Skip to main content
Top
Published in: Sports Medicine 9/2012

01-09-2012 | Review Article

Unique Aspects of Competitive Weightlifting

Performance, Training and Physiology

Authors: Adam Storey, Heather K. Smith

Published in: Sports Medicine | Issue 9/2012

Login to get access

Abstract

Weightlifting is a dynamic strength and power sport in which two, multijoint, whole-body lifts are performed in competition; the snatch and clean and jerk. During the performance of these lifts, weightlifters have achieved some of the highest absolute and relative peak power outputs reported in the literature. The training structure of competitive weightlifters is characterized by the frequent use of high-intensity resistance exercise movements. Varied coaching and training philosophies currently exist around the world and further research is required to substantiate the best type of training programme for male and female weightlifters of various age groups. As competitive weightlifting is contested over eight male and seven female body weight categories, the anthropometric characteristics of the athletes widely ranges. The body compositions of weightlifters are similar to that of athletes of comparable body mass in other strength and power sports. However, the shorter height and limb lengths of weightlifters provide mechanical advantages when lifting heavy loads by reducing the mechanical torque and the vertical distance that the barbell must be displaced. Furthermore, the shorter body dimensions coincide with a greater mean skeletal muscle cross-sectional area that is advantageous to weightlifting performance. Weightlifting training induces a high metabolic cost. Although dietary records demonstrate that weightlifters typically meet their required daily energy intake, weightlifters have been shown to over consume protein and fat at the expense of adequate carbohydrate. The resulting macronutrient imbalance may not yield optimal performance gains. Cross-sectional data suggest that weightlifting training induces type IIX to IIA fibre-type transformation. Furthermore, weightlifters exhibit hypertrophy of type II fibres that is advantageous to weightlifting performance and maximal force production. As such, the isometric peak force and contractile rate of force development of weightlifters is ~15–20% and ~13–16% greater, respectively, than in other strength and power athletes. In addition, weightlifting training has been shown to reduce the typical sex-related difference in the expression of neuromuscular strength and power. However, this apparent sex-related difference appears to be augmented with increasing adult age demonstrating that women undergo a greater age-related decline in muscle shortening velocity and peak power when compared with men. Weightlifting training and competition has been shown to induce significant structural and functional adaptations of the cardiovascular system. The collective evidence shows that these adaptations are physiological as opposed to pathological. Finally, the acute exercise-induced testosterone, cortisol and growth hormone responses of weightlifters have similarities to that of following conventional strength and hypertrophy protocols involving large muscle mass exercises. The routine assessment of the basal testosterone: cortisol ratio may be beneficial when attempting to quantify the adaptive responses to weightlifting training. As competitive weightlifting is becoming increasingly popular around the world, further research addressing the physiological responses and adaptations of female weightlifters and younger (i.e. ≤17 years of age) and older (i.e. ≥35 years of age) weightlifters of both sexes is required.
Literature
1.
go back to reference Garhammer J. Power production by Olympic weightlifters. Med Sci Sports Exerc 1980; 12 (1): 54–60PubMed Garhammer J. Power production by Olympic weightlifters. Med Sci Sports Exerc 1980; 12 (1): 54–60PubMed
2.
go back to reference Garhammer J. Energy flow during Olympic weightlifting. Med Sci Sports Exerc 1982; 14 (5): 353–60PubMed Garhammer J. Energy flow during Olympic weightlifting. Med Sci Sports Exerc 1982; 14 (5): 353–60PubMed
3.
go back to reference Garhammer J. Biomechanical profiles of Olympic weightlifters. Int J Sport Biomech 1985; 1: 122–30 Garhammer J. Biomechanical profiles of Olympic weightlifters. Int J Sport Biomech 1985; 1: 122–30
4.
go back to reference Garhammer J. A comparison of maximal power outputs between elite male and female weightlifters in competition. Int J Sport Biomech 1991; 7: 3–11 Garhammer J. A comparison of maximal power outputs between elite male and female weightlifters in competition. Int J Sport Biomech 1991; 7: 3–11
5.
go back to reference Garhammer J. A review of power output studies of olympic and powerlifting: methodology, performance prediction, and evaluation tests. J Strength Cond Res 1993; 7 (2): 76–89 Garhammer J. A review of power output studies of olympic and powerlifting: methodology, performance prediction, and evaluation tests. J Strength Cond Res 1993; 7 (2): 76–89
6.
go back to reference Storey A, Wong S, Smith H, et al. Divergent muscle functional and architectural responses to two successive high intensity resistance exercise sessions in competitive weightlifters and resistance trained adults. Eur J Appl Physiol. Epub 2012 Feb 16 Storey A, Wong S, Smith H, et al. Divergent muscle functional and architectural responses to two successive high intensity resistance exercise sessions in competitive weightlifters and resistance trained adults. Eur J Appl Physiol. Epub 2012 Feb 16
7.
go back to reference Garhammer J. Weight lifting and training. In: Vaughan CL, editor. Biomechanics of Sport. Boca Raton (FL): CRS Press, 1989: 169–211 Garhammer J. Weight lifting and training. In: Vaughan CL, editor. Biomechanics of Sport. Boca Raton (FL): CRS Press, 1989: 169–211
8.
go back to reference Enoka RM. The pull in Olympic weightlifting. Med Sci Sports 1979; 11 (2): 131–7PubMed Enoka RM. The pull in Olympic weightlifting. Med Sci Sports 1979; 11 (2): 131–7PubMed
9.
go back to reference Enoka RM. Load- and skill-related changes in segmental contributions to a weightlifting movement. Med Sci Sports Exerc 1988; 20 (2): 178–87CrossRefPubMed Enoka RM. Load- and skill-related changes in segmental contributions to a weightlifting movement. Med Sci Sports Exerc 1988; 20 (2): 178–87CrossRefPubMed
10.
go back to reference Stone MH, Pierce KC, Sands WA, et al. Weightlifting: a brief overview. Strength Cond J 2006; 28 (1): 50–66 Stone MH, Pierce KC, Sands WA, et al. Weightlifting: a brief overview. Strength Cond J 2006; 28 (1): 50–66
11.
go back to reference Akkus H. Kinematic analysis of the snatch lift with elite female weightlifters during the 2010 World Weightlifting Championship. J Strength Cond Res 2012; 26 (4): 897–905CrossRefPubMed Akkus H. Kinematic analysis of the snatch lift with elite female weightlifters during the 2010 World Weightlifting Championship. J Strength Cond Res 2012; 26 (4): 897–905CrossRefPubMed
12.
go back to reference Campos J, Poletaev P, Cuesta A, et al. Kinematical analysis of the snatch in elite male junior weightlifters of different weight categories. J Strength Cond Res 2006; 20 (4): 843–50PubMed Campos J, Poletaev P, Cuesta A, et al. Kinematical analysis of the snatch in elite male junior weightlifters of different weight categories. J Strength Cond Res 2006; 20 (4): 843–50PubMed
13.
go back to reference Chiu HT, Wang CH, Cheng KB. The three-dimensional kinematics of a barbell during the snatch of Taiwanese weightlifters. J Strength Cond Res 2010; 24 (6): 1520–6CrossRefPubMed Chiu HT, Wang CH, Cheng KB. The three-dimensional kinematics of a barbell during the snatch of Taiwanese weightlifters. J Strength Cond Res 2010; 24 (6): 1520–6CrossRefPubMed
14.
go back to reference Gourgoulis V, Aggelousis N, Mavromatis G, et al. Threedimensional kinematic analysis of the snatch of elite Greek weightlifters. J Sports Sci 2000; 18 (8): 643–52CrossRefPubMed Gourgoulis V, Aggelousis N, Mavromatis G, et al. Threedimensional kinematic analysis of the snatch of elite Greek weightlifters. J Sports Sci 2000; 18 (8): 643–52CrossRefPubMed
15.
go back to reference Gourgoulis V, Aggeloussis N, Antoniou P, et al. Comparative 3-dimensional kinematic analysis of the snatch technique in elite male and female Greek weightlifters. J Strength Cond Res 2002; 16 (3): 359–66PubMed Gourgoulis V, Aggeloussis N, Antoniou P, et al. Comparative 3-dimensional kinematic analysis of the snatch technique in elite male and female Greek weightlifters. J Strength Cond Res 2002; 16 (3): 359–66PubMed
16.
go back to reference Hoover D, Carlson K, Christensen B, et al. Biomechanical analysis of women weightlifters during the snatch. J Strength Cond Res 2006; 20 (3): 627–33PubMed Hoover D, Carlson K, Christensen B, et al. Biomechanical analysis of women weightlifters during the snatch. J Strength Cond Res 2006; 20 (3): 627–33PubMed
17.
go back to reference Häkkinen K, Kauhanen H, Komi P. Biomechanical changes in the Olympic weightlifting technique of the snatch and clean and jerk from submaximal to maximal loads. Scand J Sports Sci 1984; 6: 57–66 Häkkinen K, Kauhanen H, Komi P. Biomechanical changes in the Olympic weightlifting technique of the snatch and clean and jerk from submaximal to maximal loads. Scand J Sports Sci 1984; 6: 57–66
18.
go back to reference Winchester JB, Porter JM, McBride JM. Changes in bar path kinematics and kinetics through use of summary feedback in power snatch training. J Strength Cond Res 2009; 23 (2): 444–54CrossRefPubMed Winchester JB, Porter JM, McBride JM. Changes in bar path kinematics and kinetics through use of summary feedback in power snatch training. J Strength Cond Res 2009; 23 (2): 444–54CrossRefPubMed
19.
go back to reference Cormie P, McCaulley G, Triplett N, et al. Optimal loading for maximal power output during lower-body resistance exercises. Med Sci Sports Exerc 2007; 39 (2): 340–9CrossRefPubMed Cormie P, McCaulley G, Triplett N, et al. Optimal loading for maximal power output during lower-body resistance exercises. Med Sci Sports Exerc 2007; 39 (2): 340–9CrossRefPubMed
20.
go back to reference Winchester JB, Erickson TM, Blaak JB, et al. Changes in bar-path kinematics and kinetics after power-clean training. J Strength Cond Res 2005; 19 (1): 177–83PubMed Winchester JB, Erickson TM, Blaak JB, et al. Changes in bar-path kinematics and kinetics after power-clean training. J Strength Cond Res 2005; 19 (1): 177–83PubMed
21.
go back to reference Drechsler AJ. The weightlifting encyclopedia: a guide to world class performance. Whitestone (NY): A is A Communications, 1998 Drechsler AJ. The weightlifting encyclopedia: a guide to world class performance. Whitestone (NY): A is A Communications, 1998
22.
go back to reference Zernicke RF, Garhammer J, Jobe FW. Human patellartendon rupture. J Bone Joint Surg Am 1977; 59 (2): 179–83PubMed Zernicke RF, Garhammer J, Jobe FW. Human patellartendon rupture. J Bone Joint Surg Am 1977; 59 (2): 179–83PubMed
23.
go back to reference González-Badillo JJ, Izquierdo M, Gorostiaga EM. Moderate volume of high relative training intensity produces greater strength gains compared with low and high volumes in competitive weightlifters. J Strength Cond Res 2006; 20 (1): 73–81PubMed González-Badillo JJ, Izquierdo M, Gorostiaga EM. Moderate volume of high relative training intensity produces greater strength gains compared with low and high volumes in competitive weightlifters. J Strength Cond Res 2006; 20 (1): 73–81PubMed
24.
go back to reference Hoffman JR, Cooper J, Wendell M, et al. Comparison of Olympic vs. traditional power lifting training programs in football players. J Strength Cond Res 2004; 18 (1): 129–35PubMed Hoffman JR, Cooper J, Wendell M, et al. Comparison of Olympic vs. traditional power lifting training programs in football players. J Strength Cond Res 2004; 18 (1): 129–35PubMed
25.
go back to reference Poletaev P, Cervera V, Coach W. The Russian approach to planning a weightlifting program. Strength Cond 1995; 17 (1): 20–6CrossRef Poletaev P, Cervera V, Coach W. The Russian approach to planning a weightlifting program. Strength Cond 1995; 17 (1): 20–6CrossRef
26.
go back to reference Stone MH, Pierce KC, Sands WA, et al. Weightlifting: program design. Strength Cond J 2006; 28 (2): 10–7 Stone MH, Pierce KC, Sands WA, et al. Weightlifting: program design. Strength Cond J 2006; 28 (2): 10–7
27.
go back to reference Garhammer J, Takano B. Training for weightlifting. In: Komi PV, editor. Strength and power in sport. 2nd ed. Oxford: Blackwell Science, 2003: 502–15CrossRef Garhammer J, Takano B. Training for weightlifting. In: Komi PV, editor. Strength and power in sport. 2nd ed. Oxford: Blackwell Science, 2003: 502–15CrossRef
28.
go back to reference Thrush JT. A simplified approach to program design for elite Junior weightlifters. Strength Cond 1995; 17 (1): 16–8CrossRef Thrush JT. A simplified approach to program design for elite Junior weightlifters. Strength Cond 1995; 17 (1): 16–8CrossRef
29.
go back to reference Ebben W, Blackard D. Strength and conditioning practices of National Football League strength and conditioning coaches. J Strength Cond Res 2001; 15 (1): 48–58PubMed Ebben W, Blackard D. Strength and conditioning practices of National Football League strength and conditioning coaches. J Strength Cond Res 2001; 15 (1): 48–58PubMed
30.
go back to reference Kilduff L, Bevan H, Owen N, et al. Optimal loading for peak power output during the hang power clean in professional rugby players. Int J Sports Physiol Perform 2007; 2 (3): 260–9PubMed Kilduff L, Bevan H, Owen N, et al. Optimal loading for peak power output during the hang power clean in professional rugby players. Int J Sports Physiol Perform 2007; 2 (3): 260–9PubMed
31.
go back to reference Simenz CJ, Dugan CA, Ebben WP. Strength and conditioning practices of National Basketball Association strength and conditioning coaches. J Strength Cond Res 2005; 19 (3): 495–504PubMed Simenz CJ, Dugan CA, Ebben WP. Strength and conditioning practices of National Basketball Association strength and conditioning coaches. J Strength Cond Res 2005; 19 (3): 495–504PubMed
32.
go back to reference Canavan PK, Garrett GE, Armstrong LE. Kinematic and kinetic relationships between an Olympic-style lift and the vertical jump. J Strength Cond Res 1996; 10 (2): 127–30 Canavan PK, Garrett GE, Armstrong LE. Kinematic and kinetic relationships between an Olympic-style lift and the vertical jump. J Strength Cond Res 1996; 10 (2): 127–30
33.
go back to reference Carlock JM, Smith SL, Hartman MJ, et al. The relationship between vertical jump power estimates and weightlifting ability: a field-test approach. J Strength Cond Res 2004; 18 (3): 534–9PubMed Carlock JM, Smith SL, Hartman MJ, et al. The relationship between vertical jump power estimates and weightlifting ability: a field-test approach. J Strength Cond Res 2004; 18 (3): 534–9PubMed
34.
go back to reference Cormie P, McGuigan MR, Newton RU. Developing maximal neuromuscular power. Part 1: biological basis of maximal power production. Sports Med 2011; 41 (1): 17–38CrossRefPubMed Cormie P, McGuigan MR, Newton RU. Developing maximal neuromuscular power. Part 1: biological basis of maximal power production. Sports Med 2011; 41 (1): 17–38CrossRefPubMed
35.
go back to reference Cormie P, McGuigan MR, Newton RU. Developing maximal neuromuscular power. Part 2: training considerations for improving maximal power production. Sports Med 2011; 41 (2): 125–46CrossRefPubMed Cormie P, McGuigan MR, Newton RU. Developing maximal neuromuscular power. Part 2: training considerations for improving maximal power production. Sports Med 2011; 41 (2): 125–46CrossRefPubMed
36.
go back to reference Garhammer J, Gregor R. Propulsion forces as a function of intensity for weightlifting and vertical jumping. J Appl Sports Sci Res 1992; 6 (3): 129–34 Garhammer J, Gregor R. Propulsion forces as a function of intensity for weightlifting and vertical jumping. J Appl Sports Sci Res 1992; 6 (3): 129–34
37.
go back to reference Hori N, Newton RU, Andrews WA, et al. Does performance of hang power clean differentiate performance of jumping, sprinting, and changing of direction? J Strength Cond Res 2008; 22 (2): 412–8CrossRefPubMed Hori N, Newton RU, Andrews WA, et al. Does performance of hang power clean differentiate performance of jumping, sprinting, and changing of direction? J Strength Cond Res 2008; 22 (2): 412–8CrossRefPubMed
38.
go back to reference Baker D, Nance S. The relation between running speed and measures of strength and power in professional rugby league players. J Strength Cond Res 1999; 13 (3): 230–5 Baker D, Nance S. The relation between running speed and measures of strength and power in professional rugby league players. J Strength Cond Res 1999; 13 (3): 230–5
39.
go back to reference Channell BT, Barfield JP. Effect of Olympic and traditional resistance training on vertical jump improvement in high school boys. J Strength Cond Res 2008; 22: 1522–7CrossRefPubMed Channell BT, Barfield JP. Effect of Olympic and traditional resistance training on vertical jump improvement in high school boys. J Strength Cond Res 2008; 22: 1522–7CrossRefPubMed
40.
go back to reference Tricoli V, Lamas L, Carnevale R, et al. Short-term effects on lower-body functional power development: weightlifting vs. vertical jump training programs. J Strength Cond Res 2005; 19 (2): 433–7PubMed Tricoli V, Lamas L, Carnevale R, et al. Short-term effects on lower-body functional power development: weightlifting vs. vertical jump training programs. J Strength Cond Res 2005; 19 (2): 433–7PubMed
41.
go back to reference Pistilli EE, Kaminsky DE, Totten LM, et al. Incorporating one week of planned overreaching into the training program of weightlifters. Strength Cond J 2008; 30 (6): 39–44CrossRef Pistilli EE, Kaminsky DE, Totten LM, et al. Incorporating one week of planned overreaching into the training program of weightlifters. Strength Cond J 2008; 30 (6): 39–44CrossRef
42.
go back to reference Fair JD. Olympic weightlifting and the introduction of steroids: a statistical analysis of world championship results, 1948–72. Int J Hist Sport 1988; 5 (1): 96–114CrossRef Fair JD. Olympic weightlifting and the introduction of steroids: a statistical analysis of world championship results, 1948–72. Int J Hist Sport 1988; 5 (1): 96–114CrossRef
43.
go back to reference Franke W, Berendonk B. Hormonal doping and androgenization of athletes: a secret program of the German Democratic Republic government. Clin Chem 1997; 43 (7): 1262–79PubMed Franke W, Berendonk B. Hormonal doping and androgenization of athletes: a secret program of the German Democratic Republic government. Clin Chem 1997; 43 (7): 1262–79PubMed
44.
go back to reference Zatsiorsky VM. International perspective: intensity of strength training facts and theory. Russian and Eastern European approach. Strength Cond J 1992; 14 (5): 46–57CrossRef Zatsiorsky VM. International perspective: intensity of strength training facts and theory. Russian and Eastern European approach. Strength Cond J 1992; 14 (5): 46–57CrossRef
45.
go back to reference Takano B. Bulgarian training program: the 1989 NSCA Bulgaria-USSR study tour-the organization of the Bulgarian national weightlifting program. Strength Cond J 1989; 11 (5): 38–9CrossRef Takano B. Bulgarian training program: the 1989 NSCA Bulgaria-USSR study tour-the organization of the Bulgarian national weightlifting program. Strength Cond J 1989; 11 (5): 38–9CrossRef
46.
go back to reference Zatsiorsky VM. Science and practice of strength training. Champaign (IL): Human Kinetics, 1995 Zatsiorsky VM. Science and practice of strength training. Champaign (IL): Human Kinetics, 1995
47.
go back to reference Wilson JM, Wilson GJ. A practical approach to the taper. Strength Cond J 2008; 30 (2): 10–7CrossRef Wilson JM, Wilson GJ. A practical approach to the taper. Strength Cond J 2008; 30 (2): 10–7CrossRef
48.
go back to reference Häkkinen K, Kallinen M. Distribution of strength training volume into one or two daily sessions and neuromuscular adaptations in female athletes. Electromyogr Clin Neurophysiol 1994; 34 (2): 117–24PubMed Häkkinen K, Kallinen M. Distribution of strength training volume into one or two daily sessions and neuromuscular adaptations in female athletes. Electromyogr Clin Neurophysiol 1994; 34 (2): 117–24PubMed
49.
go back to reference Hartman MJ, Clark B, Bembens DA, et al. Comparisons between twice-daily and once-daily training sessions in male weight lifters. Int J Sports Physiol Perform 2007; 2 (2): 159–69PubMed Hartman MJ, Clark B, Bembens DA, et al. Comparisons between twice-daily and once-daily training sessions in male weight lifters. Int J Sports Physiol Perform 2007; 2 (2): 159–69PubMed
50.
go back to reference Kraemer WJ, Ratamess NA. Fundamentals of resistance training: progression and exercise prescription. Med Sci Sports Exerc 2004; 36 (4): 674–88CrossRefPubMed Kraemer WJ, Ratamess NA. Fundamentals of resistance training: progression and exercise prescription. Med Sci Sports Exerc 2004; 36 (4): 674–88CrossRefPubMed
51.
go back to reference Ratamess NA, Alvar BA, Evetoch TK, et al. Progression models in resistance training for healthy adults-Special communication. Med Sci Sports Exerc 2009; 41 (3): 687–708CrossRef Ratamess NA, Alvar BA, Evetoch TK, et al. Progression models in resistance training for healthy adults-Special communication. Med Sci Sports Exerc 2009; 41 (3): 687–708CrossRef
52.
go back to reference Coffey VG, Reeder DW, Lancaster GI, et al. Effect of high-frequency resistance exercise on adaptive responses in skeletal muscle. Med Sci Sports Exerc 2007; 39 (12): 2135–44CrossRefPubMed Coffey VG, Reeder DW, Lancaster GI, et al. Effect of high-frequency resistance exercise on adaptive responses in skeletal muscle. Med Sci Sports Exerc 2007; 39 (12): 2135–44CrossRefPubMed
53.
go back to reference Fry AC, Kraemer WJ, Borselen FVAN, et al. Performance decrements with high-intensity resistance exercise overtraining. Med Sci Sports Exerc 1994; 26 (9): 1165–73PubMed Fry AC, Kraemer WJ, Borselen FVAN, et al. Performance decrements with high-intensity resistance exercise overtraining. Med Sci Sports Exerc 1994; 26 (9): 1165–73PubMed
54.
go back to reference Fry AC, Kraemer WJ, Van Borselen F, et al. Catecholamine responses to short-term high-intensity resistance exercise overtraining. J Appl Physiol 1994b; 77 (2): 941–6PubMed Fry AC, Kraemer WJ, Van Borselen F, et al. Catecholamine responses to short-term high-intensity resistance exercise overtraining. J Appl Physiol 1994b; 77 (2): 941–6PubMed
55.
go back to reference Fry AC, Schilling BK, Weiss LW, et al. beta2-Adrenergic receptor downregulation and performance decrements during high-intensity resistance exercise overtraining. J Appl Physiol 2006; 101 (6): 1664–72CrossRefPubMed Fry AC, Schilling BK, Weiss LW, et al. beta2-Adrenergic receptor downregulation and performance decrements during high-intensity resistance exercise overtraining. J Appl Physiol 2006; 101 (6): 1664–72CrossRefPubMed
56.
go back to reference Ratamess N, Kraemer W, Volek J, et al. The effects of amino acid supplementation on muscular performance during resistance training overreaching. J Strength Cond Res 2003; 17 (2): 250–8PubMed Ratamess N, Kraemer W, Volek J, et al. The effects of amino acid supplementation on muscular performance during resistance training overreaching. J Strength Cond Res 2003; 17 (2): 250–8PubMed
57.
go back to reference Crewther B, Christian C. Relationships between salivary testosterone and cortisol concentrations and training performance in Olympic weightlifters. J Sports Med Phys Fitness 2010a; 50 (3): 371–5PubMed Crewther B, Christian C. Relationships between salivary testosterone and cortisol concentrations and training performance in Olympic weightlifters. J Sports Med Phys Fitness 2010a; 50 (3): 371–5PubMed
58.
go back to reference Crewther B, Heke T, Keogh J. The effects of training volume and competition on the salivary cortisol concentrations of Olympic weightlifters. J Strength Cond Res 2011; 25 (1): 10–5CrossRefPubMed Crewther B, Heke T, Keogh J. The effects of training volume and competition on the salivary cortisol concentrations of Olympic weightlifters. J Strength Cond Res 2011; 25 (1): 10–5CrossRefPubMed
59.
go back to reference Fry AC, Kraemer WJ, Stone MH, et al. Endocrine responses to overreaching before and after 1 year of weightlifting. Can J Appl Physiol 1994; 19 (4): 400–10CrossRefPubMed Fry AC, Kraemer WJ, Stone MH, et al. Endocrine responses to overreaching before and after 1 year of weightlifting. Can J Appl Physiol 1994; 19 (4): 400–10CrossRefPubMed
60.
go back to reference Häkkinen K, Pakarinen A, Alén M, et al. Neuromuscular and hormonal adaptations in athletes to strength training in two years. J Appl Physiol 1988a; 65 (6): 2406–12PubMed Häkkinen K, Pakarinen A, Alén M, et al. Neuromuscular and hormonal adaptations in athletes to strength training in two years. J Appl Physiol 1988a; 65 (6): 2406–12PubMed
61.
go back to reference Byrd R, Pierce K, Rielly L, et al. Young weightlifters’ performance across time. Sports Biomech 2003; 2 (1): 133–40CrossRefPubMed Byrd R, Pierce K, Rielly L, et al. Young weightlifters’ performance across time. Sports Biomech 2003; 2 (1): 133–40CrossRefPubMed
62.
go back to reference Faigenbaum AD, Polakowski C. Olympic-style weightlifting, kid style. Strength Cond J 1999; 21 (3): 73–6CrossRef Faigenbaum AD, Polakowski C. Olympic-style weightlifting, kid style. Strength Cond J 1999; 21 (3): 73–6CrossRef
63.
go back to reference Hamill BP. Relative safety of weightlifting and weight training. J Strength Cond Res 1994; 8 (1): 53–7 Hamill BP. Relative safety of weightlifting and weight training. J Strength Cond Res 1994; 8 (1): 53–7
64.
go back to reference Siahkouhian M, Kordi H. The effects of training volume on the performance of young elite weightlifters. J Hum Kinet 2010; 26 (1): 137–45 Siahkouhian M, Kordi H. The effects of training volume on the performance of young elite weightlifters. J Hum Kinet 2010; 26 (1): 137–45
65.
go back to reference Pearson SJ, Young A, Macaluso A, et al. Muscle function in elite master weightlifters. Med Sci Sports Exerc 2002; 34 (7): 1199–206CrossRefPubMed Pearson SJ, Young A, Macaluso A, et al. Muscle function in elite master weightlifters. Med Sci Sports Exerc 2002; 34 (7): 1199–206CrossRefPubMed
66.
go back to reference Meltzer DE. Age dependence of Olympic weightlifting ability. Med Sci Sports Exerc 1994; 26 (8): 1053–67PubMed Meltzer DE. Age dependence of Olympic weightlifting ability. Med Sci Sports Exerc 1994; 26 (8): 1053–67PubMed
67.
go back to reference Thé DJ, Ploutz-Snyder L. Age, body mass, and gender as predictors of masters olympic weightlifting performance. Med Sci Sports Exerc 2003; 35 (7): 1216–24CrossRefPubMed Thé DJ, Ploutz-Snyder L. Age, body mass, and gender as predictors of masters olympic weightlifting performance. Med Sci Sports Exerc 2003; 35 (7): 1216–24CrossRefPubMed
68.
go back to reference Anton MM, Spirduso WW, Tanaka H. Age-related declines in anaerobic muscular performance: weightlifting and powerlifting. Med Sci Sports Exerc 2004; 36 (1): 143–7CrossRefPubMed Anton MM, Spirduso WW, Tanaka H. Age-related declines in anaerobic muscular performance: weightlifting and powerlifting. Med Sci Sports Exerc 2004; 36 (1): 143–7CrossRefPubMed
69.
go back to reference Jozsi AC, Dupont-Versteegden EE, Taylor-Jones JM, et al. Aged human muscle demonstrates an altered gene expression profile consistent with an impaired response to exercise. Mech Ageing Dev 2000; 120 (1–3): 45–56CrossRefPubMed Jozsi AC, Dupont-Versteegden EE, Taylor-Jones JM, et al. Aged human muscle demonstrates an altered gene expression profile consistent with an impaired response to exercise. Mech Ageing Dev 2000; 120 (1–3): 45–56CrossRefPubMed
70.
go back to reference Kumar V, Selby A, Rankin D, et al. Age-related differences in the dose-response relationship of muscle protein synthesis to resistance exercise in young and old men. J Physiol 2009; 587 (1): 211–7CrossRefPubMed Kumar V, Selby A, Rankin D, et al. Age-related differences in the dose-response relationship of muscle protein synthesis to resistance exercise in young and old men. J Physiol 2009; 587 (1): 211–7CrossRefPubMed
71.
go back to reference Newton R, Hakkinen K, Hakkinen A, et al. Mixedmethods resistance training increases power and strength of young and older men. Med Sci Sports Exerc 2002; 34 (8): 1367–75CrossRefPubMed Newton R, Hakkinen K, Hakkinen A, et al. Mixedmethods resistance training increases power and strength of young and older men. Med Sci Sports Exerc 2002; 34 (8): 1367–75CrossRefPubMed
72.
go back to reference Harris GR, Stone MH, O’Bryant HS, et al. Short-term performance effects of high power, high force, or combined weight-training methods. J Strength Cond Res 2000; 14 (1): 14–20 Harris GR, Stone MH, O’Bryant HS, et al. Short-term performance effects of high power, high force, or combined weight-training methods. J Strength Cond Res 2000; 14 (1): 14–20
73.
go back to reference Izquierdo M, Häkkinen K, Gonzalez-Badillo JJ, et al. Effects of long-term training specificity on maximal strength and power of the upper and lower extremities in athletes from different sports. Eur J Appl Physiol 2002; 87 (3): 264–71CrossRefPubMed Izquierdo M, Häkkinen K, Gonzalez-Badillo JJ, et al. Effects of long-term training specificity on maximal strength and power of the upper and lower extremities in athletes from different sports. Eur J Appl Physiol 2002; 87 (3): 264–71CrossRefPubMed
74.
go back to reference Kaneko M, Fuchimoto T, Toji H, et al. Training effect of different loads on the force-velocity relationship and mechanical power output in human muscle. Scand J Sports Sci 1983; 5 (2): 50–5 Kaneko M, Fuchimoto T, Toji H, et al. Training effect of different loads on the force-velocity relationship and mechanical power output in human muscle. Scand J Sports Sci 1983; 5 (2): 50–5
75.
go back to reference Newton RU, Kraemer W, Häkkinen K, et al. Kinematics, kinetics, and muscle activation during explosive upper body movements. J Appl Biomech 1996; 12: 31–43 Newton RU, Kraemer W, Häkkinen K, et al. Kinematics, kinetics, and muscle activation during explosive upper body movements. J Appl Biomech 1996; 12: 31–43
76.
go back to reference Newton RU, Murphy AJ, Humphries BJ, et al. Influence of load and stretch shortening cycle on the kinematics, kinetics and muscle activation that occurs during explosive upper-body movements. Eur J Appl Physiol Occup Physiol 1997; 75 (4): 333–42CrossRefPubMed Newton RU, Murphy AJ, Humphries BJ, et al. Influence of load and stretch shortening cycle on the kinematics, kinetics and muscle activation that occurs during explosive upper-body movements. Eur J Appl Physiol Occup Physiol 1997; 75 (4): 333–42CrossRefPubMed
77.
go back to reference Stone MH, O’Bryant HS, McCoy L, et al. Power and maximum strength relationships during performance of dynamic and static weighted jumps. J Strength Cond Res 2003a; 17 (1): 140–7PubMed Stone MH, O’Bryant HS, McCoy L, et al. Power and maximum strength relationships during performance of dynamic and static weighted jumps. J Strength Cond Res 2003a; 17 (1): 140–7PubMed
78.
go back to reference Markovic G, Jaric S. Positive and negative loading and mechanical output in maximum vertical jumping. Med Sci Sports Exerc 2007; 39 (10): 1757–64CrossRefPubMed Markovic G, Jaric S. Positive and negative loading and mechanical output in maximum vertical jumping. Med Sci Sports Exerc 2007; 39 (10): 1757–64CrossRefPubMed
79.
go back to reference Nuzzo JL, McBride JM, Dayne AM, et al. Testing of the maximal dynamic output hypothesis in trained and untrained subjects. J Strength Cond Res 2010; 24 (5): 1269–76CrossRefPubMed Nuzzo JL, McBride JM, Dayne AM, et al. Testing of the maximal dynamic output hypothesis in trained and untrained subjects. J Strength Cond Res 2010; 24 (5): 1269–76CrossRefPubMed
80.
go back to reference Baker D, Nance S, Moore M. The load that maximizes the average mechanical power output during jump squats in power-trained athletes. J Strength Cond Res 2001a; 15 (1): 92–7PubMed Baker D, Nance S, Moore M. The load that maximizes the average mechanical power output during jump squats in power-trained athletes. J Strength Cond Res 2001a; 15 (1): 92–7PubMed
81.
go back to reference Baker D, Nance S, Moore M. The load that maximizes the average mechanical power output during explosive bench press throws in highly trained athletes. J Strength Cond Res 2001b; 15 (1): 20–4PubMed Baker D, Nance S, Moore M. The load that maximizes the average mechanical power output during explosive bench press throws in highly trained athletes. J Strength Cond Res 2001b; 15 (1): 20–4PubMed
82.
go back to reference Delecluse C, Van Coppenolle H, Willems E, et al. Influence of high-resistance and high-velocity training on sprint performance. Med Sci Sports Exerc 1995; 27 (8): 1203–9PubMed Delecluse C, Van Coppenolle H, Willems E, et al. Influence of high-resistance and high-velocity training on sprint performance. Med Sci Sports Exerc 1995; 27 (8): 1203–9PubMed
83.
go back to reference Garhammer J, McLaughlin T. Power output as a function of load variation in Olympic and power lifting [abstract]. J Biomech 1980; 13 (2): 198CrossRef Garhammer J, McLaughlin T. Power output as a function of load variation in Olympic and power lifting [abstract]. J Biomech 1980; 13 (2): 198CrossRef
84.
go back to reference McBride JM, Triplett-McBride T, Davie A, et al. The effect of heavy-vs. light-load jump squats on the development of strength, power, and speed. J Strength Cond Res 2002; 16 (1): 75–82PubMed McBride JM, Triplett-McBride T, Davie A, et al. The effect of heavy-vs. light-load jump squats on the development of strength, power, and speed. J Strength Cond Res 2002; 16 (1): 75–82PubMed
85.
go back to reference Wilson G, Newton R, Murphy A, et al. The optimal training load for the development of dynamic athletic performance. Med Sci Sports Exerc 1993; 25 (11): 1279–86PubMed Wilson G, Newton R, Murphy A, et al. The optimal training load for the development of dynamic athletic performance. Med Sci Sports Exerc 1993; 25 (11): 1279–86PubMed
86.
go back to reference Kawamori N, Crum AJ, Blumert PA, et al. Influence of different relative intensities on power output during the hang power clean: identification of the optimal load. J Strength Cond Res 2005; 19 (3): 698–708PubMed Kawamori N, Crum AJ, Blumert PA, et al. Influence of different relative intensities on power output during the hang power clean: identification of the optimal load. J Strength Cond Res 2005; 19 (3): 698–708PubMed
87.
go back to reference Thomas G, Kraemer W, Spiering B, et al. Maximal power at different percentages of one repetition maximum: influence of resistance and gender. J Strength Cond Res 2007; 21 (2): 336–42PubMed Thomas G, Kraemer W, Spiering B, et al. Maximal power at different percentages of one repetition maximum: influence of resistance and gender. J Strength Cond Res 2007; 21 (2): 336–42PubMed
88.
go back to reference Haff GG, Stone M, O’Bryant HS, et al. Force-time dependent characteristics of dynamic and isometric muscle actions. J Strength Cond Res 1997; 11 (4): 269–72 Haff GG, Stone M, O’Bryant HS, et al. Force-time dependent characteristics of dynamic and isometric muscle actions. J Strength Cond Res 1997; 11 (4): 269–72
89.
go back to reference Hoffman JR, Ratamess NA, Klatt M, et al. Comparison between different off-season resistance training programs in Division III American college football players. J Strength Cond Res 2009; 23 (1): 11–9CrossRefPubMed Hoffman JR, Ratamess NA, Klatt M, et al. Comparison between different off-season resistance training programs in Division III American college football players. J Strength Cond Res 2009; 23 (1): 11–9CrossRefPubMed
90.
go back to reference Hori N, Newton RU, Nosaka K, et al. Weightlifting exercises enhance athletic performance that requires high-load speed strength. Strength Cond J 2005; 27 (4): 50–5CrossRef Hori N, Newton RU, Nosaka K, et al. Weightlifting exercises enhance athletic performance that requires high-load speed strength. Strength Cond J 2005; 27 (4): 50–5CrossRef
91.
go back to reference Scala D, McMillan J, Blessing D, et al. Metabolic cost of a preparatory phase of training in weight lifting: a practical observation. J Strength Cond Res 1987; 1 (3): 48–52 Scala D, McMillan J, Blessing D, et al. Metabolic cost of a preparatory phase of training in weight lifting: a practical observation. J Strength Cond Res 1987; 1 (3): 48–52
92.
go back to reference Wilmore J, Parr R, Ward P, et al. Energy cost of circuit weight training. Med Sci Sports 1978; 10 (2): 75–8PubMed Wilmore J, Parr R, Ward P, et al. Energy cost of circuit weight training. Med Sci Sports 1978; 10 (2): 75–8PubMed
93.
go back to reference Burke LM, Gollan RA, Read RS. Dietary intakes and food use of groups of elite Australian male athletes. Int J Sport Nutr 1991; 1 (4): 378–94PubMed Burke LM, Gollan RA, Read RS. Dietary intakes and food use of groups of elite Australian male athletes. Int J Sport Nutr 1991; 1 (4): 378–94PubMed
94.
go back to reference Burke LM, Read R. Food use and nutritional practices of elite Olympic weightlifters. In: Truswell AS, Wahlqvist ML, editors. Food habits in Australia. Melbourne (VIC): William Heinemann, 1988: 112–21 Burke LM, Read R. Food use and nutritional practices of elite Olympic weightlifters. In: Truswell AS, Wahlqvist ML, editors. Food habits in Australia. Melbourne (VIC): William Heinemann, 1988: 112–21
95.
go back to reference Chen JD, Wang JF, Li KJ, et al. Nutritional problems and measures in elite and amateur athletes. Am J Clin Nutr 1989; 49 (5): 1084–9PubMed Chen JD, Wang JF, Li KJ, et al. Nutritional problems and measures in elite and amateur athletes. Am J Clin Nutr 1989; 49 (5): 1084–9PubMed
96.
go back to reference Hassapidou M. Dietary assessment of five male sports teams in Greece. Nutri Food Sci 2001; 31 (1): 31–5CrossRef Hassapidou M. Dietary assessment of five male sports teams in Greece. Nutri Food Sci 2001; 31 (1): 31–5CrossRef
97.
go back to reference Marsit JL, Conley MS, Stone MH, et al. Effects of ascorbic acid on serum cortisol and the testosterone: cortisol ratio in junior elite weightlifters. J Strength Cond Res 1998; 12 (3): 179–84 Marsit JL, Conley MS, Stone MH, et al. Effects of ascorbic acid on serum cortisol and the testosterone: cortisol ratio in junior elite weightlifters. J Strength Cond Res 1998; 12 (3): 179–84
98.
go back to reference Rogozkin VA. Sports specific nutrition: weightlifting and power events. In: Maughan R, editor. Nutrition in sport. Oxford: Wiley-Blackwell, 2000: 621–31 Rogozkin VA. Sports specific nutrition: weightlifting and power events. In: Maughan R, editor. Nutrition in sport. Oxford: Wiley-Blackwell, 2000: 621–31
99.
go back to reference Sugiura K, Suzuki I, Kobayashi K. Nutritional intake of elite Japanese track-and-field athletes. Int J Sport Nutr 1999; 9 (2): 202–12PubMed Sugiura K, Suzuki I, Kobayashi K. Nutritional intake of elite Japanese track-and-field athletes. Int J Sport Nutr 1999; 9 (2): 202–12PubMed
100.
go back to reference Ronsen O, Sundgot-Borgen J, Maehlum S. Supplement use and nutritional habits in Norwegian elite athletes. Scand J Med Sci Sports 1999; 9 (1): 28–35CrossRefPubMed Ronsen O, Sundgot-Borgen J, Maehlum S. Supplement use and nutritional habits in Norwegian elite athletes. Scand J Med Sci Sports 1999; 9 (1): 28–35CrossRefPubMed
101.
go back to reference Maughan RJ, Burke L. Sports nutrition: olympic handbook of sports medicine. Malden (MA): Wiley-Blackwell, 2002CrossRef Maughan RJ, Burke L. Sports nutrition: olympic handbook of sports medicine. Malden (MA): Wiley-Blackwell, 2002CrossRef
102.
go back to reference Grandjean AC. Macronutrient intake of US athletes compared with the general population and recommendations made for athletes. Am J Clin Nutr 1989; 49 (5): 1070–6PubMed Grandjean AC. Macronutrient intake of US athletes compared with the general population and recommendations made for athletes. Am J Clin Nutr 1989; 49 (5): 1070–6PubMed
103.
go back to reference Rodriguez NR, DiMarco NM, Langley S. Position of the American Dietetic Association, Dietitians of Canada, and the American College of Sports Medicine: nutrition and athletic performance. J Am Diet Assoc 2009; 109 (3): 509–27CrossRefPubMed Rodriguez NR, DiMarco NM, Langley S. Position of the American Dietetic Association, Dietitians of Canada, and the American College of Sports Medicine: nutrition and athletic performance. J Am Diet Assoc 2009; 109 (3): 509–27CrossRefPubMed
104.
go back to reference Trumbo P, Schlicker S, Yates AA, et al. Dietary reference intakes for energy, carbohydrate, fiber, fat, fatty acids, cholesterol, protein and amino acids. J Am Diet Assoc 2002; 102 (11): 1621–30CrossRefPubMed Trumbo P, Schlicker S, Yates AA, et al. Dietary reference intakes for energy, carbohydrate, fiber, fat, fatty acids, cholesterol, protein and amino acids. J Am Diet Assoc 2002; 102 (11): 1621–30CrossRefPubMed
105.
go back to reference Van Erp-Baart A, Saris W, Binkhorst R, et al. Nationwide survey on nutritional habits in elite athletes. Int J Sports Med 1989; 10: 53–16CrossRef Van Erp-Baart A, Saris W, Binkhorst R, et al. Nationwide survey on nutritional habits in elite athletes. Int J Sports Med 1989; 10: 53–16CrossRef
106.
go back to reference Rodriguez N, Di Marco N, Langley S. American Dietetic Association; Dietitians of Canada; American College of Sports Medicine. American College of Sports Medicine position stand. Nutrition and athletic performance. Med Sci Sports Exerc 2009; 41 (3): 709–31CrossRefPubMed Rodriguez N, Di Marco N, Langley S. American Dietetic Association; Dietitians of Canada; American College of Sports Medicine. American College of Sports Medicine position stand. Nutrition and athletic performance. Med Sci Sports Exerc 2009; 41 (3): 709–31CrossRefPubMed
107.
go back to reference Judelson DA, Maresh CM, Anderson JM, et al. Hydration and muscular performance: does fluid balance affect strength, power and high-intensity endurance? Sports Med 2007b; 37 (10): 907–21CrossRefPubMed Judelson DA, Maresh CM, Anderson JM, et al. Hydration and muscular performance: does fluid balance affect strength, power and high-intensity endurance? Sports Med 2007b; 37 (10): 907–21CrossRefPubMed
108.
go back to reference Cheuvront S, Carter III R, Castellani J, et al. Hypohydration impairs endurance exercise performance in temperate but not cold air. J Appl Physiol 2005; 99 (5): 1972–6CrossRefPubMed Cheuvront S, Carter III R, Castellani J, et al. Hypohydration impairs endurance exercise performance in temperate but not cold air. J Appl Physiol 2005; 99 (5): 1972–6CrossRefPubMed
109.
go back to reference Sawka M. Physiological consequences of hypohydration: exercise performance and thermoregulation. Med Sci Sports Exerc 1992; 24 (6): 657–70PubMed Sawka M. Physiological consequences of hypohydration: exercise performance and thermoregulation. Med Sci Sports Exerc 1992; 24 (6): 657–70PubMed
110.
go back to reference von Duvillard S, Braun W, Markofski M, et al. Fluids and hydration in prolonged endurance performance. Nutrition 2004; 20 (7–8): 651–6CrossRef von Duvillard S, Braun W, Markofski M, et al. Fluids and hydration in prolonged endurance performance. Nutrition 2004; 20 (7–8): 651–6CrossRef
111.
go back to reference Schoffstall JE, David Branch J, Leutholtz BC, et al. Effects of dehydration and rehydration on the one-repetition maximum bench press of weight-trained males. J Strength Cond Res 2001; 15 (1): 102–8PubMed Schoffstall JE, David Branch J, Leutholtz BC, et al. Effects of dehydration and rehydration on the one-repetition maximum bench press of weight-trained males. J Strength Cond Res 2001; 15 (1): 102–8PubMed
112.
go back to reference Viitasalo JT, Kyrolainen H, Bosco C, et al. Effects of rapid weight reduction on force production and vertical jumping height. Int J Sports Med 1987; 8 (4): 281–5CrossRefPubMed Viitasalo JT, Kyrolainen H, Bosco C, et al. Effects of rapid weight reduction on force production and vertical jumping height. Int J Sports Med 1987; 8 (4): 281–5CrossRefPubMed
113.
go back to reference Webster S, Rutt R, Weltman A. Physiological effects of a weight loss regimen practiced by college wrestlers. Med Sci Sports Exerc 1990; 22 (2): 229–34PubMed Webster S, Rutt R, Weltman A. Physiological effects of a weight loss regimen practiced by college wrestlers. Med Sci Sports Exerc 1990; 22 (2): 229–34PubMed
114.
go back to reference Torranin C, Smith DP, Byrd RJ. The effect of acute thermal dehydration and rapid rehydration on isometric and istonic endurance. J Sports Med Phys Fitness 1979; 19 (1): 1–9PubMed Torranin C, Smith DP, Byrd RJ. The effect of acute thermal dehydration and rapid rehydration on isometric and istonic endurance. J Sports Med Phys Fitness 1979; 19 (1): 1–9PubMed
115.
go back to reference Judelson DA, Maresh CM, Farrell MJ, et al. Effect of hydration state on strength, power, and resistance exercise performance. Med Sci Sports Exerc 2007a; 39 (10): 1817–24CrossRefPubMed Judelson DA, Maresh CM, Farrell MJ, et al. Effect of hydration state on strength, power, and resistance exercise performance. Med Sci Sports Exerc 2007a; 39 (10): 1817–24CrossRefPubMed
116.
go back to reference Montain SJ, Smith SA, Mattot RP, et al. Hypohydration effects on skeletal muscle performance and metabolism: a 31P-MRS study. J Appl Physiol 1998; 84 (6): 1889–94PubMed Montain SJ, Smith SA, Mattot RP, et al. Hypohydration effects on skeletal muscle performance and metabolism: a 31P-MRS study. J Appl Physiol 1998; 84 (6): 1889–94PubMed
117.
go back to reference Greiwe JS, Staffey KS, Melrose DR, et al. Effects of dehydration on isometric muscular strength and endurance. Med Sci Sports Exerc 1998; 30 (2): 284–8CrossRefPubMed Greiwe JS, Staffey KS, Melrose DR, et al. Effects of dehydration on isometric muscular strength and endurance. Med Sci Sports Exerc 1998; 30 (2): 284–8CrossRefPubMed
118.
go back to reference Fogelholm GM, Koskinen R, Laakso J, et al. Gradual and rapid weight loss: effects on nutrition and performance in male athletes. Med Sci Sports Exerc 1993; 25 (3): 371–7PubMed Fogelholm GM, Koskinen R, Laakso J, et al. Gradual and rapid weight loss: effects on nutrition and performance in male athletes. Med Sci Sports Exerc 1993; 25 (3): 371–7PubMed
119.
go back to reference Gutiérrez A, Mesa JLM, Ruiz JR, et al. Sauna-induced rapid weight loss decreases explosive power in women but not in men. Int J Sports Med 2003; 24 (7): 518–23CrossRefPubMed Gutiérrez A, Mesa JLM, Ruiz JR, et al. Sauna-induced rapid weight loss decreases explosive power in women but not in men. Int J Sports Med 2003; 24 (7): 518–23CrossRefPubMed
120.
go back to reference Carter JEL, Lindsay JE. Physical structure of Olympic athletes: part II. In: Jokl E, Hebbelinck M, editors. Kinathropometry of Olympic athletes. Basel: Karger, 1984 Carter JEL, Lindsay JE. Physical structure of Olympic athletes: part II. In: Jokl E, Hebbelinck M, editors. Kinathropometry of Olympic athletes. Basel: Karger, 1984
121.
go back to reference Fahey TD, Akka L, Rolph R. Body composition and VO2max of exceptional weight-trained athletes. J Appl Physiol 1975; 39 (4): 559–61PubMed Fahey TD, Akka L, Rolph R. Body composition and VO2max of exceptional weight-trained athletes. J Appl Physiol 1975; 39 (4): 559–61PubMed
122.
go back to reference Fry AC, Ciroslan D, Fry MD, et al. Anthropometric and performance variables discriminating elite American Junior men weightlifters. J Strength Cond Res 2006; 20 (4): 861–6PubMed Fry AC, Ciroslan D, Fry MD, et al. Anthropometric and performance variables discriminating elite American Junior men weightlifters. J Strength Cond Res 2006; 20 (4): 861–6PubMed
123.
go back to reference Katch VL, Katch FI, Moffatt R, et al. Muscular development and lean body weight in body builders and weight lifters. Med Sci Sports Exerc 1980; 12 (5): 340–4PubMed Katch VL, Katch FI, Moffatt R, et al. Muscular development and lean body weight in body builders and weight lifters. Med Sci Sports Exerc 1980; 12 (5): 340–4PubMed
125.
go back to reference Tittel K, Wutscherk H. Anthropometric factors. In: Komi PV, editor. Strength and power in sport. 2nd ed. Oxford: Blackwell Science, 1992: 180–96 Tittel K, Wutscherk H. Anthropometric factors. In: Komi PV, editor. Strength and power in sport. 2nd ed. Oxford: Blackwell Science, 1992: 180–96
126.
go back to reference Kanehisa H, Fukunaga T. Profiles of musculoskeletal development in limbs of college Olympic weightlifters and wrestlers. Eur J Appl Physiol 1999; 79 (5): 414–20CrossRef Kanehisa H, Fukunaga T. Profiles of musculoskeletal development in limbs of college Olympic weightlifters and wrestlers. Eur J Appl Physiol 1999; 79 (5): 414–20CrossRef
127.
go back to reference Thorland W, Johnson G, Fagot T, et al. Body composition and somatotype characteristics of Junior Olympic athletes. Med Sci Sports Exerc 1981; 13 (5): 332–8PubMed Thorland W, Johnson G, Fagot T, et al. Body composition and somatotype characteristics of Junior Olympic athletes. Med Sci Sports Exerc 1981; 13 (5): 332–8PubMed
128.
go back to reference Faber M, Spinnler-Benade A, Daubitzer A. Dietary intake, anthropometric measurements and plasma lipid levels in throwing field athletes. Int J Sports Med 1990; 11: 140–5CrossRefPubMed Faber M, Spinnler-Benade A, Daubitzer A. Dietary intake, anthropometric measurements and plasma lipid levels in throwing field athletes. Int J Sports Med 1990; 11: 140–5CrossRefPubMed
129.
go back to reference Keogh JWL, Hume PA, Pearson SN, et al. Anthropometric dimensions of male powerlifters of varying body mass. J Sports Sci 2007; 25 (12): 1365–76CrossRefPubMed Keogh JWL, Hume PA, Pearson SN, et al. Anthropometric dimensions of male powerlifters of varying body mass. J Sports Sci 2007; 25 (12): 1365–76CrossRefPubMed
130.
go back to reference Kidd D, Winter E. Some anthropometric characteristics of the National Junior hammer squad. Br J Sports Med 1983; 17 (4): 152–3CrossRefPubMed Kidd D, Winter E. Some anthropometric characteristics of the National Junior hammer squad. Br J Sports Med 1983; 17 (4): 152–3CrossRefPubMed
131.
go back to reference Stone MH, Sanborn K, O’Bryant HS, et al. Maximum strength-power-performance relationships in collegiate throwers. J Strength Cond Res 2003; 17 (4): 739–45PubMed Stone MH, Sanborn K, O’Bryant HS, et al. Maximum strength-power-performance relationships in collegiate throwers. J Strength Cond Res 2003; 17 (4): 739–45PubMed
132.
go back to reference Haff GG, Jackson JR, Kawamori N, et al. Force-time curve characteristics and hormonal alterations during an eleven-week training period in elite women weightlifters. J Strength Cond Res 2008; 22 (2): 433–46CrossRefPubMed Haff GG, Jackson JR, Kawamori N, et al. Force-time curve characteristics and hormonal alterations during an eleven-week training period in elite women weightlifters. J Strength Cond Res 2008; 22 (2): 433–46CrossRefPubMed
133.
go back to reference Stoessel L, Stone MH, Keith R, et al. Selected physiological, psychological and performance characteristics of National-caliber United States women weightlifters. J Strength Cond Res 1991; 5 (2): 87–95 Stoessel L, Stone MH, Keith R, et al. Selected physiological, psychological and performance characteristics of National-caliber United States women weightlifters. J Strength Cond Res 1991; 5 (2): 87–95
134.
go back to reference Ford LE, Detterline AJ, Ho KK, et al. Gender-and height-related limits of muscle strength in world weightlifting champions. J Appl Physiol 2000; 89 (3): 1061–4PubMed Ford LE, Detterline AJ, Ho KK, et al. Gender-and height-related limits of muscle strength in world weightlifting champions. J Appl Physiol 2000; 89 (3): 1061–4PubMed
135.
go back to reference Frontera WR, Hughes VA, Lutz KJ, et al. A cross-sectional study of muscle strength and mass in 45-to 78-yr-old men and women. J Appl Physiol 1991; 71 (2): 644–50PubMed Frontera WR, Hughes VA, Lutz KJ, et al. A cross-sectional study of muscle strength and mass in 45-to 78-yr-old men and women. J Appl Physiol 1991; 71 (2): 644–50PubMed
136.
go back to reference Marchocka M, Smuk E. Analysis of body build of senior weightlifters with particular regard for proportions. Biology of Sport 1984; 1: 55–71 Marchocka M, Smuk E. Analysis of body build of senior weightlifters with particular regard for proportions. Biology of Sport 1984; 1: 55–71
137.
go back to reference Maughan R, Watson J, Weir J. Strength and cross-sectional area of human skeletal muscle. J Physiol 1983; 338 (1): 37–49PubMed Maughan R, Watson J, Weir J. Strength and cross-sectional area of human skeletal muscle. J Physiol 1983; 338 (1): 37–49PubMed
138.
go back to reference Maughan R, Watson J, Weir J. Muscle strength and cross-sectional area in man: a comparison of strength-trained and untrained subjects. Br J Sports Med 1984; 18 (3): 149–57CrossRefPubMed Maughan R, Watson J, Weir J. Muscle strength and cross-sectional area in man: a comparison of strength-trained and untrained subjects. Br J Sports Med 1984; 18 (3): 149–57CrossRefPubMed
139.
go back to reference Miller A, MacDougall J, Tarnopolsky M, et al. Gender differences in strength and muscle fiber characteristics. Eur J Appl Physiol Occup Physiol 1993; 66 (3): 254–62CrossRefPubMed Miller A, MacDougall J, Tarnopolsky M, et al. Gender differences in strength and muscle fiber characteristics. Eur J Appl Physiol Occup Physiol 1993; 66 (3): 254–62CrossRefPubMed
140.
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 (2): 219–26CrossRefPubMed 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 (2): 219–26CrossRefPubMed
141.
go back to reference Thorstensson A, Grimby G, Karlsson J. Force-velocity relations and fiber composition in human knee extensor muscles. J Appl Physiol 1976; 40 (1): 12–6PubMed Thorstensson A, Grimby G, Karlsson J. Force-velocity relations and fiber composition in human knee extensor muscles. J Appl Physiol 1976; 40 (1): 12–6PubMed
142.
go back to reference Clarkson PM, Kroll W, McBride TC. Maximal isometric strength and fiber type composition in power and endurance athletes. Eur J Appl Physiol 1980; 44 (1): 35–42CrossRef Clarkson PM, Kroll W, McBride TC. Maximal isometric strength and fiber type composition in power and endurance athletes. Eur J Appl Physiol 1980; 44 (1): 35–42CrossRef
143.
go back to reference Fry AC, Schilling BK, Staron RS, et al. Muscle fiber characteristics and performance correlates of male Olympicstyle weightlifters. J Strength Cond Res 2003; 17 (4): 746–54PubMed Fry AC, Schilling BK, Staron RS, et al. Muscle fiber characteristics and performance correlates of male Olympicstyle weightlifters. J Strength Cond Res 2003; 17 (4): 746–54PubMed
144.
go back to reference Gollnick PD, Armstrong RB, Saubert CW, et al. Enzyme activity and fiber composition in skeletal muscle of untrained and trained men. J Appl Physiol 1972; 33 (3): 312–9PubMed Gollnick PD, Armstrong RB, Saubert CW, et al. Enzyme activity and fiber composition in skeletal muscle of untrained and trained men. J Appl Physiol 1972; 33 (3): 312–9PubMed
145.
go back to reference Häkkinen K, Komi PV, Alén M, et al. EMG, muscle fibre and force production characteristics during a 1 year training period in elite weight-lifters. Eur J Appl Physiol 1987; 56 (4): 419–27CrossRef Häkkinen K, Komi PV, Alén M, et al. EMG, muscle fibre and force production characteristics during a 1 year training period in elite weight-lifters. Eur J Appl Physiol 1987; 56 (4): 419–27CrossRef
146.
go back to reference Prince FP, Hikida RS, Hagerman FC. Human muscle fiber types in power lifters, distance runners and untrained subjects. Pflügers Arch 1976; 363 (1): 19–26CrossRefPubMed Prince FP, Hikida RS, Hagerman FC. Human muscle fiber types in power lifters, distance runners and untrained subjects. Pflügers Arch 1976; 363 (1): 19–26CrossRefPubMed
147.
go back to reference Tesch PA, Thorsson A, Essen-Gustavsson B. Enzyme activities of FT and ST muscle fibers in heavy-resistance trained athletes. J Appl Physiol 1989; 67 (1): 83–7PubMed Tesch PA, Thorsson A, Essen-Gustavsson B. Enzyme activities of FT and ST muscle fibers in heavy-resistance trained athletes. J Appl Physiol 1989; 67 (1): 83–7PubMed
148.
go back to reference Tesch PA, Thorsson A, Kaiser P. Muscle capillary supply and fiber type characteristics in weight and power lifters. J Appl Physiol 1984; 56 (1): 35–8PubMed Tesch PA, Thorsson A, Kaiser P. Muscle capillary supply and fiber type characteristics in weight and power lifters. J Appl Physiol 1984; 56 (1): 35–8PubMed
149.
go back to reference Ingjer F. Capillary supply and mitochondrial content of different skeletal muscle fiber types in untrained and endurance-trained men. A histochemical and ultrastructural study. Eur J Appl Physiol Occup Physiol 1979; 40 (3): 197–209CrossRefPubMed Ingjer F. Capillary supply and mitochondrial content of different skeletal muscle fiber types in untrained and endurance-trained men. A histochemical and ultrastructural study. Eur J Appl Physiol Occup Physiol 1979; 40 (3): 197–209CrossRefPubMed
150.
go back to reference Simoneau JA, Bouchard C. Human variation in skeletal muscle fiber-type proportion and enzyme activities. Am J Physiol 1989; 257 (4) 567–72 Simoneau JA, Bouchard C. Human variation in skeletal muscle fiber-type proportion and enzyme activities. Am J Physiol 1989; 257 (4) 567–72
151.
go back to reference Bottinelli R, Pellegrino M, Canepari M, et al. Specific contributions of various muscle fibre types to human muscle performance: an in vitro study. J Electromyogr Kinesiol 1999; 9 (2): 87–95CrossRefPubMed Bottinelli R, Pellegrino M, Canepari M, et al. Specific contributions of various muscle fibre types to human muscle performance: an in vitro study. J Electromyogr Kinesiol 1999; 9 (2): 87–95CrossRefPubMed
152.
go back to reference Malisoux L, Francaux M, Nielens H, et al. Stretch- shortening cycle exercises: an effective training paradigm to enhance power output of human single muscle fibers. J Appl Physiol 2006; 100 (3): 771–9CrossRefPubMed Malisoux L, Francaux M, Nielens H, et al. Stretch- shortening cycle exercises: an effective training paradigm to enhance power output of human single muscle fibers. J Appl Physiol 2006; 100 (3): 771–9CrossRefPubMed
153.
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 Intergr Comp Physiol 2002; 283 (2): 408–16 Widrick JJ, Stelzer JE, Shoepe TC, et al. Functional properties of human muscle fibers after short-term resistance exercise training. Am J Physiol Regul Intergr Comp Physiol 2002; 283 (2): 408–16
154.
go back to reference Staron RS, Karapondo DL, Kraemer WJ, et al. Skeletal muscle adaptations during early phase of heavy-resistance training in men and women. J Appl Physiol 1994; 76 (3): 1247–55PubMed Staron RS, Karapondo DL, Kraemer WJ, et al. Skeletal muscle adaptations during early phase of heavy-resistance training in men and women. J Appl Physiol 1994; 76 (3): 1247–55PubMed
155.
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 1990; 60 (1): 71–9CrossRef Staron RS, Malicky ES, Leonardi MJ, et al. Muscle hypertrophy and fast fiber type conversions in heavy resistance-trained women. Eur J Appl Physiol 1990; 60 (1): 71–9CrossRef
156.
go back to reference Fry AC. The role of resistance exercise intensity on muscle fibre adaptations. Sports Med 2004; 34 (10): 663–9CrossRefPubMed Fry AC. The role of resistance exercise intensity on muscle fibre adaptations. Sports Med 2004; 34 (10): 663–9CrossRefPubMed
157.
go back to reference Campos GE, Luecke TJ, Wendeln HK, et al. Muscular adaptations in response to three different resistancetraining regimens: specificity of repetition maximum training zones. Eur J Appl Physiol 2002; 88 (1): 50–60CrossRefPubMed Campos GE, Luecke TJ, Wendeln HK, et al. Muscular adaptations in response to three different resistancetraining regimens: specificity of repetition maximum training zones. Eur J Appl Physiol 2002; 88 (1): 50–60CrossRefPubMed
158.
go back to reference Green H, Goreham C, Ouyang J, et al. Regulation of fiber size, oxidative potential, and capillarization in human muscle by resistance exercise. Am J Physiol 1999; 276 (2): 591–6 Green H, Goreham C, Ouyang J, et al. Regulation of fiber size, oxidative potential, and capillarization in human muscle by resistance exercise. Am J Physiol 1999; 276 (2): 591–6
159.
go back to reference Harber MP, Gallagher PM, Creer AR, et al. Single muscle fiber contractile properties during a competitive season in male runners. Am J Physiol Regul Intergr Comp Physiol 2004; 287 (5): 1124–31CrossRef Harber MP, Gallagher PM, Creer AR, et al. Single muscle fiber contractile properties during a competitive season in male runners. Am J Physiol Regul Intergr Comp Physiol 2004; 287 (5): 1124–31CrossRef
160.
go back to reference Neary JP, Martin TP, Quinney HA. Effects of taper on endurance cycling capacity and single muscle fiber properties. Med Sci Sports Exerc 2003; 35 (11): 1875–81CrossRefPubMed Neary JP, Martin TP, Quinney HA. Effects of taper on endurance cycling capacity and single muscle fiber properties. Med Sci Sports Exerc 2003; 35 (11): 1875–81CrossRefPubMed
161.
go back to reference Ross A, Leveritt M. Long-term metabolic and skeletal muscle adaptations to short-sprint training: implications for sprint training and tapering. Sports Med 2001; 31 (15): 1063–82CrossRefPubMed Ross A, Leveritt M. Long-term metabolic and skeletal muscle adaptations to short-sprint training: implications for sprint training and tapering. Sports Med 2001; 31 (15): 1063–82CrossRefPubMed
162.
go back to reference Trappe S, Costill D, Thomas R. Effect of swim taper on whole muscle and single muscle fiber contractile properties. Med Sci Sports Exerc 2001; 33 (1): 48–56PubMed Trappe S, Costill D, Thomas R. Effect of swim taper on whole muscle and single muscle fiber contractile properties. Med Sci Sports Exerc 2001; 33 (1): 48–56PubMed
163.
go back to reference Trappe S, Harber M, Creer A, et al. Single muscle fiber adaptations with marathon training. J Appl Physiol 2006; 101 (3): 721–7CrossRefPubMed Trappe S, Harber M, Creer A, et al. Single muscle fiber adaptations with marathon training. J Appl Physiol 2006; 101 (3): 721–7CrossRefPubMed
164.
go back to reference Haff G, Carlock J, Hartman M, et al. Force-time curve characteristics of dynamic and isometric muscle actions of elite women olympic weightlifters. J Strength Cond Res 2005; 19 (4): 741–8PubMed Haff G, Carlock J, Hartman M, et al. Force-time curve characteristics of dynamic and isometric muscle actions of elite women olympic weightlifters. J Strength Cond Res 2005; 19 (4): 741–8PubMed
165.
go back to reference Hakkinen K, Komi PV, Kauhanen H. Electromyographic and force production characteristics of leg extensor muscles of elite weight lifters during isometric, concentric, and various stretch-shortening cycle exercises. Int J Sports Med 1986; 7 (3): 144–51CrossRefPubMed Hakkinen K, Komi PV, Kauhanen H. Electromyographic and force production characteristics of leg extensor muscles of elite weight lifters during isometric, concentric, and various stretch-shortening cycle exercises. Int J Sports Med 1986; 7 (3): 144–51CrossRefPubMed
166.
go back to reference Kauhanen H, Garhammer J, Häkkinen K. Relationship between power output, body size and snatch performance in elite weightlifters. In: Avela J, Komi PM, Komulainen J, editors. Proceedings of the Fifth Annual Congress of the European College of Sport Sciences; 2000 Jul 19–23; Jyvaskala: 383 Kauhanen H, Garhammer J, Häkkinen K. Relationship between power output, body size and snatch performance in elite weightlifters. In: Avela J, Komi PM, Komulainen J, editors. Proceedings of the Fifth Annual Congress of the European College of Sport Sciences; 2000 Jul 19–23; Jyvaskala: 383
167.
go back to reference Schmidtbleicher D. Training for power events. In: Komi PV, editor. Strength and power in sport. Boston: Blackwell Scientific Publications, 1992: 381–95 Schmidtbleicher D. Training for power events. In: Komi PV, editor. Strength and power in sport. Boston: Blackwell Scientific Publications, 1992: 381–95
168.
go back to reference Stone MH, Sands WA, Pierce KC, et al. Relationship of maximum strength to weightlifting performance. Med Sci Sports Exerc 2005; 37 (6): 1037–43PubMed Stone MH, Sands WA, Pierce KC, et al. Relationship of maximum strength to weightlifting performance. Med Sci Sports Exerc 2005; 37 (6): 1037–43PubMed
169.
go back to reference Aagaard P, Simonsen EB, Andersen JL, et al. Increased rate of force development and neural drive of human skeletal muscle following resistance training. J Appl Physiol 2002; 93 (4): 1318–26PubMed Aagaard P, Simonsen EB, Andersen JL, et al. Increased rate of force development and neural drive of human skeletal muscle following resistance training. J Appl Physiol 2002; 93 (4): 1318–26PubMed
170.
go back to reference Thorstensson A, Karlsson J, Viitasalo JHT, et al. Effect of strength training on EMG of human skeletal muscle. Acta Physiol Scand 1976; 98 (2): 232–6CrossRefPubMed Thorstensson A, Karlsson J, Viitasalo JHT, et al. Effect of strength training on EMG of human skeletal muscle. Acta Physiol Scand 1976; 98 (2): 232–6CrossRefPubMed
171.
go back to reference Zatsiorsky VM. Biomechanics of strength and strength training. In: Komi PV, editor. Strength and power in sport. 2nd ed. Oxford: Blackwell Science, 2003: 439–87CrossRef Zatsiorsky VM. Biomechanics of strength and strength training. In: Komi PV, editor. Strength and power in sport. 2nd ed. Oxford: Blackwell Science, 2003: 439–87CrossRef
172.
go back to reference Gourgoulis V, Aggeloussis N, Garas A, et al. Unsuccessful vs. successful performance in snatch lifts: a kinematic approach. J Strength Cond Res 2009; 23 (2): 486–94CrossRefPubMed Gourgoulis V, Aggeloussis N, Garas A, et al. Unsuccessful vs. successful performance in snatch lifts: a kinematic approach. J Strength Cond Res 2009; 23 (2): 486–94CrossRefPubMed
173.
go back to reference Blazevich AJ, Horne S, Cannavan D, et al. Effect of contraction mode of slow speed resistance training on the maximum rate of force development in the human quadriceps. Muscle Nerve 2008; 38 (3): 1133–46CrossRefPubMed Blazevich AJ, Horne S, Cannavan D, et al. Effect of contraction mode of slow speed resistance training on the maximum rate of force development in the human quadriceps. Muscle Nerve 2008; 38 (3): 1133–46CrossRefPubMed
174.
go back to reference Stone M, Sands W, Carlock J, et al. The importance of isometric maximum strength and peak rate-of-force development in sprint cycling. J Strength Cond Res 2004; 18 (4): 878–84PubMed Stone M, Sands W, Carlock J, et al. The importance of isometric maximum strength and peak rate-of-force development in sprint cycling. J Strength Cond Res 2004; 18 (4): 878–84PubMed
175.
go back to reference Moss BM, Refsnes PE, Abildgaard A, et al. Effects of maximal effort strength training with different loads on dynamic strength, cross-sectional area, load-power and load-velocity relationships. Eur J Appl Physiol Occup Physiol 1997; 75 (3): 193–9CrossRefPubMed Moss BM, Refsnes PE, Abildgaard A, et al. Effects of maximal effort strength training with different loads on dynamic strength, cross-sectional area, load-power and load-velocity relationships. Eur J Appl Physiol Occup Physiol 1997; 75 (3): 193–9CrossRefPubMed
176.
go back to reference Häkkinen K, Pakarinen A, Alén M, et al. Neuromuscular and hormonal responses in elite athletes to two successive strength training sessions in one day. Eur J Appl Physiol 1988; 57 (2): 133–9CrossRef Häkkinen K, Pakarinen A, Alén M, et al. Neuromuscular and hormonal responses in elite athletes to two successive strength training sessions in one day. Eur J Appl Physiol 1988; 57 (2): 133–9CrossRef
177.
go back to reference McGuigan MR, Winchester JB. The relationship between isometric and dynamic strength in college football players. J Sports Sci Med 2008; 7: 101–5 McGuigan MR, Winchester JB. The relationship between isometric and dynamic strength in college football players. J Sports Sci Med 2008; 7: 101–5
178.
go back to reference Nuzzo JL, McBride JM, Cormie P, et al. Relationship between countermovement jump performance and multi-joint isometric and dynamic tests of strength. J Strength Cond Res 2008; 22 (3): 699–707CrossRefPubMed Nuzzo JL, McBride JM, Cormie P, et al. Relationship between countermovement jump performance and multi-joint isometric and dynamic tests of strength. J Strength Cond Res 2008; 22 (3): 699–707CrossRefPubMed
179.
go back to reference Stone MH, Sands WA, Pierce KC, et al. Power and power potentiation among strength-power athletes: preliminary study. Int J Sports Physiol Perform 2008; 3 (1): 55–67PubMed Stone MH, Sands WA, Pierce KC, et al. Power and power potentiation among strength-power athletes: preliminary study. Int J Sports Physiol Perform 2008; 3 (1): 55–67PubMed
180.
go back to reference Ewing J, Wolfe D, Rogers M, et al. Effects of velocity of isokinetic training on strength, power, and quadriceps muscle fibre characteristics. Eur J Appl Physiol Occup Physiol 1990; 61 (1): 159–62CrossRefPubMed Ewing J, Wolfe D, Rogers M, et al. Effects of velocity of isokinetic training on strength, power, and quadriceps muscle fibre characteristics. Eur J Appl Physiol Occup Physiol 1990; 61 (1): 159–62CrossRefPubMed
181.
go back to reference Nardone A, Romano C, Schieppati M. Selective recruitment of high-threshold human motor units during voluntary isotonic lengthening of active muscles. J Physiol 1989; 409 (1): 451–71PubMed Nardone A, Romano C, Schieppati M. Selective recruitment of high-threshold human motor units during voluntary isotonic lengthening of active muscles. J Physiol 1989; 409 (1): 451–71PubMed
182.
go back to reference McBride JM, Triplett-Mcbride T, Davie A, et al. A comparison of strength and power characteristics between power lifters, Olympic lifters, and sprinters. J Strength Cond Res 1999; 13 (1): 58–66 McBride JM, Triplett-Mcbride T, Davie A, et al. A comparison of strength and power characteristics between power lifters, Olympic lifters, and sprinters. J Strength Cond Res 1999; 13 (1): 58–66
183.
go back to reference Hoff J, Almåsbakk B. The effects of maximum strength training on throwing velocity and muscle strength in female team-handball players. J Strength Cond Res 1995; 9 (4): 255–8 Hoff J, Almåsbakk B. The effects of maximum strength training on throwing velocity and muscle strength in female team-handball players. J Strength Cond Res 1995; 9 (4): 255–8
184.
go back to reference Bai X, Wang H, Xi’an Zhang WJ, et al., editors. Threedimension kinematics simulation and biomechanics analysis of snatch technique. Proceedings of 1st joint international pre-Olympic conference of sports science & sports engineering. Vol. 1. Nanjing: Computer Science in Sports; 2008 Aug 5–7: 291–6 Bai X, Wang H, Xi’an Zhang WJ, et al., editors. Threedimension kinematics simulation and biomechanics analysis of snatch technique. Proceedings of 1st joint international pre-Olympic conference of sports science & sports engineering. Vol. 1. Nanjing: Computer Science in Sports; 2008 Aug 5–7: 291–6
185.
go back to reference Sinclair RG. Normalizing the performances of athletes in Olympic weightlifting. Can J Appl Sport Sci 1985; 10 (2): 94–8PubMed Sinclair RG. Normalizing the performances of athletes in Olympic weightlifting. Can J Appl Sport Sci 1985; 10 (2): 94–8PubMed
186.
go back to reference Batterham AM, George KP. Allometric modeling does not determine a dimensionless power function ratio for maximal muscular function. J Appl Physiol 1997; 83 (6): 2158–66PubMed Batterham AM, George KP. Allometric modeling does not determine a dimensionless power function ratio for maximal muscular function. J Appl Physiol 1997; 83 (6): 2158–66PubMed
187.
go back to reference Kauhanen H, Komi PV, Häkkinen K. Standardization and validation of the body weight adjustment regression equations in Olympic weightlifting. J Strength Cond Res 2002; 16 (1): 58–74PubMed Kauhanen H, Komi PV, Häkkinen K. Standardization and validation of the body weight adjustment regression equations in Olympic weightlifting. J Strength Cond Res 2002; 16 (1): 58–74PubMed
188.
go back to reference Siff M. Biomathematical relationship between strength and body mass. SAJ Res Sport Phys Educ Recreation 1988; 11 (1): 81–92 Siff M. Biomathematical relationship between strength and body mass. SAJ Res Sport Phys Educ Recreation 1988; 11 (1): 81–92
189.
go back to reference Kanehisa H, Ikegawa S, Fukunaga T. Comparison of muscle cross-sectional area and strength between untrained women and men. Eur J Appl Physiol Occup Physiol 1994; 68 (2): 148–54CrossRefPubMed Kanehisa H, Ikegawa S, Fukunaga T. Comparison of muscle cross-sectional area and strength between untrained women and men. Eur J Appl Physiol Occup Physiol 1994; 68 (2): 148–54CrossRefPubMed
190.
go back to reference Komi PV, Karlsson J. Skeletal muscle fibre types, enzyme activities and physical performance in young males and females. Acta Physiol Scand 1978; 103 (2): 210–8CrossRefPubMed Komi PV, Karlsson J. Skeletal muscle fibre types, enzyme activities and physical performance in young males and females. Acta Physiol Scand 1978; 103 (2): 210–8CrossRefPubMed
191.
go back to reference Mayhew J, Salm P. Gender differences in anaerobic power tests. Eur J Appl Physiol Occup Physiol 1990; 60 (2): 133–8CrossRefPubMed Mayhew J, Salm P. Gender differences in anaerobic power tests. Eur J Appl Physiol Occup Physiol 1990; 60 (2): 133–8CrossRefPubMed
192.
go back to reference Petrella JK, Kim J, Tuggle SC, et al. Age differences in knee extension power, contractile velocity, and fatigability. J Appl Physiol 2005; 98 (1): 211–20CrossRefPubMed Petrella JK, Kim J, Tuggle SC, et al. Age differences in knee extension power, contractile velocity, and fatigability. J Appl Physiol 2005; 98 (1): 211–20CrossRefPubMed
193.
go back to reference Baker AB, Tang YQ. Aging performance for Masters records in athletics, swimming, rowing, cycling, triathlon, and weightlifting. Exp Aging Res 2010; 36 (4): 453–77CrossRefPubMed Baker AB, Tang YQ. Aging performance for Masters records in athletics, swimming, rowing, cycling, triathlon, and weightlifting. Exp Aging Res 2010; 36 (4): 453–77CrossRefPubMed
194.
go back to reference Meltzer DE. Body-mass dependence of age-related deterioration in human muscular function. J Appl Physiol 1996; 80 (4): 1149–55PubMed Meltzer DE. Body-mass dependence of age-related deterioration in human muscular function. J Appl Physiol 1996; 80 (4): 1149–55PubMed
195.
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 (11): 1638–44CrossRefPubMed 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 (11): 1638–44CrossRefPubMed
196.
go back to reference Brown WF, Strong MJ, Snow R. Methods for estimating numbers of motor units in biceps brachialis muscles and losses of motor units with aging. Muscle Nerve 1988; 11 (5): 423–32CrossRefPubMed Brown WF, Strong MJ, Snow R. Methods for estimating numbers of motor units in biceps brachialis muscles and losses of motor units with aging. Muscle Nerve 1988; 11 (5): 423–32CrossRefPubMed
197.
go back to reference Luff AR. Age-associated changes in the innervation of muscle fibers and changes in the mechanical properties of motor units. Ann N Y Acad Sci 1998; 854 (1): 92–101CrossRefPubMed Luff AR. Age-associated changes in the innervation of muscle fibers and changes in the mechanical properties of motor units. Ann N Y Acad Sci 1998; 854 (1): 92–101CrossRefPubMed
198.
go back to reference Larsson L, Sjödin B, Karlsson J. Histochemical and biochemical changes in human skeletal muscle with age in sedentary males, age 22–65 years. Acta Physiol Scand 1978; 103 (1): 31–9CrossRefPubMed Larsson L, Sjödin B, Karlsson J. Histochemical and biochemical changes in human skeletal muscle with age in sedentary males, age 22–65 years. Acta Physiol Scand 1978; 103 (1): 31–9CrossRefPubMed
199.
go back to reference Lexell J. Human aging, muscle mass, and fiber type composition. J Gerontol A Biol Sci Med Sci 1995; 50: 11–6PubMed Lexell J. Human aging, muscle mass, and fiber type composition. J Gerontol A Biol Sci Med Sci 1995; 50: 11–6PubMed
200.
go back to reference Lexell J, Henriksson-Larsén K, Winblad B, et al. Distribution of different fiber types in human skeletal muscles: Effects of aging studied in whole muscle cross sections. Muscle Nerve 1983; 6 (8): 588–95CrossRefPubMed Lexell J, Henriksson-Larsén K, Winblad B, et al. Distribution of different fiber types in human skeletal muscles: Effects of aging studied in whole muscle cross sections. Muscle Nerve 1983; 6 (8): 588–95CrossRefPubMed
201.
go back to reference Krivickas LS, Suh D, Wilkins J, et al. Age-and gender-related differences in maximum shortening velocity of skeletal muscle fibers. Am J Phys Med Rehabil 2001; 80 (6): 447–55CrossRefPubMed Krivickas LS, Suh D, Wilkins J, et al. Age-and gender-related differences in maximum shortening velocity of skeletal muscle fibers. Am J Phys Med Rehabil 2001; 80 (6): 447–55CrossRefPubMed
202.
go back to reference Trappe S, Gallagher P, Harber M, et al. Single muscle fibre contractile properties in young and old men and women. J Physiol 2003; 552 (1): 47–58CrossRefPubMed Trappe S, Gallagher P, Harber M, et al. Single muscle fibre contractile properties in young and old men and women. J Physiol 2003; 552 (1): 47–58CrossRefPubMed
203.
go back to reference Calhoon G, Fry AC. Injury rates and profiles of elite competitive weightlifters. J Athl Train 1999; 34 (3): 232–8PubMed Calhoon G, Fry AC. Injury rates and profiles of elite competitive weightlifters. J Athl Train 1999; 34 (3): 232–8PubMed
204.
go back to reference Karlsson M, Vergnaud P, Delmas P, et al. Indicators of bone formation in weight lifters. Calcif Tissue Int 1995a; 56 (3): 177–80CrossRefPubMed Karlsson M, Vergnaud P, Delmas P, et al. Indicators of bone formation in weight lifters. Calcif Tissue Int 1995a; 56 (3): 177–80CrossRefPubMed
205.
go back to reference Conroy BP, Kraemer WJ, Maresh CM, et al. Bone mineral density in elite junior Olympic weightlifters. Med Sci Sports Exerc 1993; 25 (10): 1103–9PubMed Conroy BP, Kraemer WJ, Maresh CM, et al. Bone mineral density in elite junior Olympic weightlifters. Med Sci Sports Exerc 1993; 25 (10): 1103–9PubMed
206.
go back to reference Dinç H, Savci G, Demirci A, et al. Quantitative computed tomography for measuring bone mineral density in athletes. Calcif Tissue Int 1996; 58 (6): 398–401CrossRefPubMed Dinç H, Savci G, Demirci A, et al. Quantitative computed tomography for measuring bone mineral density in athletes. Calcif Tissue Int 1996; 58 (6): 398–401CrossRefPubMed
207.
go back to reference Heinonen A, Sievänen H, Kannus P, et al. Site-specific skeletal response to long-term weight training seems to be attributable to principal loading modality: a pQCT study of female weightlifters. Calcif Tissue Int 2002; 70 (6): 469–74CrossRefPubMed Heinonen A, Sievänen H, Kannus P, et al. Site-specific skeletal response to long-term weight training seems to be attributable to principal loading modality: a pQCT study of female weightlifters. Calcif Tissue Int 2002; 70 (6): 469–74CrossRefPubMed
208.
go back to reference Karlsson M, Johnell O, Obrant K. Bone mineral density in weight lifters. Calcif Tissue Int 1993; 52 (3): 212–5CrossRefPubMed Karlsson M, Johnell O, Obrant K. Bone mineral density in weight lifters. Calcif Tissue Int 1993; 52 (3): 212–5CrossRefPubMed
209.
go back to reference Karlsson MK, Johnell O, Obrant KJ. Is bone mineral density advantage maintained long-term in previous weight lifters? Calcif Tissue Int 1995b; 57 (5): 325–8CrossRefPubMed Karlsson MK, Johnell O, Obrant KJ. Is bone mineral density advantage maintained long-term in previous weight lifters? Calcif Tissue Int 1995b; 57 (5): 325–8CrossRefPubMed
210.
go back to reference Haykowsky M, Dressendorfer R, Taylor D, et al. Resistance training and cardiac hypertrophy: unravelling the training effect. Sports Med 2002; 32 (13): 837–49CrossRefPubMed Haykowsky M, Dressendorfer R, Taylor D, et al. Resistance training and cardiac hypertrophy: unravelling the training effect. Sports Med 2002; 32 (13): 837–49CrossRefPubMed
211.
go back to reference Richey P, Brown S. Pathological versus physiological left ventricular hypertrophy: a review. J Sports Sci 1998; 16 (2): 129–41CrossRefPubMed Richey P, Brown S. Pathological versus physiological left ventricular hypertrophy: a review. J Sports Sci 1998; 16 (2): 129–41CrossRefPubMed
212.
go back to reference Grossman W. Cardiac hypertrophy: Useful adaptation or pathologic process? Am J Med 1980; 69 (4): 576–84CrossRefPubMed Grossman W. Cardiac hypertrophy: Useful adaptation or pathologic process? Am J Med 1980; 69 (4): 576–84CrossRefPubMed
213.
go back to reference Abinader E, Sharif D, Sagiv M, et al. The effects of isometric stress on left ventricular filling in athletes with isometric or isotonic training compared to hypertensive and normal controls. Eur Heart J 1996; 17 (3): 457–61CrossRefPubMed Abinader E, Sharif D, Sagiv M, et al. The effects of isometric stress on left ventricular filling in athletes with isometric or isotonic training compared to hypertensive and normal controls. Eur Heart J 1996; 17 (3): 457–61CrossRefPubMed
214.
go back to reference Adler Y, Fisman EZ, Koren-Morag N, et al. Left ventricular diastolic function in trained male weightlifters at rest and during isometric exercise. Am J Cardiol 2008; 102 (1): 97–101CrossRefPubMed Adler Y, Fisman EZ, Koren-Morag N, et al. Left ventricular diastolic function in trained male weightlifters at rest and during isometric exercise. Am J Cardiol 2008; 102 (1): 97–101CrossRefPubMed
215.
go back to reference Brown S, Thompson W. Standardization indices of cardiac hypertrophy in weight lifters. J Sports Sci 1987; 5 (2): 147–53CrossRefPubMed Brown S, Thompson W. Standardization indices of cardiac hypertrophy in weight lifters. J Sports Sci 1987; 5 (2): 147–53CrossRefPubMed
216.
go back to reference Fleck S. Cardiovascular adaptations to resistance training. Med Sci Sports Exerc 1988; 20 (5 Suppl.): 146–51 Fleck S. Cardiovascular adaptations to resistance training. Med Sci Sports Exerc 1988; 20 (5 Suppl.): 146–51
217.
go back to reference Fleck SJ, Henke C, Wilson W. Cardiac MRI of elite junior Olympic weight lifters. Int J Sports Med 1989; 10 (5): 329–33CrossRefPubMed Fleck SJ, Henke C, Wilson W. Cardiac MRI of elite junior Olympic weight lifters. Int J Sports Med 1989; 10 (5): 329–33CrossRefPubMed
218.
go back to reference George KP, Batterham AM, Jones B. Echocardiographic evidence of concentric left ventricular enlargement in female weight lifters. Eur J Appl Physiol Occup Physiol 1998a; 79 (1): 88–92CrossRefPubMed George KP, Batterham AM, Jones B. Echocardiographic evidence of concentric left ventricular enlargement in female weight lifters. Eur J Appl Physiol Occup Physiol 1998a; 79 (1): 88–92CrossRefPubMed
219.
go back to reference George KP, Batterham AM, Jones B. The impact of scalar variable and process on athlete-control comparisons of cardiac dimensions. Med Sci Sports Exerc 1998b; 30 (6): 824–30CrossRefPubMed George KP, Batterham AM, Jones B. The impact of scalar variable and process on athlete-control comparisons of cardiac dimensions. Med Sci Sports Exerc 1998b; 30 (6): 824–30CrossRefPubMed
220.
go back to reference Gibbs R. Performance criteria, telemetered heart rate and enzyme studies in Olympic weight lifting. Br J Sports Med 1977; 11 (2): 88–93CrossRefPubMed Gibbs R. Performance criteria, telemetered heart rate and enzyme studies in Olympic weight lifting. Br J Sports Med 1977; 11 (2): 88–93CrossRefPubMed
221.
go back to reference Lalande S, Baldi J. Left ventricular mass in elite olympic weight lifters. Am J Cardiol 2007; 100 (7): 1177–80CrossRefPubMed Lalande S, Baldi J. Left ventricular mass in elite olympic weight lifters. Am J Cardiol 2007; 100 (7): 1177–80CrossRefPubMed
222.
go back to reference Longhurst JC, Kelly AR, Gonyea WJ, et al. Echocardiographic left ventricular masses in distance runners and weight lifters. J Appl Physiol 1980; 48 (1): 154–62PubMed Longhurst JC, Kelly AR, Gonyea WJ, et al. Echocardiographic left ventricular masses in distance runners and weight lifters. J Appl Physiol 1980; 48 (1): 154–62PubMed
223.
go back to reference Pearson AC, Schiff M, Mrosek D, et al. Left ventricular diastolic function in weight lifters. Am J Cardiol 1986; 58 (13): 1254–9CrossRefPubMed Pearson AC, Schiff M, Mrosek D, et al. Left ventricular diastolic function in weight lifters. Am J Cardiol 1986; 58 (13): 1254–9CrossRefPubMed
224.
go back to reference Pelliccia A, Spataro A, Caselli G, et al. Absence of left ventricular wall thickening in athletes engaged in intense power training. Am J Cardiol 1993; 72 (14): 1048–54CrossRefPubMed Pelliccia A, Spataro A, Caselli G, et al. Absence of left ventricular wall thickening in athletes engaged in intense power training. Am J Cardiol 1993; 72 (14): 1048–54CrossRefPubMed
225.
go back to reference Pluim BM, Zwinderman AH, van der Laarse A, et al. The athlete’s heart: A meta-analysis of cardiac structure and function. Am Heart Assoc 2000; 101: 336–44 Pluim BM, Zwinderman AH, van der Laarse A, et al. The athlete’s heart: A meta-analysis of cardiac structure and function. Am Heart Assoc 2000; 101: 336–44
226.
go back to reference Snoeckx L, Abeling H, Lambregts J, et al. Echocardiographic dimensions in athletes in relation to their training programs. Med Sci Sports Exerc 1982; 14 (6): 428–34CrossRefPubMed Snoeckx L, Abeling H, Lambregts J, et al. Echocardiographic dimensions in athletes in relation to their training programs. Med Sci Sports Exerc 1982; 14 (6): 428–34CrossRefPubMed
227.
go back to reference Stone MH, Wilson GD, Blessing D, et al. Cardiovascular responses to short-term Olympic style weight-training in young men. Can J Appl Sport Sci 1983; 8 (3): 134–9PubMed Stone MH, Wilson GD, Blessing D, et al. Cardiovascular responses to short-term Olympic style weight-training in young men. Can J Appl Sport Sci 1983; 8 (3): 134–9PubMed
228.
go back to reference Fleck SJ, Pattany PM, Stone MH, et al. Magnetic resonance imaging determination of left ventricular mass: junior Olympic weightlifters. Med Sci Sports Exerc 1993; 25 (4): 522–7PubMed Fleck SJ, Pattany PM, Stone MH, et al. Magnetic resonance imaging determination of left ventricular mass: junior Olympic weightlifters. Med Sci Sports Exerc 1993; 25 (4): 522–7PubMed
229.
go back to reference Shapiro L. Physiological left ventricular hypertrophy. Br J Sports Med 1984; 52 (2): 130–5 Shapiro L. Physiological left ventricular hypertrophy. Br J Sports Med 1984; 52 (2): 130–5
230.
go back to reference Farrell PA, Maksud MG, Pollock ML, et al. A comparison of plasma cholesterol, triglycerides. and high density lipoprotein-cholesterol in speed skaters, weightlifters and non-athletes. Eur J Appl Physiol 1982; 48 (1): 77–82CrossRef Farrell PA, Maksud MG, Pollock ML, et al. A comparison of plasma cholesterol, triglycerides. and high density lipoprotein-cholesterol in speed skaters, weightlifters and non-athletes. Eur J Appl Physiol 1982; 48 (1): 77–82CrossRef
231.
go back to reference MacFarlane N, Northridge DB, Wright AR, et al. A comparative study of left ventricular structure and function in elite athletes. Br J Sports Med 1991; 25 (1): 45–8CrossRefPubMed MacFarlane N, Northridge DB, Wright AR, et al. A comparative study of left ventricular structure and function in elite athletes. Br J Sports Med 1991; 25 (1): 45–8CrossRefPubMed
232.
go back to reference Nakao M, Inoue Y, Murakami H. Longitudinal study of the effect of high intensity weight training on aerobic capacity. Eur J Appl Physiol 1995; 70 (1): 20–5CrossRef Nakao M, Inoue Y, Murakami H. Longitudinal study of the effect of high intensity weight training on aerobic capacity. Eur J Appl Physiol 1995; 70 (1): 20–5CrossRef
233.
go back to reference Jost J, Weiss M, Weicker H. Comparison of sympathoadrenergic regulation at rest and of the adrenoceptor system in swimmers, long-distance runners, weight lifters, wrestlers and untrained men. Eur J Appl Physiol Occup Physiol 1989; 58 (6): 596–604CrossRefPubMed Jost J, Weiss M, Weicker H. Comparison of sympathoadrenergic regulation at rest and of the adrenoceptor system in swimmers, long-distance runners, weight lifters, wrestlers and untrained men. Eur J Appl Physiol Occup Physiol 1989; 58 (6): 596–604CrossRefPubMed
234.
go back to reference Armstrong L, Balady GJ, Berry ML, et al. Pre-exercise evaluations. In: Whaley MH, Brubaker PH, Otto RM, editors. ACSM’s guidelines for exercise testing and prescription. 7th ed. Philadelphia (PA): Lippincott Williams & Wilkins, 2006: 39–54 Armstrong L, Balady GJ, Berry ML, et al. Pre-exercise evaluations. In: Whaley MH, Brubaker PH, Otto RM, editors. ACSM’s guidelines for exercise testing and prescription. 7th ed. Philadelphia (PA): Lippincott Williams & Wilkins, 2006: 39–54
235.
go back to reference Cardinale M, Stone MH. Is testosterone influencing explosive performance? J Strength Cond Res 2006; 20 (1): 103–7PubMed Cardinale M, Stone MH. Is testosterone influencing explosive performance? J Strength Cond Res 2006; 20 (1): 103–7PubMed
236.
go back to reference Vingren J, Kraemer W, Ratamess N, et al. Testosterone physiology in resistance exercise and training: the up-stream regulatory elements. Sports Med 2010; 40 (12): 1037–53CrossRefPubMed Vingren J, Kraemer W, Ratamess N, et al. Testosterone physiology in resistance exercise and training: the up-stream regulatory elements. Sports Med 2010; 40 (12): 1037–53CrossRefPubMed
237.
go back to reference Blumert PA, Crum AJ, Ernsting M, et al. The acute effects of twenty-four hours of sleep loss on the performance of National-caliber male collegiate weightlifters. J Strength Cond Res 2007; 21 (4): 1146–54PubMed Blumert PA, Crum AJ, Ernsting M, et al. The acute effects of twenty-four hours of sleep loss on the performance of National-caliber male collegiate weightlifters. J Strength Cond Res 2007; 21 (4): 1146–54PubMed
238.
go back to reference Busso T, Häkkinen K, Pakarinen A, et al. Hormonal adaptations and modelled responses in elite weightlifters during 6 weeks of training. Eur J Appl Physiol Occup Physiol 1992; 64 (4): 381–6CrossRefPubMed Busso T, Häkkinen K, Pakarinen A, et al. Hormonal adaptations and modelled responses in elite weightlifters during 6 weeks of training. Eur J Appl Physiol Occup Physiol 1992; 64 (4): 381–6CrossRefPubMed
239.
go back to reference Fry AC, Kraemer WJ, Stone MH, et al. Relationships between serum testosterone, cortisol, and weightlifting performance. J Strength Cond Res 2000; 14 (3): 338–43CrossRef Fry AC, Kraemer WJ, Stone MH, et al. Relationships between serum testosterone, cortisol, and weightlifting performance. J Strength Cond Res 2000; 14 (3): 338–43CrossRef
240.
go back to reference Izquierdo M, Ibáñez J, Häkkinen K, et al. Maximal strength and power, muscle mass, endurance and serum hormones in weightlifters and road cyclists. J Sports Sci 2004; 22 (5): 465–78CrossRefPubMed Izquierdo M, Ibáñez J, Häkkinen K, et al. Maximal strength and power, muscle mass, endurance and serum hormones in weightlifters and road cyclists. J Sports Sci 2004; 22 (5): 465–78CrossRefPubMed
241.
go back to reference Kraemer WJ, Fry AC, Warren BJ, et al. Acute hormonal responses in elite junior weightlifters. Int J Sports Med 1992; 13 (2): 103–9CrossRefPubMed Kraemer WJ, Fry AC, Warren BJ, et al. Acute hormonal responses in elite junior weightlifters. Int J Sports Med 1992; 13 (2): 103–9CrossRefPubMed
242.
go back to reference Kraemer WJ, Häkkinen K, Newton RU, et al. Acute hormonal responses to heavy resistance exercise in younger and older men. Eur J Appl Physiol Occup Physiol 1998; 77 (3): 206–11CrossRefPubMed Kraemer WJ, Häkkinen K, Newton RU, et al. Acute hormonal responses to heavy resistance exercise in younger and older men. Eur J Appl Physiol Occup Physiol 1998; 77 (3): 206–11CrossRefPubMed
243.
go back to reference Tenover JS. Effects of testosterone supplementation in the aging male. J Clin Endocrinol Metab 1992; 75 (4): 1092–8CrossRefPubMed Tenover JS. Effects of testosterone supplementation in the aging male. J Clin Endocrinol Metab 1992; 75 (4): 1092–8CrossRefPubMed
244.
go back to reference Ahtiainen JP, Pakarinen A, Kraemer WJ, et al. Acute hormonal responses to heavy resistance exercise in strength athletes versus nonathletes. Can J Appl Physiol 2004; 29 (5): 527–43CrossRefPubMed Ahtiainen JP, Pakarinen A, Kraemer WJ, et al. Acute hormonal responses to heavy resistance exercise in strength athletes versus nonathletes. Can J Appl Physiol 2004; 29 (5): 527–43CrossRefPubMed
245.
go back to reference Häkkinen K, Pakarinen A. Acute hormonal responses to two different fatiguing heavy-resistance protocols in male athletes. J Appl Physiol 1993b; 74 (2): 882–7PubMed Häkkinen K, Pakarinen A. Acute hormonal responses to two different fatiguing heavy-resistance protocols in male athletes. J Appl Physiol 1993b; 74 (2): 882–7PubMed
246.
go back to reference Kraemer WJ, Marchitelli L, Gordon SE, et al. Hormonal and growth factor responses to heavy resistance exercise protocols. J Appl Physiol 1990; 69 (4): 1442–50PubMed Kraemer WJ, Marchitelli L, Gordon SE, et al. Hormonal and growth factor responses to heavy resistance exercise protocols. J Appl Physiol 1990; 69 (4): 1442–50PubMed
247.
go back to reference McCaulley GO, McBride JM, Cormie P, et al. Acute hormonal and neuromuscular responses to hypertrophy, strength and power type resistance exercise. Eur J Appl Physiol 2009; 105 (5): 695–704CrossRefPubMed McCaulley GO, McBride JM, Cormie P, et al. Acute hormonal and neuromuscular responses to hypertrophy, strength and power type resistance exercise. Eur J Appl Physiol 2009; 105 (5): 695–704CrossRefPubMed
248.
go back to reference Passelergue P, Robert A, Lac G. Salivary cortisol and testosterone variations during an official and a simulated weight-lifting competition. Int J Sports Med 1995; 16 (5): 298–303CrossRefPubMed Passelergue P, Robert A, Lac G. Salivary cortisol and testosterone variations during an official and a simulated weight-lifting competition. Int J Sports Med 1995; 16 (5): 298–303CrossRefPubMed
249.
go back to reference Bosco C, Colli R, Bonomi R, et al. Monitoring strength training: neuromuscular and hormonal profile. Med Sci Sports Exerc 2000; 32 (1): 202–8PubMed Bosco C, Colli R, Bonomi R, et al. Monitoring strength training: neuromuscular and hormonal profile. Med Sci Sports Exerc 2000; 32 (1): 202–8PubMed
250.
go back to reference Smilios I, Pilianidis T, Karamouzis M, et al. Hormonal responses after various resistance exercise protocols. Med Sci Sports Exerc 2003; 35 (4): 644–54CrossRefPubMed Smilios I, Pilianidis T, Karamouzis M, et al. Hormonal responses after various resistance exercise protocols. Med Sci Sports Exerc 2003; 35 (4): 644–54CrossRefPubMed
251.
go back to reference Fry AC, Kraemer WJ. Resistance exercise overtraining and overreaching. Neuroendocrine responses. Sports Med 1997; 23 (2): 106–29CrossRefPubMed Fry AC, Kraemer WJ. Resistance exercise overtraining and overreaching. Neuroendocrine responses. Sports Med 1997; 23 (2): 106–29CrossRefPubMed
252.
go back to reference Urhausen A, Gabriel H, Kindermann W. Blood hormones as markers of training stress and overtraining. Sports Med 1995; 20 (4): 251–76CrossRefPubMed Urhausen A, Gabriel H, Kindermann W. Blood hormones as markers of training stress and overtraining. Sports Med 1995; 20 (4): 251–76CrossRefPubMed
253.
go back to reference Urhausen A, Kindermann W. Diagnosis of overtraining: What tools do we have? Sports Med 2002; 32 (2): 95–102CrossRefPubMed Urhausen A, Kindermann W. Diagnosis of overtraining: What tools do we have? Sports Med 2002; 32 (2): 95–102CrossRefPubMed
254.
go back to reference Fry AC, Kraemer WJ, Stone MH, et al. Endocrine and performance responses to high volume training and amino acid supplementation in elite junior weightlifters. Int J Sport Nutr 1993; 3 (3): 306–22PubMed Fry AC, Kraemer WJ, Stone MH, et al. Endocrine and performance responses to high volume training and amino acid supplementation in elite junior weightlifters. Int J Sport Nutr 1993; 3 (3): 306–22PubMed
255.
go back to reference Häkkinen K, Pakarinen A, Alen M, et al. Relationships between training volume, physical performance capacity, and serum hormone concentrations during prolonged training in elite weight lifters. Int J Sports Med 1987b; 8 (1): 61–5CrossRefPubMed Häkkinen K, Pakarinen A, Alen M, et al. Relationships between training volume, physical performance capacity, and serum hormone concentrations during prolonged training in elite weight lifters. Int J Sports Med 1987b; 8 (1): 61–5CrossRefPubMed
256.
go back to reference Wu CL, Hung W, Wang SY, et al. Hormonal responses in heavy training and recovery periods in an elite male weightlifter. J Sport Sci Med 2008; 7: 560–1 Wu CL, Hung W, Wang SY, et al. Hormonal responses in heavy training and recovery periods in an elite male weightlifter. J Sport Sci Med 2008; 7: 560–1
257.
go back to reference Häkkinen K, Pakarinen A, Alén M, et al. Serum hormones during prolonged training of neuromuscular performance. Eur J Appl Physiol Occup Physiol 1985; 53 (4): 287–93CrossRefPubMed Häkkinen K, Pakarinen A, Alén M, et al. Serum hormones during prolonged training of neuromuscular performance. Eur J Appl Physiol Occup Physiol 1985; 53 (4): 287–93CrossRefPubMed
258.
go back to reference Stahl F, Dörner G. Responses of salivary cortisol levels to stress-situations. Endokrinologie 1982; 80 (2): 158–62PubMed Stahl F, Dörner G. Responses of salivary cortisol levels to stress-situations. Endokrinologie 1982; 80 (2): 158–62PubMed
259.
go back to reference French DN, Kraemer WJ, Volek JS, et al. Anticipatory responses of catecholamines on muscle force production. J Appl Physiol 2007; 102 (1): 94–102CrossRefPubMed French DN, Kraemer WJ, Volek JS, et al. Anticipatory responses of catecholamines on muscle force production. J Appl Physiol 2007; 102 (1): 94–102CrossRefPubMed
260.
go back to reference Al-Damluji S. Adrenergic mechanisms in the control of corticotrophin secretion. J Endocrinol 1988; 119 (1): 5–14CrossRefPubMed Al-Damluji S. Adrenergic mechanisms in the control of corticotrophin secretion. J Endocrinol 1988; 119 (1): 5–14CrossRefPubMed
261.
go back to reference Kraemer WJ, Ratamess NA. Hormonal responses and adaptations to resistance exercise and training. Sports Med 2005; 35 (4): 339–61CrossRefPubMed Kraemer WJ, Ratamess NA. Hormonal responses and adaptations to resistance exercise and training. Sports Med 2005; 35 (4): 339–61CrossRefPubMed
262.
go back to reference Ahtiainen J, Pakarinen A, Alen M, et al. Muscle hypertrophy, hormonal adaptations and strength development during strength training in strength-trained and untrained men. Eur J Appl Physiol 2003; 89 (6): 555–63CrossRefPubMed Ahtiainen J, Pakarinen A, Alen M, et al. Muscle hypertrophy, hormonal adaptations and strength development during strength training in strength-trained and untrained men. Eur J Appl Physiol 2003; 89 (6): 555–63CrossRefPubMed
263.
go back to reference Godfrey RJ, Madgwick Z, Whyte GP. The exercise- induced growth hormone response in athletes. Sports Med 2003; 33 (8): 599–613CrossRefPubMed Godfrey RJ, Madgwick Z, Whyte GP. The exercise- induced growth hormone response in athletes. Sports Med 2003; 33 (8): 599–613CrossRefPubMed
264.
go back to reference Goto K, Sato K, Takamatsu K. A single set of low intensity resistance exercise immediately following high intensity resistance exercise stimulates growth hormone secretion in men. J Sports Med Phys Fitness 2003; 43 (2): 243–9PubMed Goto K, Sato K, Takamatsu K. A single set of low intensity resistance exercise immediately following high intensity resistance exercise stimulates growth hormone secretion in men. J Sports Med Phys Fitness 2003; 43 (2): 243–9PubMed
265.
go back to reference Kraemer W, Marchitelli L, Gordon S, et al. Hormonal and growth factor responses to heavy resistance exercise protocols. J Appl Physiol 1990; 69 (4): 1442–50PubMed Kraemer W, Marchitelli L, Gordon S, et al. Hormonal and growth factor responses to heavy resistance exercise protocols. J Appl Physiol 1990; 69 (4): 1442–50PubMed
266.
go back to reference Linnamo V, Pakarinen A, Komi PV, et al. Acute hormonal responses to submaximal and maximal heavy resistance and explosive exercises in men and women. J Strength Cond Res 2005; 19 (3): 566–71PubMed Linnamo V, Pakarinen A, Komi PV, et al. Acute hormonal responses to submaximal and maximal heavy resistance and explosive exercises in men and women. J Strength Cond Res 2005; 19 (3): 566–71PubMed
267.
go back to reference Taylor JM, Thompson HS, Clarkson PM, et al. Growth hormone response to an acute bout of resistance exercise in weight-trained and non-weight-trained women. J Strength Cond Res 2000; 14 (2): 220–7 Taylor JM, Thompson HS, Clarkson PM, et al. Growth hormone response to an acute bout of resistance exercise in weight-trained and non-weight-trained women. J Strength Cond Res 2000; 14 (2): 220–7
Metadata
Title
Unique Aspects of Competitive Weightlifting
Performance, Training and Physiology
Authors
Adam Storey
Heather K. Smith
Publication date
01-09-2012
Publisher
Springer International Publishing
Published in
Sports Medicine / Issue 9/2012
Print ISSN: 0112-1642
Electronic ISSN: 1179-2035
DOI
https://doi.org/10.1007/BF03262294

Other articles of this Issue 9/2012

Sports Medicine 9/2012 Go to the issue