.
go back to reference O’Hagan Fr, Sale DG, MacDougall JD, et al. Response to resistance training in young women and men. Int J Sports Med 1995; 16: 314–21 O’Hagan Fr, Sale DG, MacDougall JD, et al. Response to resistance training in young women and men. Int J Sports Med 1995; 16: 314–21
39.
go back to reference Hubal MJ, Gordish-Dressman H, Thompson PD, et al. Variability in muscle size and strength gain after unilateral resistance training. Med Sci Sports Exerc 2005; 37: 964–72PubMed Hubal MJ, Gordish-Dressman H, Thompson PD, et al. Variability in muscle size and strength gain after unilateral resistance training. Med Sci Sports Exerc 2005; 37: 964–72PubMed
40.
go back to reference Knapik JJ, Wright JE, Kowal DM, et al. The influence of US army basic initial entry training on the muscular strength of men and women. Aviat Space Environ Med 1980; 51: 1086–90PubMed Knapik JJ, Wright JE, Kowal DM, et al. The influence of US army basic initial entry training on the muscular strength of men and women. Aviat Space Environ Med 1980; 51: 1086–90PubMed
41.
go back to reference Delmonico MJ, Kostek MC, Doldo NA, et al. Effects of moderate- velocity strength training on peak muscle power and movement velocity: do women respond differently than men? J Appl Physiol 2005; 99: 1712–8PubMed Delmonico MJ, Kostek MC, Doldo NA, et al. Effects of moderate- velocity strength training on peak muscle power and movement velocity: do women respond differently than men? J Appl Physiol 2005; 99: 1712–8PubMed
42.
go back to reference Fiatarone MA, Marks EC, Ryan ND, et al. High-intensity strength training in nonagenarians: effects on skeletal-muscle. J Am Med Assoc 1990; 263: 3029–34 Fiatarone MA, Marks EC, Ryan ND, et al. High-intensity strength training in nonagenarians: effects on skeletal-muscle. J Am Med Assoc 1990; 263: 3029–34
43.
go back to reference Harridge SDR, Kryger A, Stensgaard A. Knee extensor strength, activation, and size in very elderly people following strength training. Muscle Nerve 1999; 22: 831–9PubMed Harridge SDR, Kryger A, Stensgaard A. Knee extensor strength, activation, and size in very elderly people following strength training. Muscle Nerve 1999; 22: 831–9PubMed
44.
go back to reference Ivey F, Tracy B, Lemmer J, et al. Effects of strength training and detraining on muscle quality: age and gender comparisons. J Gerontol A Biol Sci Med Sci 2000; 55: B152–7 Ivey F, Tracy B, Lemmer J, et al. Effects of strength training and detraining on muscle quality: age and gender comparisons. J Gerontol A Biol Sci Med Sci 2000; 55: B152–7
45.
go back to reference Hakkinen K, Newton RU, Gordon SE, et al. Changes in muscle morphology, electromyographic activity, and force production characteristics during progressive strength training in young and older men. J Gerontol A Biol Sci Med Sci 1998; 53:B415–23 Hakkinen K, Newton RU, Gordon SE, et al. Changes in muscle morphology, electromyographic activity, and force production characteristics during progressive strength training in young and older men. J Gerontol A Biol Sci Med Sci 1998; 53:B415–23
46.
go back to reference Narici MY, Roi GS, Landoni L, et al. Changes in force, cross sectional area and neural activation during strength training and detraining of the human quadriceps. Eur J Appl Physiol Occup Physiol 1989; 59: 310–9PubMed Narici MY, Roi GS, Landoni L, et al. Changes in force, cross sectional area and neural activation during strength training and detraining of the human quadriceps. Eur J Appl Physiol Occup Physiol 1989; 59: 310–9PubMed
47.
go back to reference Hakkinen K, Pakarinen A, Kraemer WJ, et al. Selective muscle hypertrophy, changes in EMG and force, and semmhormones during strength training in older women. J Appl Physiol 2001;91: 569–80PubMed Hakkinen K, Pakarinen A, Kraemer WJ, et al. Selective muscle hypertrophy, changes in EMG and force, and semmhormones during strength training in older women. J Appl Physiol 2001;91: 569–80PubMed
48.
go back to reference Hakkinen K, Alen M, Kraerrer WI, et al. Neuromuscular adaptations during concurrent strength and endurance training versus strength training. Eur J Appl Physiol 2003; 89: 42–52PubMed Hakkinen K, Alen M, Kraerrer WI, et al. Neuromuscular adaptations during concurrent strength and endurance training versus strength training. Eur J Appl Physiol 2003; 89: 42–52PubMed
49.
go back to reference Kanehisa H, Funato K, Kuno S, et al. Growth trend of the quadriceps femoris muscle in junior olympic weight lifters: an18-month follow-up survey. Eur J Appl Physiol 2003; 89: 238–42PubMed Kanehisa H, Funato K, Kuno S, et al. Growth trend of the quadriceps femoris muscle in junior olympic weight lifters: an18-month follow-up survey. Eur J Appl Physiol 2003; 89: 238–42PubMed
50.
go back to reference McDonagh MJN, Davies CIM. Adaptive response of mammalian skeletal-muscle to exercise with high loads. Eur J Appl Physiol Occup Physiol 1984; 52: 139–55PubMed McDonagh MJN, Davies CIM. Adaptive response of mammalian skeletal-muscle to exercise with high loads. Eur J Appl Physiol Occup Physiol 1984; 52: 139–55PubMed
51.
go back to reference Iones DA, Rutherford OM, Parker DF. Physiological changes in skeletal muscle as a result of strength training. Q J Exp Physiol Cogn Med Sci 1989; 74: 233–56 Iones DA, Rutherford OM, Parker DF. Physiological changes in skeletal muscle as a result of strength training. Q J Exp Physiol Cogn Med Sci 1989; 74: 233–56
52.
go back to reference MacDougall JD, Elder GCB, Sale DG, et al. Effects of strength training and immobilization on human-muscle fibers. Eur J Appl Physiol Occup Physiol 1980; 43: 25–34PubMed MacDougall JD, Elder GCB, Sale DG, et al. Effects of strength training and immobilization on human-muscle fibers. Eur J Appl Physiol Occup Physiol 1980; 43: 25–34PubMed
53.
go back to reference Viitasalo IT, Saukkonen S, Komi PV. Reproducibility of measurements of selected neuromuscular performance variables in man. Electromyogr Clin Neurophysiol 1980; 20: 487–501PubMed Viitasalo IT, Saukkonen S, Komi PV. Reproducibility of measurements of selected neuromuscular performance variables in man. Electromyogr Clin Neurophysiol 1980; 20: 487–501PubMed
54.
go back to reference Schantz P, Fox ER, Norgren P, et al. The relationship between the mean muscle fibre area and the muscle cross-sectional area of the thigh in subjects with large differences in thigh girth. Acta Physiol Scand 1981; 113: 537–9PubMed Schantz P, Fox ER, Norgren P, et al. The relationship between the mean muscle fibre area and the muscle cross-sectional area of the thigh in subjects with large differences in thigh girth. Acta Physiol Scand 1981; 113: 537–9PubMed
55.
go back to reference Halkjaer-Kristensen I, Ingemann-Hansen T. Variations in single fibre areas and fibre composition in needle biopsies from the human quadriceps muscle. Scand J Clin Lab Invest 1981; 41:391–5PubMed Halkjaer-Kristensen I, Ingemann-Hansen T. Variations in single fibre areas and fibre composition in needle biopsies from the human quadriceps muscle. Scand J Clin Lab Invest 1981; 41:391–5PubMed
56.
go back to reference Blomstrand E, Celsing F, Friden I, et al. How to calculate human muscle fibre areas in biopsy samples: methodological considerations. Acta Physiol Scand 1984; 122: 545–51PubMed Blomstrand E, Celsing F, Friden I, et al. How to calculate human muscle fibre areas in biopsy samples: methodological considerations. Acta Physiol Scand 1984; 122: 545–51PubMed
57.
go back to reference Mahon M, Toman A, Willan PL, et al. Variability of histochemical and morphometric data from needle biopsy specimens of human quadriceps femoris muscle. J Neurol Sci 1984; 63:85–100PubMed Mahon M, Toman A, Willan PL, et al. Variability of histochemical and morphometric data from needle biopsy specimens of human quadriceps femoris muscle. J Neurol Sci 1984; 63:85–100PubMed
58.
go back to reference Lexell I, Taylor CC. Variability in muscle fibre areas in whole human quadriceps muscle: how much and why? Acta Physiol Scand 1989; 136: 561–8PubMed Lexell I, Taylor CC. Variability in muscle fibre areas in whole human quadriceps muscle: how much and why? Acta Physiol Scand 1989; 136: 561–8PubMed
59.
go back to reference Gollnick PD, Matoba H. The muscle fiber composition of skeletal muscle as a predictor of athletic success: an overview. Am J Sports Med 1984; 12: 212–7PubMed Gollnick PD, Matoba H. The muscle fiber composition of skeletal muscle as a predictor of athletic success: an overview. Am J Sports Med 1984; 12: 212–7PubMed
60.
go back to reference Camps GER, Luecke TJ, Wendeln HK, et al. Muscular adaptations in response to three different resistance-training regimens: specificity of repetition maximum training zones. Eur J Appl Physiol 2002; 88: 50–60 Camps GER, Luecke TJ, Wendeln HK, et al. Muscular adaptations in response to three different resistance-training regimens: specificity of repetition maximum training zones. Eur J Appl Physiol 2002; 88: 50–60
61.
go back to reference Staron RS, Malicky ES, Leonardi MJ, et al. Muscle hypertrophy and fast fiber type conversions in heavy resistance-trained women. Eur J Appl Physiol Occup Physiol 1990; 60: 71–9PubMed Staron RS, Malicky ES, Leonardi MJ, et al. Muscle hypertrophy and fast fiber type conversions in heavy resistance-trained women. Eur J Appl Physiol Occup Physiol 1990; 60: 71–9PubMed
62.
go back to reference Tesch P A. Skeletal-muscle adaptations consequent to long-term heavy resistance exercise. Med Sci Sports Exerc 1988; 20: S132–4 Tesch P A. Skeletal-muscle adaptations consequent to long-term heavy resistance exercise. Med Sci Sports Exerc 1988; 20: S132–4
63.
go back to reference Thorstensson A, Hulten B, Dobeln WV, et al. Effect of strength training on enzyme-activities and fiber characteristics in human skeletal-muscle. Acta Physiol Scand 1976; 96: 392–8PubMed Thorstensson A, Hulten B, Dobeln WV, et al. Effect of strength training on enzyme-activities and fiber characteristics in human skeletal-muscle. Acta Physiol Scand 1976; 96: 392–8PubMed
64.
go back to reference Hakkinen K, Komi P, Tesch P. Effect of combined concentric and eccentric strength training and detraining on force-time, muscle fiber and metabolic characteristics of leg extensor muscles. Scand J Sports Sci 1981; 3: 50–8 Hakkinen K, Komi P, Tesch P. Effect of combined concentric and eccentric strength training and detraining on force-time, muscle fiber and metabolic characteristics of leg extensor muscles. Scand J Sports Sci 1981; 3: 50–8
65.
go back to reference Dons B, Bollerup K, Bondepetersen F, et al. Effect of weight lifting exercise related to muscle-fiber composition and muscle cross-sectional area in humans. Eur J Appl Physiol Occup Physiol 1979; 40: 95–106PubMed Dons B, Bollerup K, Bondepetersen F, et al. Effect of weight lifting exercise related to muscle-fiber composition and muscle cross-sectional area in humans. Eur J Appl Physiol Occup Physiol 1979; 40: 95–106PubMed
66.
go back to reference Houston ME, Froese EA, Valeriote SP, et al. Muscle performance, morphology and metabolic capacity during strength training and detraining: a one leg model. Eur J Appl Physiol Occup Physiol 1983; 51: 25–35PubMed Houston ME, Froese EA, Valeriote SP, et al. Muscle performance, morphology and metabolic capacity during strength training and detraining: a one leg model. Eur J Appl Physiol Occup Physiol 1983; 51: 25–35PubMed
67.
go back to reference Goldspink G, Ward PS. Changes in rodent muscle-fiber types during post natal-growth, under nutrition and exercise. J Physiol 1979; 296: 453–69PubMed Goldspink G, Ward PS. Changes in rodent muscle-fiber types during post natal-growth, under nutrition and exercise. J Physiol 1979; 296: 453–69PubMed
68.
go back to reference Frontera WR, Meredith CN, Oreilly KP, et al. Strength conditioning in older men: skeletal-muscle hypertrophy and improved function. J Appl Physiol 1988; 64: 1038–44PubMed Frontera WR, Meredith CN, Oreilly KP, et al. Strength conditioning in older men: skeletal-muscle hypertrophy and improved function. J Appl Physiol 1988; 64: 1038–44PubMed
69.
go back to reference Fitts RH, McDonald KS, Schluter JM. The determinants of skeletal-muscle force and power: their adaptability with changes in activity pattern. J Biomech 1991; 24: 111–22PubMed Fitts RH, McDonald KS, Schluter JM. The determinants of skeletal-muscle force and power: their adaptability with changes in activity pattern. J Biomech 1991; 24: 111–22PubMed
70.
go back to reference Stienen GJM, Kiers JL, Bottinelli R, et al. Myofibrillar Alpase activity in skinned human skeletal muscle fibres: fibre type and temperature dependence. J Physiol 1996; 493: 299–307PubMed Stienen GJM, Kiers JL, Bottinelli R, et al. Myofibrillar Alpase activity in skinned human skeletal muscle fibres: fibre type and temperature dependence. J Physiol 1996; 493: 299–307PubMed
71.
go back to reference Bottinelli R, Pellegrino MA, Canepari M, et al. Specific contributions of various muscle fibre types to human muscle performance: an in vitro study. J Electromyogr KinesioI 1999; 9: 87–95 Bottinelli R, Pellegrino MA, Canepari M, et al. Specific contributions of various muscle fibre types to human muscle performance: an in vitro study. J Electromyogr KinesioI 1999; 9: 87–95
72.
go back to reference Widrick JJ, Stelzer JE, Shoepe TC, et al. Functional properties of human muscle fibers after short-term resistance exercise training. Am J Physiol Regul Integr Comp Physiol 2002; 283:R408–16 Widrick JJ, Stelzer JE, Shoepe TC, et al. Functional properties of human muscle fibers after short-term resistance exercise training. Am J Physiol Regul Integr Comp Physiol 2002; 283:R408–16
73.
go back to reference Nygaard E, Houston M, Suzuki Y, et al. Morphology of the brachial biceps muscle and elbow flexion in man. Acta Physiol Scand 1983; 117: 287–92PubMed Nygaard E, Houston M, Suzuki Y, et al. Morphology of the brachial biceps muscle and elbow flexion in man. Acta Physiol Scand 1983; 117: 287–92PubMed
74.
go back to reference Maughan RI, Nimmo MA. The influence of variations in muscle- fiber composition on muscle strength and cross-sectional area in untrained males. J Physiol 1984; 351: 299–311PubMed Maughan RI, Nimmo MA. The influence of variations in muscle- fiber composition on muscle strength and cross-sectional area in untrained males. J Physiol 1984; 351: 299–311PubMed
75.
go back to reference Grindrod S, Round IM, Rutherford OM. Type-2 fiber composition and force per cross-sectional area in the human quadriceps. J Physiol 1987; 390: PI54 Grindrod S, Round IM, Rutherford OM. Type-2 fiber composition and force per cross-sectional area in the human quadriceps. J Physiol 1987; 390: PI54
76.
go back to reference Aagaard P, Andersen JL. Correlation between contractile strength and myosin heavy chain isoform composition in human skeletal muscle. Med Sci Sports Exerc 1998; 30:1217–22PubMed Aagaard P, Andersen JL. Correlation between contractile strength and myosin heavy chain isoform composition in human skeletal muscle. Med Sci Sports Exerc 1998; 30:1217–22PubMed
77.
go back to reference Gur H, Gransberg L, van Dyke D, et al. Relationship between in vivo muscle force at different speeds of isokinetic movements and myosin isoform expression in men and women. Eur J Appl Physiol 2003; 88: 487–96PubMed Gur H, Gransberg L, van Dyke D, et al. Relationship between in vivo muscle force at different speeds of isokinetic movements and myosin isoform expression in men and women. Eur J Appl Physiol 2003; 88: 487–96PubMed
78.
go back to reference MacDougall JD, Sale DG, Moroz JR, et al. Mitochondrial volume density in human skeletal-muscle following heavy resistance training. Med Sci Sports Exerc 1979; 11: 164–6 MacDougall JD, Sale DG, Moroz JR, et al. Mitochondrial volume density in human skeletal-muscle following heavy resistance training. Med Sci Sports Exerc 1979; 11: 164–6
79.
go back to reference Morkin E. Postnatal muscle fiber assembly: localization of newly synthesized myofibrillar proteins. Science 1970; 167:1499–501PubMed Morkin E. Postnatal muscle fiber assembly: localization of newly synthesized myofibrillar proteins. Science 1970; 167:1499–501PubMed
80.
go back to reference Goldspink G. The proliferation of myofibrils during muscle fibre growth. J Cell Sci 1970; 6: 593–603PubMed Goldspink G. The proliferation of myofibrils during muscle fibre growth. J Cell Sci 1970; 6: 593–603PubMed
81.
go back to reference Goldspink G. Changes in striated muscle fibres during contraction and growth with particular reference to myofibril splitting. J Cell Sci 1971; 9: 123–8PubMed Goldspink G. Changes in striated muscle fibres during contraction and growth with particular reference to myofibril splitting. J Cell Sci 1971; 9: 123–8PubMed
82.
go back to reference Goldspink G, Howells KF. Work-induced hypertrophy in exercised normal muscles of different ages and the reversibility of hypertrophy after cessation of exercise. J Physiol 1974; 239:179–93PubMed Goldspink G, Howells KF. Work-induced hypertrophy in exercised normal muscles of different ages and the reversibility of hypertrophy after cessation of exercise. J Physiol 1974; 239:179–93PubMed
83.
go back to reference Goldspink G. Cellular and molecular aspects of adaptation in skeletal muscle. In: Komi PV, editor. Strength and power in sport. London: Blackwell Science, 1992: 211–229 Goldspink G. Cellular and molecular aspects of adaptation in skeletal muscle. In: Komi PV, editor. Strength and power in sport. London: Blackwell Science, 1992: 211–229
84.
go back to reference Patterson S, Goldspink G. Mechanism of myofibril growth and proliferation in fish muscle. J Cell Sci 1976; 22: 607–16PubMed Patterson S, Goldspink G. Mechanism of myofibril growth and proliferation in fish muscle. J Cell Sci 1976; 22: 607–16PubMed
85.
go back to reference Ashmore CR, Summers PI. Stretch-induced growth in chicken wing muscles: myofibrillar proliferation. Am J Physiol 1981; 241: C93–7 Ashmore CR, Summers PI. Stretch-induced growth in chicken wing muscles: myofibrillar proliferation. Am J Physiol 1981; 241: C93–7
86.
go back to reference Moss FP. The relationship between the dimensions of the fibres and the number of nuclei during restricted growth, degrowth and compensatory growth of skeletal muscle. J Anat 1968; 122: 555–63 Moss FP. The relationship between the dimensions of the fibres and the number of nuclei during restricted growth, degrowth and compensatory growth of skeletal muscle. J Anat 1968; 122: 555–63
87.
go back to reference Moss FP, Leblond CP. Satellite cells as the source of nuclei in muscles of growing rats. Anat Rec 1971; 170: 421–36PubMed Moss FP, Leblond CP. Satellite cells as the source of nuclei in muscles of growing rats. Anat Rec 1971; 170: 421–36PubMed
88.
go back to reference Burleigh JG. Observations on the number of nuclei within the fibres of some red and white muscles. J Cell Sci 1977; 23:269–84PubMed Burleigh JG. Observations on the number of nuclei within the fibres of some red and white muscles. J Cell Sci 1977; 23:269–84PubMed
89.
go back to reference Eisenberg BR, Kennedy JM, Wenderoth MP, et al. Anonymous cellular and molecular biology of muscle development. New York: AR Liss, 1989: 460 Eisenberg BR, Kennedy JM, Wenderoth MP, et al. Anonymous cellular and molecular biology of muscle development. New York: AR Liss, 1989: 460
90.
go back to reference Landing BH, Dixon LG, Wells TR. Studies on isolated human skeletal muscle fibers, including a proposed pattern of nuclear distribution and a concept of nuclear territories. Hum Pathal 1974; 5: 441–61 Landing BH, Dixon LG, Wells TR. Studies on isolated human skeletal muscle fibers, including a proposed pattern of nuclear distribution and a concept of nuclear territories. Hum Pathal 1974; 5: 441–61
91.
go back to reference Schmalbruch H. Muscle regeneration: fetal myogenesis in a new setting. Bib Anat 1986; 29: 126–53 Schmalbruch H. Muscle regeneration: fetal myogenesis in a new setting. Bib Anat 1986; 29: 126–53
92.
go back to reference Allen RE, Merkel RA, Young RB. Cellular aspects of muscle growth: myogenic cell proliferation. J Anim Sci 1979; 49:115–27PubMed Allen RE, Merkel RA, Young RB. Cellular aspects of muscle growth: myogenic cell proliferation. J Anim Sci 1979; 49:115–27PubMed
93.
go back to reference Bourke DL, Wylie SR, Theon A, et al. Myosin heavy chain expression following transfer into regenerating chicken muscle Basic Appl Myol 1995; 5: 43–56 Bourke DL, Wylie SR, Theon A, et al. Myosin heavy chain expression following transfer into regenerating chicken muscle Basic Appl Myol 1995; 5: 43–56
94.
go back to reference Allen DL, Manke SR, Talmadge RI, et al. Plasticity of myonuclear number in hypertrophied and atrophied mammalian skeletal muscle fibers. J Appl Physiol 1995; 78: 1969–76PubMed Allen DL, Manke SR, Talmadge RI, et al. Plasticity of myonuclear number in hypertrophied and atrophied mammalian skeletal muscle fibers. J Appl Physiol 1995; 78: 1969–76PubMed
95.
go back to reference Rosenblatt JD, Parry DJ. Gamma irradiation prevents compensatory hypertrophy of overloaded mouse extensor digitorum longus muscle. J Appl Physiol 1992; 73: 2538–43PubMed Rosenblatt JD, Parry DJ. Gamma irradiation prevents compensatory hypertrophy of overloaded mouse extensor digitorum longus muscle. J Appl Physiol 1992; 73: 2538–43PubMed
96.
go back to reference Rosenblatt JD, Parry DJ. Adaptation of rat extensor digitorum longus muscle to gamma irradiation and overload. Plugers Arch 1993; 423: 255–64 Rosenblatt JD, Parry DJ. Adaptation of rat extensor digitorum longus muscle to gamma irradiation and overload. Plugers Arch 1993; 423: 255–64
97.
go back to reference Rosenblatt JD, Yong D, Parry DJ. Satellite cell activity is required for hypertrophy of overloaded adult rat muscle. Muscle Nerve 1994; 17: 608–13PubMed Rosenblatt JD, Yong D, Parry DJ. Satellite cell activity is required for hypertrophy of overloaded adult rat muscle. Muscle Nerve 1994; 17: 608–13PubMed
98.
go back to reference Kadi F, Eriksson A, Holmner S, et al. Cellular adaptation of the trapezius muscle in strength-trained athletes. Histochem Cell Biol 1999; 111: 189–95PubMed Kadi F, Eriksson A, Holmner S, et al. Cellular adaptation of the trapezius muscle in strength-trained athletes. Histochem Cell Biol 1999; 111: 189–95PubMed
99.
go back to reference Kadi F, Eriksson A, Holmner S, et al. Effects of anabolic steroids on the muscle cells of strength-trained athletes. Med Sci Sports Exerc 1999; 31: 1528–34PubMed Kadi F, Eriksson A, Holmner S, et al. Effects of anabolic steroids on the muscle cells of strength-trained athletes. Med Sci Sports Exerc 1999; 31: 1528–34PubMed
100.
go back to reference Kadi F, Thornell LE. Concomitant increases in myonuclear and satellite cell content in female trapezius muscle following strength training. Histochem Cell Biol 2000; 113: 99–103PubMed Kadi F, Thornell LE. Concomitant increases in myonuclear and satellite cell content in female trapezius muscle following strength training. Histochem Cell Biol 2000; 113: 99–103PubMed
101.
go back to reference Roth S, Martel G, Ivey F, et al. Skeletal muscle satellite cell characteristics in young and older men and women after heavy resistance strength training. J Gerontol A Bio Sci 2001; 56: B240–7 Roth S, Martel G, Ivey F, et al. Skeletal muscle satellite cell characteristics in young and older men and women after heavy resistance strength training. J Gerontol A Bio Sci 2001; 56: B240–7
102.
go back to reference Kadi F, Schjerling P, Andersen LL, et al. The effects of heavy resistance training and detraining on satellite cells in human skeletal muscles. J Physiol 2004; 558: 1005–12PubMed Kadi F, Schjerling P, Andersen LL, et al. The effects of heavy resistance training and detraining on satellite cells in human skeletal muscles. J Physiol 2004; 558: 1005–12PubMed
103.
go back to reference Crameri RM, Langberg H, Magnusson P, et al. Changes in satellite cells in human skeletal muscle after a single bout of high intensity exercise. J Physiol 2004; 558: 333–40PubMed Crameri RM, Langberg H, Magnusson P, et al. Changes in satellite cells in human skeletal muscle after a single bout of high intensity exercise. J Physiol 2004; 558: 333–40PubMed
104.
go back to reference Hikida R, Staron R, Hagerman F, et al. Effects of high-intensity resistance training on untrained older men: II. Muscle fiber characteristics and nucleo-cytoplasmic relationships. J Gerontol A Biol Sci Med Sci 2000; 55: B347–54 Hikida R, Staron R, Hagerman F, et al. Effects of high-intensity resistance training on untrained older men: II. Muscle fiber characteristics and nucleo-cytoplasmic relationships. J Gerontol A Biol Sci Med Sci 2000; 55: B347–54
105.
go back to reference Sartorelli V, Fulco M. Molecular and cellular determinants of skeletal muscle atrophy and hypertrophy. Sci STKE 2004;2004: 11 Sartorelli V, Fulco M. Molecular and cellular determinants of skeletal muscle atrophy and hypertrophy. Sci STKE 2004;2004: 11
106.
go back to reference Reitsma W. Skeletal muscle hypertrophy after heavy exercise in rats with surgically reduced muscle function. Am J Phys Med 1969; 48: 237–58PubMed Reitsma W. Skeletal muscle hypertrophy after heavy exercise in rats with surgically reduced muscle function. Am J Phys Med 1969; 48: 237–58PubMed
107.
go back to reference Appell HI. Muscular atrophy following immobilization: a review. Sports Med 1990; 10: 42–58PubMed Appell HI. Muscular atrophy following immobilization: a review. Sports Med 1990; 10: 42–58PubMed
108.
go back to reference Edgerton VR. Morphology and histochemistry of the soleus muscle from normal and exercised rats. Am J Anat 1970; 127:81–8PubMed Edgerton VR. Morphology and histochemistry of the soleus muscle from normal and exercised rats. Am J Anat 1970; 127:81–8PubMed
109.
go back to reference Carrow RE, Heusener WW, Van Huss D, et al. Exercise and the incidence of muscle fibre splitting. Br Assoc Sports Med J 1973; 7: 39–41 Carrow RE, Heusener WW, Van Huss D, et al. Exercise and the incidence of muscle fibre splitting. Br Assoc Sports Med J 1973; 7: 39–41
110.
go back to reference Ho KW, Roy RR, Tweedle CD, et al. Skeletal muscle fiber splitting with weight-lifting exercise in rats. Am J Anat 1980;157: 433–40PubMed Ho KW, Roy RR, Tweedle CD, et al. Skeletal muscle fiber splitting with weight-lifting exercise in rats. Am J Anat 1980;157: 433–40PubMed
111.
go back to reference Gollnick PD, Timson BF, Moore RL, et al. Muscular enlargement and number of fibers in skeletal muscles of rats. J Appl Physiol 1981; 50: 936–43PubMed Gollnick PD, Timson BF, Moore RL, et al. Muscular enlargement and number of fibers in skeletal muscles of rats. J Appl Physiol 1981; 50: 936–43PubMed
112.
go back to reference Gonyea WJ, Sale DG, Gonyea FE, et al. Exercise induced increases in muscle fiber nurmef. Eur J Appl Physiol 1986; 55:137–41 Gonyea WJ, Sale DG, Gonyea FE, et al. Exercise induced increases in muscle fiber nurmef. Eur J Appl Physiol 1986; 55:137–41
113.
go back to reference Kelley G. Mechanical overload and skeletal muscle fiber hyperplasia: a meta-analysis. J Appl Physiol 1996; 81: 1584–8PubMed Kelley G. Mechanical overload and skeletal muscle fiber hyperplasia: a meta-analysis. J Appl Physiol 1996; 81: 1584–8PubMed
114.
go back to reference Antonio J, Gonyea WJ. Skeletal muscle fiber hyperplasia. Med Sci Sports Exerc 1993; 25: 1333–45PubMed Antonio J, Gonyea WJ. Skeletal muscle fiber hyperplasia. Med Sci Sports Exerc 1993; 25: 1333–45PubMed
115.
go back to reference Sjostrom M, Lexell J, Eriksson A, et al. Evidence of fibre hyperplasia in human skeletal muscles from healthy young men? A left-right comparison of the fibre number in whole anterior tibialis muscles. Eur J Appl Physiol 1991; 62: 301–4 Sjostrom M, Lexell J, Eriksson A, et al. Evidence of fibre hyperplasia in human skeletal muscles from healthy young men? A left-right comparison of the fibre number in whole anterior tibialis muscles. Eur J Appl Physiol 1991; 62: 301–4
116.
go back to reference Mauro M. Muscle regeneration. New York: Raven Press, 1979 Mauro M. Muscle regeneration. New York: Raven Press, 1979
117.
go back to reference Appell HJ, Forsberg S, Hollmann W. Satellite cell activation in human skeletal muscle after training: evidence for muscle fiber neoformation. Int J Sports Med 1988; 9: 297–9PubMed Appell HJ, Forsberg S, Hollmann W. Satellite cell activation in human skeletal muscle after training: evidence for muscle fiber neoformation. Int J Sports Med 1988; 9: 297–9PubMed
118.
go back to reference Tesch P A, Larsson L. Muscle hypertrophy in body builders. Eur J Appl Physiol 1982; 49: 301–6 Tesch P A, Larsson L. Muscle hypertrophy in body builders. Eur J Appl Physiol 1982; 49: 301–6
119.
go back to reference Larsson L, Tesch PA. Motor unit fibre density in extremely hypertrophied skeletal muscles in man: electro physiological signs of musclefibre hyperplasia. Eur J Appl Physiol 1986; 55:130–6 Larsson L, Tesch PA. Motor unit fibre density in extremely hypertrophied skeletal muscles in man: electro physiological signs of musclefibre hyperplasia. Eur J Appl Physiol 1986; 55:130–6
120.
go back to reference MacDougall JD, Sale DG, Elder GC, et al. Muscle ultra structural characteristics of elite powerlifters and body builders. Eur J Appl Physiol 1982; 48: 117–26 MacDougall JD, Sale DG, Elder GC, et al. Muscle ultra structural characteristics of elite powerlifters and body builders. Eur J Appl Physiol 1982; 48: 117–26
121.
go back to reference Bell DG, Jacobs I. Muscle fibre area, fibre type & capillarization in male and female body builders. Can J Sport Sci 1990; 15:115–9PubMed Bell DG, Jacobs I. Muscle fibre area, fibre type & capillarization in male and female body builders. Can J Sport Sci 1990; 15:115–9PubMed
122.
go back to reference Alway SE, Grundt WH, Gonyea WJ, et al. Contrasts in muscle and myofibers of elite male and female body builders. J Appl Physiol 1989; 67: 24–31PubMed Alway SE, Grundt WH, Gonyea WJ, et al. Contrasts in muscle and myofibers of elite male and female body builders. J Appl Physiol 1989; 67: 24–31PubMed
123.
go back to reference McCall GE, Byrnes WC, Dickinson A, et al. Muscle fiber hypertrophy, hyperplasia, and capillary density in college men after resistance training. J Appl Physiol 1996; 81: 2004–12PubMed McCall GE, Byrnes WC, Dickinson A, et al. Muscle fiber hypertrophy, hyperplasia, and capillary density in college men after resistance training. J Appl Physiol 1996; 81: 2004–12PubMed
124.
go back to reference MacDougall JD, Sale DG, Alway SE, et al. Muscle fiber nurmer in biceps brachi in bodybuilders and control subjects. J Physiol 1984; 57: 1399–403 MacDougall JD, Sale DG, Alway SE, et al. Muscle fiber nurmer in biceps brachi in bodybuilders and control subjects. J Physiol 1984; 57: 1399–403
125.
go back to reference Burke RE, Kanda K, Mayer RF. The effect of chronic immobilisation on defined types of motor units in cat medial gastrocnemius. Science 1975; 174: 709–12 Burke RE, Kanda K, Mayer RF. The effect of chronic immobilisation on defined types of motor units in cat medial gastrocnemius. Science 1975; 174: 709–12
126.
go back to reference Walsh N, Burke RE, Rymer WZ, et al. Effect of compensatory hypertrophy studied in individual motor units in medial gastrocnemius muscle of the cat. J Neurophysiol 1978; 41:496–508PubMed Walsh N, Burke RE, Rymer WZ, et al. Effect of compensatory hypertrophy studied in individual motor units in medial gastrocnemius muscle of the cat. J Neurophysiol 1978; 41:496–508PubMed
127.
go back to reference Hacklad F, Qin AX, Zeng M, et al. Effects of isometric training on skeletal myosin heavy chain expression. J Appl Physiol 1998; 84: 2036–41 Hacklad F, Qin AX, Zeng M, et al. Effects of isometric training on skeletal myosin heavy chain expression. J Appl Physiol 1998; 84: 2036–41
128.
go back to reference Hather BM, Tesch P A, Buchanan P, et al. Influence of eccentric actions on skeletal muscle adaptations to resistance training. Acta Physiol Scand 1991; 143: 177–85PubMed Hather BM, Tesch P A, Buchanan P, et al. Influence of eccentric actions on skeletal muscle adaptations to resistance training. Acta Physiol Scand 1991; 143: 177–85PubMed
129.
go back to reference Carroll TJ, Abernethy PJ, Logan PA, et al. Resistance training frequency: strength and myosin heavy chain responses to two and three bouts per week. Eur J Appl Physiol 1998; 78: 270–5 Carroll TJ, Abernethy PJ, Logan PA, et al. Resistance training frequency: strength and myosin heavy chain responses to two and three bouts per week. Eur J Appl Physiol 1998; 78: 270–5
130.
go back to reference Schiaffino S, Gorza L, Sartore S, et al. Three myosin heavy chain isoforms in type 2 skeletal muscle fibres. J Muscle Res Cell Motil 1989; 10: 197–205PubMed Schiaffino S, Gorza L, Sartore S, et al. Three myosin heavy chain isoforms in type 2 skeletal muscle fibres. J Muscle Res Cell Motil 1989; 10: 197–205PubMed
131.
go back to reference Andersen J, Aagaard P. Myosin heavy chain I1x overshoot in human skeletal muscle. Muscle Nerve 2000; 23: 1095–104PubMed Andersen J, Aagaard P. Myosin heavy chain I1x overshoot in human skeletal muscle. Muscle Nerve 2000; 23: 1095–104PubMed
132.
go back to reference Williamson DL, Gallagher PM, Carroll CC, et al. Reduction in hybrid single muscle fiber proportions with resistance training in humans. J Appl Physiol 2001; 91: 1955–61PubMed Williamson DL, Gallagher PM, Carroll CC, et al. Reduction in hybrid single muscle fiber proportions with resistance training in humans. J Appl Physiol 2001; 91: 1955–61PubMed
133.
go back to reference Andersen LL, Andersen JL, Magnusson SP, et al. Changes in the human muscle force-velocity relationship in response to resistance training and subsequent detraining. J Appl Physiol 2005; 99: 87–94PubMed Andersen LL, Andersen JL, Magnusson SP, et al. Changes in the human muscle force-velocity relationship in response to resistance training and subsequent detraining. J Appl Physiol 2005; 99: 87–94PubMed
134.
go back to reference Claassen H, Gelber C, Hoppeler H, et al. Muscle filament spacing and short-term heavy-resistance exercise in humans. J Physiol 1989; 409: 491–5PubMed Claassen H, Gelber C, Hoppeler H, et al. Muscle filament spacing and short-term heavy-resistance exercise in humans. J Physiol 1989; 409: 491–5PubMed
135.
go back to reference Horber FF, Scheidegger JR, Grünig BE, et al. Thigh muscle mass and function in patients treated with glucocorticoids. Eur J Clin Invest 1985; 15: 302–7PubMed Horber FF, Scheidegger JR, Grünig BE, et al. Thigh muscle mass and function in patients treated with glucocorticoids. Eur J Clin Invest 1985; 15: 302–7PubMed
136.
go back to reference Jones DA, Rutherford OM. Human muscle strength training: the effects of three different regimens and the nature of the resultant changes. J Physiol 1987; 391: 1–11PubMed Jones DA, Rutherford OM. Human muscle strength training: the effects of three different regimens and the nature of the resultant changes. J Physiol 1987; 391: 1–11PubMed
137.
go back to reference SipiHi S, Suominen H. Effects of strength and endurance training on thigh and leg muscle mass and composition in elderly women. J Appl Physiol 1995; 78: 334–40 SipiHi S, Suominen H. Effects of strength and endurance training on thigh and leg muscle mass and composition in elderly women. J Appl Physiol 1995; 78: 334–40
138.
go back to reference Goldspink G. The cormined effects of exercise and reduced food intake on skeletal muscle fibers. J Cell Comp Physiol 1964; 63: 209–19 Goldspink G. The cormined effects of exercise and reduced food intake on skeletal muscle fibers. J Cell Comp Physiol 1964; 63: 209–19
139.
go back to reference Esmarck B, Andersen JL, Olsen S, et al. Timing of postexercise protein intake is important for muscle hypertrophy with resistance training in elderly humans. J PhysioI2001; 535: 301–11PubMed Esmarck B, Andersen JL, Olsen S, et al. Timing of postexercise protein intake is important for muscle hypertrophy with resistance training in elderly humans. J PhysioI2001; 535: 301–11PubMed
140.
go back to reference Trappe S, Williamson D, Godard M, et al. Effect of resistance training on single muscle fiber contractile function in older men. J Appl Physiol 2000; 89: 143–52PubMed Trappe S, Williamson D, Godard M, et al. Effect of resistance training on single muscle fiber contractile function in older men. J Appl Physiol 2000; 89: 143–52PubMed
141.
go back to reference Godard MP, Gallagher PM, Raue U, et al. Alterations in single muscle fiber calcium sensitivity with resistance training in older women. Pflugers Arch 2002; 444: 419–25PubMed Godard MP, Gallagher PM, Raue U, et al. Alterations in single muscle fiber calcium sensitivity with resistance training in older women. Pflugers Arch 2002; 444: 419–25PubMed
142.
go back to reference Shoepe TC, Stelzer JE, Garner DP, et al. Functional adaptability of muscle fibers to long-term resistance exercise. Med Sci Sports Exerc 2003; 35: 944–51PubMed Shoepe TC, Stelzer JE, Garner DP, et al. Functional adaptability of muscle fibers to long-term resistance exercise. Med Sci Sports Exerc 2003; 35: 944–51PubMed
143.
go back to reference Street SF. Lateral transmission of tension in frog myofibers: a myofibrillar network and transverse cytoskeletal connections are possible transmitters. J Cell Physiol 1983; 114: 346–64PubMed Street SF. Lateral transmission of tension in frog myofibers: a myofibrillar network and transverse cytoskeletal connections are possible transmitters. J Cell Physiol 1983; 114: 346–64PubMed
144.
go back to reference Goldberg AL, Etlinger JD, Goldspink DF, et al. Mechanism of work-induced hypertrophy of skeletal muscle. Med Sci Sports Exerc 1975; 7: 248–61 Goldberg AL, Etlinger JD, Goldspink DF, et al. Mechanism of work-induced hypertrophy of skeletal muscle. Med Sci Sports Exerc 1975; 7: 248–61
145.
go back to reference Huxley AF. Muscle structure and theories of contraction. Prog Biophysics Biophysical Chem 1957; 7: 255–318 Huxley AF. Muscle structure and theories of contraction. Prog Biophysics Biophysical Chem 1957; 7: 255–318
146.
go back to reference Viidik A. Tensile strength properties of Achilles tendon systems in trained and untrained rabbits. Acta Orthop Scand 1969; 40:261–72PubMed Viidik A. Tensile strength properties of Achilles tendon systems in trained and untrained rabbits. Acta Orthop Scand 1969; 40:261–72PubMed
147.
go back to reference Woo SL, Gomez MA, Amiel D, et al. The effects of exercise on the biomechanical and biochemical properties of swine digital flexor tendons. Biomech Eng 1981; 103: 51–6 Woo SL, Gomez MA, Amiel D, et al. The effects of exercise on the biomechanical and biochemical properties of swine digital flexor tendons. Biomech Eng 1981; 103: 51–6
148.
go back to reference Kubo K, Kanehisa H, Fukunaga T. Effects of different duration isometric contractions on tendon elasticity in human quadriceps muscles. J Physiol 2001; 536: 649–55PubMed Kubo K, Kanehisa H, Fukunaga T. Effects of different duration isometric contractions on tendon elasticity in human quadriceps muscles. J Physiol 2001; 536: 649–55PubMed
149.
go back to reference Kubo K, Kanehisa H, Fukunaga T. Effects of resistance and stretching training programmes on the visco elastic properties of human tendon structures in vivo. J Physiol 2002; 538: 219–26PubMed Kubo K, Kanehisa H, Fukunaga T. Effects of resistance and stretching training programmes on the visco elastic properties of human tendon structures in vivo. J Physiol 2002; 538: 219–26PubMed
150.
go back to reference Reeves ND, Maganaris CN, Narici MY. Effect of strength training on human patella tendon mechanical properties of older individuals. J Physiol 2003; 548: 971–81PubMed Reeves ND, Maganaris CN, Narici MY. Effect of strength training on human patella tendon mechanical properties of older individuals. J Physiol 2003; 548: 971–81PubMed
151.
go back to reference Bojsen-Müller J, Magnusson SP, Rasmussen JD, et al. Muscle performance during maximal isometric and dynamic contractions is influenced by the stiffness of the tendinous structures. J Appl Physiol 2005; 99: 986–94 Bojsen-Müller J, Magnusson SP, Rasmussen JD, et al. Muscle performance during maximal isometric and dynamic contractions is influenced by the stiffness of the tendinous structures. J Appl Physiol 2005; 99: 986–94
152.
go back to reference Kongsgaard M, Aagaard P, Kjaer M, et al. Structural Achilles tendon properties in athletes subjected to different exercise modes and in Achilles tendon rupture patients. J Appl Physiol 2005; 99: 1965–71PubMed Kongsgaard M, Aagaard P, Kjaer M, et al. Structural Achilles tendon properties in athletes subjected to different exercise modes and in Achilles tendon rupture patients. J Appl Physiol 2005; 99: 1965–71PubMed
153.
go back to reference Sommer HM. The biomechanical and metabolic effects of a running regime on the Achilles tendon in the rat. Int Orthop 1987; 11: 71–5PubMed Sommer HM. The biomechanical and metabolic effects of a running regime on the Achilles tendon in the rat. Int Orthop 1987; 11: 71–5PubMed
154.
go back to reference Birch HL, McLaughlin L, Smith RK, et al. Treadmill exercise induced tendon hypertrophy: assessment of tendons with different mechanical functions. Equine Vet J Suppl 1999; 30: 222–6PubMed Birch HL, McLaughlin L, Smith RK, et al. Treadmill exercise induced tendon hypertrophy: assessment of tendons with different mechanical functions. Equine Vet J Suppl 1999; 30: 222–6PubMed
155.
go back to reference Woo SL, Ritter MA, Amiel D, et al. The biomechanical and biochemical properties of swine tendons: long term effects of exercise on the digital extensors. Connect Tissue Res 1980; 7: 177–83PubMed Woo SL, Ritter MA, Amiel D, et al. The biomechanical and biochemical properties of swine tendons: long term effects of exercise on the digital extensors. Connect Tissue Res 1980; 7: 177–83PubMed
156.
go back to reference Wood TO, Cooke PH, Goodship AE. The effect of exercise and anabolic steroids on the mechanical properties and crimmorphology of the rat tendon. Am J Sports Med 1988; 16: 153–8PubMed Wood TO, Cooke PH, Goodship AE. The effect of exercise and anabolic steroids on the mechanical properties and crimmorphology of the rat tendon. Am J Sports Med 1988; 16: 153–8PubMed
157.
go back to reference Michna H, Hartmann G. Adaptation of tendon collagen to exercise. Int Orthop 1989; 13: 161–5PubMed Michna H, Hartmann G. Adaptation of tendon collagen to exercise. Int Orthop 1989; 13: 161–5PubMed
158.
go back to reference Alexander RM, Vernon A. The dimensions of the knee and ankle mucleS and the forces they exert. J Hum Movt Stud 1975; 1: 115–23 Alexander RM, Vernon A. The dimensions of the knee and ankle mucleS and the forces they exert. J Hum Movt Stud 1975; 1: 115–23
159.
go back to reference Kawakami Y, Abe T, Fukunaga T. Muscle-fiber pennation angles are greater in hypertrophied than in normal muscles. J Appl Physiol 1993; 74: 2740–4PubMed Kawakami Y, Abe T, Fukunaga T. Muscle-fiber pennation angles are greater in hypertrophied than in normal muscles. J Appl Physiol 1993; 74: 2740–4PubMed
160.
go back to reference Ichinose Y, Kanehisa H, Ito M, et al. Relationship between muscle fiber pennation and force generation capability in olympic athletes. Int J Sports Med 1998; 19: 541–6PubMed Ichinose Y, Kanehisa H, Ito M, et al. Relationship between muscle fiber pennation and force generation capability in olympic athletes. Int J Sports Med 1998; 19: 541–6PubMed
161.
go back to reference Abe T, Brechue WF, Fujita S, et al. Gender differences in FFM accumulation and architectural characteristics of muscle. Med Sci Sports Exerc 1998; 30: 1066–70PubMed Abe T, Brechue WF, Fujita S, et al. Gender differences in FFM accumulation and architectural characteristics of muscle. Med Sci Sports Exerc 1998; 30: 1066–70PubMed
162.
go back to reference Rutherford OM, Jones DA. Measurement of fibre pennation using ultrasound in the human quadriceps in vivo. Eur J Appl Physiol 1992; 65: 433–7 Rutherford OM, Jones DA. Measurement of fibre pennation using ultrasound in the human quadriceps in vivo. Eur J Appl Physiol 1992; 65: 433–7
163.
go back to reference Kanehisa H, Nagareda H, Kawakami Y, et al. Effects of equivolume isometric training programs comprising medium or high resistance on muscle size and strength. Eur J Appl Physiol 2002; 87: 112–9PubMed Kanehisa H, Nagareda H, Kawakami Y, et al. Effects of equivolume isometric training programs comprising medium or high resistance on muscle size and strength. Eur J Appl Physiol 2002; 87: 112–9PubMed
164.
go back to reference Kawakami Y, Abe T, Kuno SY, et al. Training-induced changes in muscle architecture and specific tension. Eur J Appl Physiol Occup Physiol 1995; 72: 37–43PubMed Kawakami Y, Abe T, Kuno SY, et al. Training-induced changes in muscle architecture and specific tension. Eur J Appl Physiol Occup Physiol 1995; 72: 37–43PubMed
165.
go back to reference Reeves ND, Narici MV, Maganaris CN. Effect of resistance training on skeletal muscle-specific force in elderly humans. J Appl Physiol 2004; 96: 885–92PubMed Reeves ND, Narici MV, Maganaris CN. Effect of resistance training on skeletal muscle-specific force in elderly humans. J Appl Physiol 2004; 96: 885–92PubMed
166.
go back to reference Sale DG, MacDougall JD, Upton AR, et al. Effect of strength training upon motoneuron excitability in man. Med Sci Sports Exerc 1983; 15: 57–62PubMed Sale DG, MacDougall JD, Upton AR, et al. Effect of strength training upon motoneuron excitability in man. Med Sci Sports Exerc 1983; 15: 57–62PubMed
167.
go back to reference Gandevia SC. Spinal and supra spinal factors in human muscle fatigue. Physiol Rev 2001; 81: 1725–89PubMed Gandevia SC. Spinal and supra spinal factors in human muscle fatigue. Physiol Rev 2001; 81: 1725–89PubMed
168.
go back to reference Rutherford OM, Jones DA. The role of learning and coordination in strength training. Eur J Appl Physiol 1986; 55: 100–5 Rutherford OM, Jones DA. The role of learning and coordination in strength training. Eur J Appl Physiol 1986; 55: 100–5
169.
go back to reference Horak FE, Macpherson JM. Postural orientation and equilibrium. In: Rowell LB, Shepherd IT, editors. Handbook of physiology: section 12 exercise: regulation and integration of multiple systems. New York: Oxford University Press, 1996: 292 Horak FE, Macpherson JM. Postural orientation and equilibrium. In: Rowell LB, Shepherd IT, editors. Handbook of physiology: section 12 exercise: regulation and integration of multiple systems. New York: Oxford University Press, 1996: 292
170.
go back to reference Wilson GJ, Murphy AJ, Walshe A. The specificity of strength training: the effect of posture. Eur J Appl Physiol Occup Physiol 1996; 73: 346–52PubMed Wilson GJ, Murphy AJ, Walshe A. The specificity of strength training: the effect of posture. Eur J Appl Physiol Occup Physiol 1996; 73: 346–52PubMed
171.
go back to reference Nozaki D, Nakazawa K, Akai M. Uncertainty of knee joint muscle activity during knee joint torque exertion: the significance of controlling adjacent joint torque. J Appl Physiol 2005; 99: 1093–103PubMed Nozaki D, Nakazawa K, Akai M. Uncertainty of knee joint muscle activity during knee joint torque exertion: the significance of controlling adjacent joint torque. J Appl Physiol 2005; 99: 1093–103PubMed
172.
go back to reference Komi PV, Viitasalo IT, Rauramaa R, et al. Effect of isometric strength training of mechanical, electrical, and metabolic aspects of muscle function. Eur J Appl Physiol Occup Physiol 1978; 40: 45–55PubMed Komi PV, Viitasalo IT, Rauramaa R, et al. Effect of isometric strength training of mechanical, electrical, and metabolic aspects of muscle function. Eur J Appl Physiol Occup Physiol 1978; 40: 45–55PubMed
173.
go back to reference Moritani T, deVries HA. Neural factors versus hypertrophy in the time course of muscle strength gain. Am J Phys Med 1979;58: 115–30PubMed Moritani T, deVries HA. Neural factors versus hypertrophy in the time course of muscle strength gain. Am J Phys Med 1979;58: 115–30PubMed
174.
go back to reference Patten C, Kamen G, Rowland D. Adaptations in maximal motor unit discharge rate to strength training in young and older adults. Muscle Nerve 2001; 24: 542–50PubMed Patten C, Kamen G, Rowland D. Adaptations in maximal motor unit discharge rate to strength training in young and older adults. Muscle Nerve 2001; 24: 542–50PubMed
175.
go back to reference Zhou S. Chronic neural adaptations to unilateral exercise: mechanisms of cross education. Exerc Sport Sci Rev 2000; 28: 177–84PubMed Zhou S. Chronic neural adaptations to unilateral exercise: mechanisms of cross education. Exerc Sport Sci Rev 2000; 28: 177–84PubMed
176.
go back to reference Sale DG. Neural adaptation to resistance training. Med Sci Sports Exerc 1988; 20: S135–45 Sale DG. Neural adaptation to resistance training. Med Sci Sports Exerc 1988; 20: S135–45
177.
go back to reference Davies J, Parker DF, Rutherford OM, et al. Changes in strength and cross sectional area of the elbow flexors as a result of isometric strength training. Eur J Appl Physiol 1988; 57:667–70 Davies J, Parker DF, Rutherford OM, et al. Changes in strength and cross sectional area of the elbow flexors as a result of isometric strength training. Eur J Appl Physiol 1988; 57:667–70
178.
go back to reference Young A, Stokes M, Round IM, et al. The effect of high resistance training on the strength and cross-sectional area of the human quadriceps. Eur J Clin Invest 1983; 13: 411–7PubMed Young A, Stokes M, Round IM, et al. The effect of high resistance training on the strength and cross-sectional area of the human quadriceps. Eur J Clin Invest 1983; 13: 411–7PubMed
179.
go back to reference Hortobagyi T, Scott K, Lambert J, et al. Cross-education of muscle strength is greater with stimulated than voluntary contractions. Motor Control 1999; 3: 205–19PubMed Hortobagyi T, Scott K, Lambert J, et al. Cross-education of muscle strength is greater with stimulated than voluntary contractions. Motor Control 1999; 3: 205–19PubMed
180.
go back to reference Farthing JP, Chilibeck PD. The effect of eccentric training at different velocities on cross-education. Eur J Appl Physiol 2003; 89: 570–7PubMed Farthing JP, Chilibeck PD. The effect of eccentric training at different velocities on cross-education. Eur J Appl Physiol 2003; 89: 570–7PubMed
181.
go back to reference Seger IY, Thorstensson A. Effects of eccentric versus concentric training on thigh muscle strength and EMG. Int J Sports Med 2005; 26: 45–52PubMed Seger IY, Thorstensson A. Effects of eccentric versus concentric training on thigh muscle strength and EMG. Int J Sports Med 2005; 26: 45–52PubMed
182.
go back to reference Shima N, Ishida K, Katayama K, et al. Cross education of muscular strength during unilateral resistance training and detraining. Eur J Appl Physiol 2002; 86: 287–94PubMed Shima N, Ishida K, Katayama K, et al. Cross education of muscular strength during unilateral resistance training and detraining. Eur J Appl Physiol 2002; 86: 287–94PubMed
183.
go back to reference Yue G, Cole KJ. Strength increases from the motor program: commison of training with maximal voluntary and imagined muscle contractions. J Neurophysiol 1992; 67: 1114–23PubMed Yue G, Cole KJ. Strength increases from the motor program: commison of training with maximal voluntary and imagined muscle contractions. J Neurophysiol 1992; 67: 1114–23PubMed
184.
go back to reference Zijdewind I, Toering ST, Bessem B, et al. Effects of imagery motor training on torque production of ankle plantar flexormuscles. Muscle Nerve 2003; 28: 168–73PubMed Zijdewind I, Toering ST, Bessem B, et al. Effects of imagery motor training on torque production of ankle plantar flexormuscles. Muscle Nerve 2003; 28: 168–73PubMed
185.
go back to reference Sidaway B, Trzaska AR. Can mental practice increase ankle dorsiflexor torque? Phys Ther 2005; 85: 1053–60PubMed Sidaway B, Trzaska AR. Can mental practice increase ankle dorsiflexor torque? Phys Ther 2005; 85: 1053–60PubMed
186.
go back to reference Herbert RD, Dean C, Gandevia SC. Effects of real and imagined training on voluntary muscle activation during maximal isometric contractions. Acta Physiol Scand 1998; 163: 361–8PubMed Herbert RD, Dean C, Gandevia SC. Effects of real and imagined training on voluntary muscle activation during maximal isometric contractions. Acta Physiol Scand 1998; 163: 361–8PubMed
187.
go back to reference Behm DG, Whittle J, Button D, et al. Intermuscle differences in activation. Muscle Nerve 2002; 25: 236–43PubMed Behm DG, Whittle J, Button D, et al. Intermuscle differences in activation. Muscle Nerve 2002; 25: 236–43PubMed
188.
go back to reference Westing SH, Seger JY, Karlson E, et al. Eccentric and concentric torque-velocity characteristics of the quadriceps femoris in man. Eur J Appl Physiol Occup Physiol 1988; 58: 100–4PubMed Westing SH, Seger JY, Karlson E, et al. Eccentric and concentric torque-velocity characteristics of the quadriceps femoris in man. Eur J Appl Physiol Occup Physiol 1988; 58: 100–4PubMed
189.
go back to reference Dudley GA, Harris RT, Duvoisin MR, et al. Effect of voluntary vs artificial activation on the relationship of muscle torque to speed. J Appl Physiol 1990; 69: 2215–21PubMed Dudley GA, Harris RT, Duvoisin MR, et al. Effect of voluntary vs artificial activation on the relationship of muscle torque to speed. J Appl Physiol 1990; 69: 2215–21PubMed
190.
go back to reference Hakkinen K, Komi PV. Electromyographic changes during strength training and detraining. Med Sci Sports Exerc 1983;15: 455–60PubMed Hakkinen K, Komi PV. Electromyographic changes during strength training and detraining. Med Sci Sports Exerc 1983;15: 455–60PubMed
191.
go back to reference Reeves ND, Maganaris CN, Narici MV. Plasticity of dynamic muscle performance with strength training in elderly humans. Muscle Nerve 2005; 31: 355–64PubMed Reeves ND, Maganaris CN, Narici MV. Plasticity of dynamic muscle performance with strength training in elderly humans. Muscle Nerve 2005; 31: 355–64PubMed
192.
go back to reference Weir JP, Housh DJ, Housh TJ, et al. The effect of unilateral eccentric weight training and detraining on joint angle specificity, cross-training, and the bilateral deficit. J Orthop Sports Phys Ther 1995; 22: 207–15PubMed Weir JP, Housh DJ, Housh TJ, et al. The effect of unilateral eccentric weight training and detraining on joint angle specificity, cross-training, and the bilateral deficit. J Orthop Sports Phys Ther 1995; 22: 207–15PubMed
193.
go back to reference Aagaard P, Simonsen E, Andersen J, et al. Increased rate of force development and neural drive of human skeletal muscle following resistance training. J Appl Physiol 2002; 93:1318–26PubMed Aagaard P, Simonsen E, Andersen J, et al. Increased rate of force development and neural drive of human skeletal muscle following resistance training. J Appl Physiol 2002; 93:1318–26PubMed
194.
go back to reference Holtermann A, Roeleveld K, Vereijken B, et al. Changes in agonist EMG activation level during MVC cannot explain early strength improvement. Eur J Appl Physiol 2005; 94:593–601PubMed Holtermann A, Roeleveld K, Vereijken B, et al. Changes in agonist EMG activation level during MVC cannot explain early strength improvement. Eur J Appl Physiol 2005; 94:593–601PubMed
195.
go back to reference Hicks AL, Cupido CM, Martin J, et al. Muscle excitation in elderly adults: the effects of training. Muscle Nerve 1992; 15:87–93PubMed Hicks AL, Cupido CM, Martin J, et al. Muscle excitation in elderly adults: the effects of training. Muscle Nerve 1992; 15:87–93PubMed
196.
go back to reference Med WIT, Jebens E, Vikne H, et al. Effect of strenuous strength training on the Na-K pump concentration in skeletal muscle of well-trained men. Eur J Appl Physiol 2001; 84: 148–54 Med WIT, Jebens E, Vikne H, et al. Effect of strenuous strength training on the Na-K pump concentration in skeletal muscle of well-trained men. Eur J Appl Physiol 2001; 84: 148–54
197.
go back to reference Dela F, Holten M, Juel C. Effect of resistance training on Na-K Pump and Na+JH+ exchange protein densities in muscle from control and patients with type 2 diabetes. Pflugers Arch 2004;447: 928–33PubMed Dela F, Holten M, Juel C. Effect of resistance training on Na-K Pump and Na+JH+ exchange protein densities in muscle from control and patients with type 2 diabetes. Pflugers Arch 2004;447: 928–33PubMed
198.
go back to reference Fuentes I, Cobos AR, Segade LA. Muscle fibre types and their distribution in the biceps and triceps brachii of the rat and rabbit. J Anat 1998; 192: 203–10PubMed Fuentes I, Cobos AR, Segade LA. Muscle fibre types and their distribution in the biceps and triceps brachii of the rat and rabbit. J Anat 1998; 192: 203–10PubMed
199.
go back to reference Duchateau J, Hainaut K. Isometric or dynamic training: differential effects on mechanical properties of a human muscle. J Appl Physiol 1984; 56: 296–301PubMed Duchateau J, Hainaut K. Isometric or dynamic training: differential effects on mechanical properties of a human muscle. J Appl Physiol 1984; 56: 296–301PubMed
200.
go back to reference Van Cutsem M, Duchateau J, Hainaut K. Changes in single motor unit behaviour contribute to the increase in contraction speed after dynamic training in humans. J Physiol 1998; 513:295–305PubMed Van Cutsem M, Duchateau J, Hainaut K. Changes in single motor unit behaviour contribute to the increase in contraction speed after dynamic training in humans. J Physiol 1998; 513:295–305PubMed
201.
go back to reference Rich C, Cafarelli E. Submaximal motor unit firing rates after 8 wk of isometric resistance training. Med Sci Sports Exerc 2000; 32: 190–6PubMed Rich C, Cafarelli E. Submaximal motor unit firing rates after 8 wk of isometric resistance training. Med Sci Sports Exerc 2000; 32: 190–6PubMed
202.
go back to reference Bigland B, Lippold OC. Motor unit activity in the voluntary contraction of human muscle. J Physiol 1954; 125: 322–35PubMed Bigland B, Lippold OC. Motor unit activity in the voluntary contraction of human muscle. J Physiol 1954; 125: 322–35PubMed
203.
go back to reference Bigland-Ritchie B, Johansson R, Lippold OC, et al. Contractile speed and EMG changes during fatigue of sustained maximal voluntary contractions. J Neurophysiol 1983; 50: 313–24PubMed Bigland-Ritchie B, Johansson R, Lippold OC, et al. Contractile speed and EMG changes during fatigue of sustained maximal voluntary contractions. J Neurophysiol 1983; 50: 313–24PubMed
204.
go back to reference Grirmy L, Hannerz J, Hedman B. The fatigue and voluntary discharge properties of single motor units in man. J Physiol 1981; 316: 545–54 Grirmy L, Hannerz J, Hedman B. The fatigue and voluntary discharge properties of single motor units in man. J Physiol 1981; 316: 545–54
205.
go back to reference Lyle N, Rutherford OM. A comparison of voluntary versus stimulated strength training of the human adductor pollicis muscle. J Sports Sci 1998; 16: 267–70PubMed Lyle N, Rutherford OM. A comparison of voluntary versus stimulated strength training of the human adductor pollicis muscle. J Sports Sci 1998; 16: 267–70PubMed
206.
go back to reference McDonagh MJ, Hayward CM, Davies CT. Isometric training in human elbow flexor muscles: the effects on voluntary and electrically evoked forces. J Bone Joint Surg Br 1983; 65:355–8PubMed McDonagh MJ, Hayward CM, Davies CT. Isometric training in human elbow flexor muscles: the effects on voluntary and electrically evoked forces. J Bone Joint Surg Br 1983; 65:355–8PubMed
207.
go back to reference Davies CR, Dooley P, McDonagh MJ, et al. Adaptation of mechanical properties of muscle to high force training in man. J Physiol 1985; 365: 277–84PubMed Davies CR, Dooley P, McDonagh MJ, et al. Adaptation of mechanical properties of muscle to high force training in man. J Physiol 1985; 365: 277–84PubMed
208.
go back to reference Maffiuletti NA, Cometti G, Amiridis IG, et al. The effects of electromyo stimulation training and basketball practice on muscle strength and jumping ability. Int J Sports Med 2000; 21: 437–43PubMed Maffiuletti NA, Cometti G, Amiridis IG, et al. The effects of electromyo stimulation training and basketball practice on muscle strength and jumping ability. Int J Sports Med 2000; 21: 437–43PubMed
209.
go back to reference Colson S, Martin A, Van Hoecke J. Re-examination of training effects by electro stimulation in the human elbow musculoskeletal system. Int J Sports Med 2000; 21: 281–8PubMed Colson S, Martin A, Van Hoecke J. Re-examination of training effects by electro stimulation in the human elbow musculoskeletal system. Int J Sports Med 2000; 21: 281–8PubMed
210.
go back to reference Zhou S, Chakman A, Davie A. Effects of unilateral voluntary and electromyostimulation training on muscular strength of the contralateral limb. Hong Kong J Sports Med Sports Sci 2002;14: 1–11 Zhou S, Chakman A, Davie A. Effects of unilateral voluntary and electromyostimulation training on muscular strength of the contralateral limb. Hong Kong J Sports Med Sports Sci 2002;14: 1–11
211.
go back to reference Lieber RL, Silva PD, Daniel DM. Equal effectiveness of electrical and volitional strength training for quadriceps femoris muscles after anterior cruciate ligament surgery. J Orthop Res 1996; 14: 131–8PubMed Lieber RL, Silva PD, Daniel DM. Equal effectiveness of electrical and volitional strength training for quadriceps femoris muscles after anterior cruciate ligament surgery. J Orthop Res 1996; 14: 131–8PubMed
212.
go back to reference Ruther CL, Golden CL, Harris RT, et al. Hypertrophy, resistance training, and the nature of skeletal muscle activation. J Strength Cond Res 1995; 9: 155–9 Ruther CL, Golden CL, Harris RT, et al. Hypertrophy, resistance training, and the nature of skeletal muscle activation. J Strength Cond Res 1995; 9: 155–9
213.
go back to reference Merton PA. Voluntary strength and fatigue. J Physiol 1954; 123: 553–64PubMed Merton PA. Voluntary strength and fatigue. J Physiol 1954; 123: 553–64PubMed
214.
go back to reference Belanger AY, McComas AJ. Extent of motor unit activation during effort. J Appl Physiol 1981; 51: 1131–5PubMed Belanger AY, McComas AJ. Extent of motor unit activation during effort. J Appl Physiol 1981; 51: 1131–5PubMed
215.
go back to reference Rutherford OM, Jones DA, Newham DJ. Clinical and experimental application of the percutaneous switch superior composition technique for the study of human muscle activation. J Neurol Neurosurg Psychiatry 1986; 49: 1248–91 Rutherford OM, Jones DA, Newham DJ. Clinical and experimental application of the percutaneous switch superior composition technique for the study of human muscle activation. J Neurol Neurosurg Psychiatry 1986; 49: 1248–91
216.
go back to reference Folland J, Williams A. Methodological issues with the interpolated twitch technique. J Electromyog Kinesiol. Epub 2006 Jun Folland J, Williams A. Methodological issues with the interpolated twitch technique. J Electromyog Kinesiol. Epub 2006 Jun
217.
go back to reference Shield A, Thou S. Assessing voluntary muscle activation with the twitch interpolation technique. Sports Med 2004; 34:253–67PubMed Shield A, Thou S. Assessing voluntary muscle activation with the twitch interpolation technique. Sports Med 2004; 34:253–67PubMed
218.
go back to reference Nerregaard J, Biilow PM, Danneskiold-Sams B. Muscle strength, voluntary activation, twitch properties, and endurance in patients with fibro myalgia. J Neurol Neurosurg Psychiatry 1994; 57: 1106–11 Nerregaard J, Biilow PM, Danneskiold-Sams B. Muscle strength, voluntary activation, twitch properties, and endurance in patients with fibro myalgia. J Neurol Neurosurg Psychiatry 1994; 57: 1106–11
219.
go back to reference Jakobi JM, Cafarelli E. Neuromuscular drive and force production are not altered during bilateral contractions. J Appl Physiol 1998; 84: 200–6PubMed Jakobi JM, Cafarelli E. Neuromuscular drive and force production are not altered during bilateral contractions. J Appl Physiol 1998; 84: 200–6PubMed
220.
go back to reference Roos MR, Rice CL, Connelly DM, et al. Quadriceps muscle strength, contractile properties, and motor unit firing rates in young and old men. Muscle Nerve 1999; 22: 1094–103PubMed Roos MR, Rice CL, Connelly DM, et al. Quadriceps muscle strength, contractile properties, and motor unit firing rates in young and old men. Muscle Nerve 1999; 22: 1094–103PubMed
221.
go back to reference Kalmar JM, Cafarelli E. Effects of caffeine on neuromuscular function. J Appl Physiol 1999; 87: 801–8PubMed Kalmar JM, Cafarelli E. Effects of caffeine on neuromuscular function. J Appl Physiol 1999; 87: 801–8PubMed
222.
go back to reference Brown AB, McCartney N, Sale DG. Positive adaptations to weight-lifting training in the elderly. J Appl Physiol 1990; 69:1725–33PubMed Brown AB, McCartney N, Sale DG. Positive adaptations to weight-lifting training in the elderly. J Appl Physiol 1990; 69:1725–33PubMed
223.
go back to reference Scaglioni G, Ferri A, Minetti A, et al. Plantar flexor activation capacity and H reflex in older adults: adaptations to strength training. J Appl Physiol 2002; 92: 2292–302PubMed Scaglioni G, Ferri A, Minetti A, et al. Plantar flexor activation capacity and H reflex in older adults: adaptations to strength training. J Appl Physiol 2002; 92: 2292–302PubMed
224.
go back to reference Knight C, Kamen G. Adaptations in muscular activation of the knee extensor muscles with strength training in young and older adults. J Electromyogr Kinesiol 2001; 11: 405–12PubMed Knight C, Kamen G. Adaptations in muscular activation of the knee extensor muscles with strength training in young and older adults. J Electromyogr Kinesiol 2001; 11: 405–12PubMed
225.
go back to reference Becker R, Awiszus F. Physiological alterations of maximal voluntary quadriceps activation by changes of knee joint angle. Muscle Nerve 2001; 24: 667–72PubMed Becker R, Awiszus F. Physiological alterations of maximal voluntary quadriceps activation by changes of knee joint angle. Muscle Nerve 2001; 24: 667–72PubMed
226.
go back to reference Kubo K, Tsunoda N, Kanehisa H, et al. Activation of agonist and antagonist muscles at different joint angles during maximal isometric efforts. Eur J Appl Physiol 2004; 91: 349–52PubMed Kubo K, Tsunoda N, Kanehisa H, et al. Activation of agonist and antagonist muscles at different joint angles during maximal isometric efforts. Eur J Appl Physiol 2004; 91: 349–52PubMed
227.
go back to reference Babault N, Pousson M, Ballay Y, et al. Activation of human quadriceps femoris during isometric, concentric, and eccentric contractions. J Appl Physiol 2001; 91: 2628–34PubMed Babault N, Pousson M, Ballay Y, et al. Activation of human quadriceps femoris during isometric, concentric, and eccentric contractions. J Appl Physiol 2001; 91: 2628–34PubMed
228.
go back to reference Perrine JJ, Edgerton VR. Muscle force-velocity and power velocity relationships under isokinetic loading. Med Sci Sports 1978; 10: 159–66PubMed Perrine JJ, Edgerton VR. Muscle force-velocity and power velocity relationships under isokinetic loading. Med Sci Sports 1978; 10: 159–66PubMed
229.
go back to reference Caiozzo VJ, Perrine JJ, Edgerton VR. Training-induced alterations of the in vivo force-velocity relationship of human muscleo. J Appl Physiol 1981; 51: 750–4PubMed Caiozzo VJ, Perrine JJ, Edgerton VR. Training-induced alterations of the in vivo force-velocity relationship of human muscleo. J Appl Physiol 1981; 51: 750–4PubMed
230.
go back to reference Newham DJ, McCarthy T, Turner J. Voluntary activation of human quadriceps during and after isokinetic exercise. J Appl Physiol 1991; 71: 2122–6PubMed Newham DJ, McCarthy T, Turner J. Voluntary activation of human quadriceps during and after isokinetic exercise. J Appl Physiol 1991; 71: 2122–6PubMed
231.
go back to reference Gandevia SC, Herbert RD, Leeper JB. Voluntary activation of human elbow flexor muscles during maximal concentric contractions. J Physiol 1998; 512: 595–602PubMed Gandevia SC, Herbert RD, Leeper JB. Voluntary activation of human elbow flexor muscles during maximal concentric contractions. J Physiol 1998; 512: 595–602PubMed
232.
go back to reference Amiridis IG, Martin A, Morlon B, et al. Co-activation and tension-regulating phenomena during isokinetic knee extension in sedentary and highly skilled humans. Eur J Appl Physiol Occup Physiol l996; 73: 149–56 Amiridis IG, Martin A, Morlon B, et al. Co-activation and tension-regulating phenomena during isokinetic knee extension in sedentary and highly skilled humans. Eur J Appl Physiol Occup Physiol l996; 73: 149–56
233.
go back to reference Hortobagyi T, Larillert NJ. Influence of electrical stimulation on dynamic forces of the arm flexors in strength-trained and untrained men. Scand J Med Sci Sports 1992; 2: 70–5 Hortobagyi T, Larillert NJ. Influence of electrical stimulation on dynamic forces of the arm flexors in strength-trained and untrained men. Scand J Med Sci Sports 1992; 2: 70–5
234.
go back to reference Westing SH, Seger JY, Thorstensson A. Effects of electrical stimulation on eccentric and concentric torque-velocity relationships during knee extension in man. Acta Physiol Scand 1990; 140: 17–22PubMed Westing SH, Seger JY, Thorstensson A. Effects of electrical stimulation on eccentric and concentric torque-velocity relationships during knee extension in man. Acta Physiol Scand 1990; 140: 17–22PubMed
235.
go back to reference Hortobagyi T, Hill JP, Houmard JA, et al. Adaptive responses to muscle lengthening and shortening in humans. J Appl Physiol 1996; 80: 765–72PubMed Hortobagyi T, Hill JP, Houmard JA, et al. Adaptive responses to muscle lengthening and shortening in humans. J Appl Physiol 1996; 80: 765–72PubMed
236.
go back to reference Kukulka CG, Clamann HP. Comparison of the recruitment and discharge properties of motor units in human brachial biceps and adductor pollicis during isometric contractions. Brain Res 1981; 219: 45–55PubMed Kukulka CG, Clamann HP. Comparison of the recruitment and discharge properties of motor units in human brachial biceps and adductor pollicis during isometric contractions. Brain Res 1981; 219: 45–55PubMed
237.
go back to reference De Luca CJ, LeFever RS, McCue MP, et al. Behaviour of human motor units in different muscles during linearly varying contractions. J Physiol 1982; 329: 113–28PubMed De Luca CJ, LeFever RS, McCue MP, et al. Behaviour of human motor units in different muscles during linearly varying contractions. J Physiol 1982; 329: 113–28PubMed
238.
go back to reference Solomonow M, Baten C, Smit J, et al. Electromyogram power spectra frequencies associated with motor unit recruitment strategies. J Appl Physiol 1990; 68: 1177–85PubMed Solomonow M, Baten C, Smit J, et al. Electromyogram power spectra frequencies associated with motor unit recruitment strategies. J Appl Physiol 1990; 68: 1177–85PubMed
239.
go back to reference Monster AW, Chan H. Isometric force production by motor units of extensor digitorum communis muscle in man. J Neurophysiol 1977; 40: 1432–43PubMed Monster AW, Chan H. Isometric force production by motor units of extensor digitorum communis muscle in man. J Neurophysiol 1977; 40: 1432–43PubMed
240.
go back to reference Bellemare F, Woods JJ, Johansson R, et al. Motor-unit discharge rates in maximal voluntary contractions of three human muscles. J Neurophysiol 1983; 50: 1380–92PubMed Bellemare F, Woods JJ, Johansson R, et al. Motor-unit discharge rates in maximal voluntary contractions of three human muscles. J Neurophysiol 1983; 50: 1380–92PubMed
241.
go back to reference Thomas CK, Bigland-Richie B, Johansson RS. Force-frequency relationships of human thenar motor units. J Neurophysiol 1991; 65: 1509–16PubMed Thomas CK, Bigland-Richie B, Johansson RS. Force-frequency relationships of human thenar motor units. J Neurophysiol 1991; 65: 1509–16PubMed
242.
go back to reference Macefield VG, Fuglevand AJ, Bigland-Ritchie B. Contractile properties of single motor units in human toe extensors assessed by intraneural motor axon stimulation. J Neurophysiol 1996; 75: 2509–19PubMed Macefield VG, Fuglevand AJ, Bigland-Ritchie B. Contractile properties of single motor units in human toe extensors assessed by intraneural motor axon stimulation. J Neurophysiol 1996; 75: 2509–19PubMed
243.
go back to reference Binder-Macleod SA, Barker CB. Use of a catch-like property of human skeletal muscle to reduce fatigue. Muscle Nerve 1991;14: 850–7PubMed Binder-Macleod SA, Barker CB. Use of a catch-like property of human skeletal muscle to reduce fatigue. Muscle Nerve 1991;14: 850–7PubMed
244.
go back to reference Duchateau J, Hainaut K. Nonlinear summation of contractions in striated muscle: I. Twitch potentiation in human muscle. J Muscle Res Cell Motil 1986; 7: 11–7PubMed Duchateau J, Hainaut K. Nonlinear summation of contractions in striated muscle: I. Twitch potentiation in human muscle. J Muscle Res Cell Motil 1986; 7: 11–7PubMed
245.
go back to reference Leong B, Kamen G, Patten C, et al. Maximal motor unit discharge rates in the quadriceps muscles of older weight lifters. Med Sci Sports Exerc 1999; 31: 1638–44PubMed Leong B, Kamen G, Patten C, et al. Maximal motor unit discharge rates in the quadriceps muscles of older weight lifters. Med Sci Sports Exerc 1999; 31: 1638–44PubMed
246.
go back to reference Milner-Brown HS, Stein RB, Lee RG. Synchronization of human motor units: possible roles of exercise and supra spinal reflexes. Electro encephalogr Clin Neurophysiol 1975; 38:245–54 Milner-Brown HS, Stein RB, Lee RG. Synchronization of human motor units: possible roles of exercise and supra spinal reflexes. Electro encephalogr Clin Neurophysiol 1975; 38:245–54
247.
go back to reference Semmler JG, Nordstrom MA. Motor unit discharge and force tremor in skill- and strength-trained individuals. Exp Brain Res 1998; 119: 27–38PubMed Semmler JG, Nordstrom MA. Motor unit discharge and force tremor in skill- and strength-trained individuals. Exp Brain Res 1998; 119: 27–38PubMed
248.
go back to reference Rack PM, Westbury DR. The effects of length and stimulus rate on tension in the isometric cat soleus muscle. J Physiol 1969;204: 443–60PubMed Rack PM, Westbury DR. The effects of length and stimulus rate on tension in the isometric cat soleus muscle. J Physiol 1969;204: 443–60PubMed
249.
go back to reference Lind AR, Petrofsky JS. Isometric tension from rotary stimulation of fast and slow cat muscles. Muscle Nerve 1978; 1: 213–8PubMed Lind AR, Petrofsky JS. Isometric tension from rotary stimulation of fast and slow cat muscles. Muscle Nerve 1978; 1: 213–8PubMed
250.
go back to reference Perez MA, Lungholt BK, Nyborg K, et al. Motor skill training induces changes in the excitability of the leg cortical area in healthy humans. Exp Brain Res 2004; 159: 197–205PubMed Perez MA, Lungholt BK, Nyborg K, et al. Motor skill training induces changes in the excitability of the leg cortical area in healthy humans. Exp Brain Res 2004; 159: 197–205PubMed
251.
go back to reference Pascual-Leone A, Nguyet D, Cohen LG, et al. Modulation of muscle responses evoked by transcranial magnetic stimulation during the acquisition of new fine motor skills. J Neurophysiol 1995; 74: 1037–45PubMed Pascual-Leone A, Nguyet D, Cohen LG, et al. Modulation of muscle responses evoked by transcranial magnetic stimulation during the acquisition of new fine motor skills. J Neurophysiol 1995; 74: 1037–45PubMed
252.
go back to reference Lotze M, Braun C, Birbaumer N, et al. Motor learning elicited by voluntary drive. Brain 2003; 126: 866–72PubMed Lotze M, Braun C, Birbaumer N, et al. Motor learning elicited by voluntary drive. Brain 2003; 126: 866–72PubMed
253.
go back to reference Karni A, Meyer G, Jezzard P, et al. Functional MRI evidence for adult motor cortex plasticity during motor skill learning. Nature 1995; 377: 155–8PubMed Karni A, Meyer G, Jezzard P, et al. Functional MRI evidence for adult motor cortex plasticity during motor skill learning. Nature 1995; 377: 155–8PubMed
254.
go back to reference Hund-Georgiadis M, von Cramon DY. Motor-learning-related changes in piano players and non-musicians revealed by functional magnetic-resonance signals. Exp Brain Res 1999; 125:417–25PubMed Hund-Georgiadis M, von Cramon DY. Motor-learning-related changes in piano players and non-musicians revealed by functional magnetic-resonance signals. Exp Brain Res 1999; 125:417–25PubMed
255.
go back to reference Elbert T, Pantev C, Wienbruch C, et al. Increased cortical representation of the fingers of the left hand in string players. Science 1995; 270: 305–7PubMed Elbert T, Pantev C, Wienbruch C, et al. Increased cortical representation of the fingers of the left hand in string players. Science 1995; 270: 305–7PubMed
256.
go back to reference Classen J, Liepert J, Wise SP, et al. Rapid plasticity of human cortical movement representation induced by practice. J Neurophysiol 1998; 79: 1117–23PubMed Classen J, Liepert J, Wise SP, et al. Rapid plasticity of human cortical movement representation induced by practice. J Neurophysiol 1998; 79: 1117–23PubMed
257.
go back to reference Classen J, Liepert J, Hallett M, et al. Plasticity of movement representation in the human motor cortex. Electroencephalogr Clin Neurophysiol Suppl 1999; 51: 162–73PubMed Classen J, Liepert J, Hallett M, et al. Plasticity of movement representation in the human motor cortex. Electroencephalogr Clin Neurophysiol Suppl 1999; 51: 162–73PubMed
258.
go back to reference Carroll TJ, Riek S, Carson RG. The sites of neural adaptation induced by resistance training in humans. J Physiol 2002; 544:641–52PubMed Carroll TJ, Riek S, Carson RG. The sites of neural adaptation induced by resistance training in humans. J Physiol 2002; 544:641–52PubMed
259.
go back to reference Jensen JL, Marstrand PC, Nielsen JB. Motor skill training and strength training are associated with different plastic changes in the central nervous system. J Appl Physiol 2005; 99:1558–68PubMed Jensen JL, Marstrand PC, Nielsen JB. Motor skill training and strength training are associated with different plastic changes in the central nervous system. J Appl Physiol 2005; 99:1558–68PubMed
260.
go back to reference Hallett M, Berardelli A, Delwaide P, et al. Central EMG and tests of motor control: report of an IFCN committee. Electroencephalogr Clin Neurophysiol 1994; 90: 404–32PubMed Hallett M, Berardelli A, Delwaide P, et al. Central EMG and tests of motor control: report of an IFCN committee. Electroencephalogr Clin Neurophysiol 1994; 90: 404–32PubMed
261.
go back to reference Aagaard P, Simonsen EB, Andersen JL, et al. Neural adaptation to resistance training: changes in evoked V-wave and H-reflex responses. J Appl Physiol 2002; 92: 2309–18PubMed Aagaard P, Simonsen EB, Andersen JL, et al. Neural adaptation to resistance training: changes in evoked V-wave and H-reflex responses. J Appl Physiol 2002; 92: 2309–18PubMed
262.
go back to reference Sale D, McComas A, MacDougall J, et al. Neuromuscular adaptation in human thenar muscles following strength training and immobilization. J Appl Physiol 1982; 53: 419–24PubMed Sale D, McComas A, MacDougall J, et al. Neuromuscular adaptation in human thenar muscles following strength training and immobilization. J Appl Physiol 1982; 53: 419–24PubMed
263.
go back to reference Enoka RM. Neuromechanics of human movement. 3rd 00. Champaign (IL): Human Kinetics, 2002 Enoka RM. Neuromechanics of human movement. 3rd 00. Champaign (IL): Human Kinetics, 2002
264.
go back to reference Karst GM, Hasan Z. Antagonist muscle activity during human forearm movements under varying kinematic and loading conditions. Exp Brain Res 1987; 67: 391–401PubMed Karst GM, Hasan Z. Antagonist muscle activity during human forearm movements under varying kinematic and loading conditions. Exp Brain Res 1987; 67: 391–401PubMed
265.
go back to reference Baratta R, Solomonow M, Zhou BH, et al. Muscular coactivalion: the role of the antagonist musculaturein maintaining knee stability. Am J Sports Med 1988; 16: 113–22PubMed Baratta R, Solomonow M, Zhou BH, et al. Muscular coactivalion: the role of the antagonist musculaturein maintaining knee stability. Am J Sports Med 1988; 16: 113–22PubMed
266.
go back to reference Osternig LR, Hamill J, Lander JE, et al. Co-activation of sprinter and distance runner muscles in isokinetic exercise. Med Sci Sports Exerc 1986; 18: 431–5PubMed Osternig LR, Hamill J, Lander JE, et al. Co-activation of sprinter and distance runner muscles in isokinetic exercise. Med Sci Sports Exerc 1986; 18: 431–5PubMed
267.
go back to reference Carolan B, Cafarelli E. Adaptations in coactivation after isometric resistance training. J Appl Physiol 1992; 73: 911–7PubMed Carolan B, Cafarelli E. Adaptations in coactivation after isometric resistance training. J Appl Physiol 1992; 73: 911–7PubMed
268.
go back to reference Hiikkinen K, Kallinen M, Izquierdo M, et al. Changes in agonist- antagonist EMG, muscle CSA, and force during strength training in middle-aged and older people. J Appl Physiol 1998;84: 1341–9 Hiikkinen K, Kallinen M, Izquierdo M, et al. Changes in agonist- antagonist EMG, muscle CSA, and force during strength training in middle-aged and older people. J Appl Physiol 1998;84: 1341–9
Metadata
Title
Morphological and Neurological Contributions to Increased Strength
Authors
Dr Jonathan P. Folland
Alun G. Williams
Publication date
01-02-2007
Publisher
Springer International Publishing
Published in
Sports Medicine / Issue 2/2007
Print ISSN: 0112-1642
Electronic ISSN: 1179-2035
DOI
https://doi.org/10.2165/00007256-200737020-00004

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