Muscle hypertrophy and fast fiber type conversions in heavy resistance-trained women
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G. A. Dudley | G. Dudley | J. Falkel | R. Staron | F. Hagerman | J. E. Falkel | R. S. Staron | E. S. Malicky | M. J. Leonardi | F. C. Hagerman | M. Leonardi
[1] P. Clarkson,et al. Muscle Soreness and Serum Creatine Kinase Activity Following Isometric, Eccentric, and Concentric Exercise , 1985, International journal of sports medicine.
[2] E. Coyle,et al. Comparison of muscle fiber typing by quantitative enzyme assays and by myosin ATPase staining. , 1984, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[3] J. Bergstrom. MUSCLE ELECTROLYTES IN MAN DETERMINED BY NEUTRON ACTIVATION ANALYSIS ON NEEDLE BIOPSY SPECIMENS , 1962 .
[4] P. Tesch. Acute and Long-Term Metabolic Changes Consequent to Heavy-Resistance Exercise , 1987 .
[5] P. Schantz,et al. Training‐induced increase in myofibrillar ATPase intermediate fibers in human skeletal muscle , 1982, Muscle & nerve.
[6] J. Wilmore,et al. The effects of maximal resistance training on the strength and body composition of women athletes. , 1974, Medicine and science in sports.
[7] E. Coyle,et al. Adaptations in skeletal muscle following strength training. , 1979, Journal of applied physiology: respiratory, environmental and exercise physiology.
[8] M. Brooke,et al. THREE "MYOSIN ADENOSINE TRIPHOSPHATASE" SYSTEMS: THE NATURE OF THEIR pH LABILITY AND SULFHYDRYL DEPENDENCE , 1970, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[9] R. Hickson,et al. Strength training effects on aerobic power and short-term endurance. , 1980, Medicine and science in sports and exercise.
[10] F. Ingjer. Effects of endurance training on muscle fibre ATP‐ase activity, capillary supply and mitochondrial content in man. , 1979, The Journal of physiology.
[11] Glycogen depletion patterns during continuous and intermittent ice skating. , 1978, Medicine and science in sports.
[12] H. Howald,et al. Training-Induced Morphological and Functional Changes in Skeletal Muscle , 1982, International journal of sports medicine.
[13] P. Schantz,et al. Increases in myofibrillar ATPase intermediate human skeletal muscle fibers in response to endurance training , 1983, Muscle & nerve.
[14] T. Moritani,et al. Neural factors versus hypertrophy in the time course of muscle strength gain. , 1979, American journal of physical medicine.
[15] D. A. Ranney,et al. Muscle performance, morphology and metabolic capacity during strength training and detraining: A one leg model , 2004, European Journal of Applied Physiology and Occupational Physiology.
[16] K. Häkkinen,et al. Enzymatic adaptations consequent to long-term strength training. , 1987, International journal of sports medicine.
[17] Roger M. Enoka,et al. Muscle Strength and Its Development , 1988, Sports medicine.
[18] M. Sjöström,et al. Myofibrillar Damage Following Intense Eccentric Exercise in Man , 1983, International journal of sports medicine.
[19] D. Sale,et al. Effects of strength training and immobilization on human muscle fibres , 1980, European Journal of Applied Physiology and Occupational Physiology.
[20] G. Birgegard,et al. Detection of Autologous Blood Transfusions in Cross-Country Skiers , 1987, International journal of sports medicine.
[21] L. Larsson,et al. Effects of the interval between removal and freezing of muscle biopsies on muscle fibre size , 1988, Journal of the Neurological Sciences.
[22] F. Apple,et al. Skeletal muscle creatine kinase MB alterations in women marathon runners , 2004, European Journal of Applied Physiology and Occupational Physiology.
[23] A. Thorstensson. Observations on strength training and detraining. , 1977, Acta physiologica Scandinavica.
[24] T. Häggmark,et al. Fiber Type Area and Metabolic Potential of the Thigh Muscle in Man After Knee Surgery and Immobilization* , 1981, International journal of sports medicine.
[25] P. Willan,et al. Variability of histochemical and morphometric data from needle biopsy specimens of human quadriceps femoris muscle , 1984, Journal of the Neurological Sciences.
[26] A S Jackson,et al. Generalized equations for predicting body density of women. , 1980, Medicine and science in sports and exercise.
[27] D. Sale,et al. Mitochondrial volume density in human skeletal muscle following heavy resistance training. , 1979, Medicine and science in sports.
[28] W. Evans,et al. Suction applied to a muscle biopsy maximizes sample size. , 1982, Medicine and science in sports and exercise.
[29] D. Cunningham,et al. Urinary catecholamine excretion during competition in 11 to 23 year old hockey players. , 1978, Medicine and science in sports.
[30] H. Reichmann,et al. A comparative microphotometric study of succinate dehydrogenase activity levels in type I, IIA and IIB fibres of mammalian and human muscles , 2004, Histochemistry.
[31] F. Booth,et al. Biochemical adaptations to endurance exercise in muscle. , 1976, Annual review of physiology.
[32] D. Pette,et al. The multiplicity of combinations of myosin light chains and heavy chains in histochemically typed single fibres. Rabbit tibialis anterior muscle. , 1987, The Biochemical journal.
[33] D. Costill,et al. Muscle fiber necrosis associated with human marathon runners , 1983, Journal of the Neurological Sciences.
[34] P. Vock,et al. Structural Changes in Skeletal Muscle Tissue with Heavy-Resistance Exercise* , 1986, International journal of sports medicine.
[35] J. DeLany,et al. Serum and urinary markers of skeletal muscle tissue damage after weight lifting exercise , 2004, European Journal of Applied Physiology and Occupational Physiology.
[36] C. Davies,et al. Adaptive response of mammalian skeletal muscle to exercise with high loads , 1984, European Journal of Applied Physiology and Occupational Physiology.
[37] D. Sale,et al. Muscle ultrastructural characteristics of elite powerlifters and bodybuilders , 2004, European Journal of Applied Physiology and Occupational Physiology.
[38] C. Bouchard,et al. Human skeletal muscle fiber type alteration with high-intensity intermittent training , 2004, European Journal of Applied Physiology and Occupational Physiology.
[39] P. Tesch,et al. Muscle capillary supply and fiber type characteristics in weight and power lifters. , 1984, Journal of applied physiology: respiratory, environmental and exercise physiology.
[40] M. Houston,et al. Fiber composition, fiber size and enzyme activities in vastus lateralis of elite athletes involved in high intensity exercise , 1979, European Journal of Applied Physiology and Occupational Physiology.
[41] D. Pette,et al. The multiplicity of combinations of myosin light chains and heavy chains in histochemically typed single fibres. Rabbit soleus muscle. , 1987, The Biochemical journal.
[42] W. Engel,et al. “Type grouping” in skeletal muscles after experimental reinnervation , 1968, Neurology.
[43] P. Tesch,et al. Changes in muscle fibre type distribution in man after physical training. A sign of fibre type transformation? , 1978, Acta physiologica Scandinavica.
[44] J. Pivarnik,et al. Urinary 3-methylhistidine excretion increases with repeated weight training exercise. , 1989, Medicine & Science in Sports & Exercise.
[45] M. Sjöström,et al. A morphological study of delayed muscle soreness , 1981, Experientia.
[46] T. Häggmark,et al. Hypotrophy of the soleus muscle in man after Achilles tendon rupture , 1979, The American journal of sports medicine.
[47] B. Saltin,et al. Skeletal Muscle Adaptability: Significance for Metabolism and Performance , 1985 .
[48] H. Hoppeler,et al. Exercise-Induced Ultrastructural Changes in Skeletal Muscle* , 1986, International journal of sports medicine.
[49] P. Andersen,et al. Training induced changes in the subgroups of human type II skeletal muscle fibres. , 1977, Acta physiologica Scandinavica.
[50] M. Houston,et al. Muscle glycogen depletion patterns in fast twitch fibre subgroups of man during submaximal and supramaximal exercise , 1979, Pflügers Archiv.
[51] O. Rutherford,et al. Physiological changes in skeletal muscle as a result of strength training. , 1989, Quarterly journal of experimental physiology.
[52] H. Hoppeler,et al. Influences of endurance training on the ultrastructural composition of the different muscle fiber types in humans , 1985, Pflügers Archiv.
[53] K. R. Mills,et al. Ultrastructural changes after concentric and eccentric contractions of human muscle , 1983, Journal of the Neurological Sciences.
[54] Björn Ekblom,et al. Sublethal muscle fibre injuries after high-tension anaerobic exercise , 2004, European Journal of Applied Physiology and Occupational Physiology.
[55] R. Staron,et al. Myofibrillar ATPase activity in human muscle fast-twitch subtypes , 2004, Histochemistry.
[56] N. Vøllestad,et al. Muscle glycogen depletion patterns in type I and subgroups of type II fibres during prolonged severe exercise in man. , 1984, Acta physiologica Scandinavica.
[57] E Jansson,et al. FIBER TYPES AND METABOLIC POTENTIALS OF SKELETAL MUSCLES IN SEDENTARY MAN AND ENDURANCE RUNNERS * , 1977, Annals of the New York Academy of Sciences.
[58] L. Eriksen,et al. The ether soluble porphyrins found in the urine of normal man and rabbit. , 1962, Scandinavian journal of clinical and laboratory investigation.
[59] E. Blomstrand,et al. The needle biopsy technique for fibre type determination in human skeletal muscle--a methodological study. , 1982, Acta physiologica Scandinavica.
[60] L. Kaijser,et al. Muscle adaptation to extreme endurance training in man. , 1977, Acta physiologica Scandinavica.
[61] J H Wilmore,et al. Alterations in strength, body composition and anthropometric measurements consequent to a 10-week weight training program. , 1974, Medicine and science in sports.
[62] D. Pette,et al. Correlation between myofibrillar ATPase activity and myosin heavy chain composition in rabbit muscle fibers , 2004, Histochemistry.
[63] G. Dudley,et al. Human skeletal muscle fiber type adaptability to various workloads. , 1984, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[64] N. Vøllestad,et al. Effect of varying exercise intensity on glycogen depletion in human muscle fibres. , 1985, Acta physiologica Scandinavica.
[65] Wilmore Jh,et al. The effects of maximal resistance training on the strength and body composition of women athletes. , 1974 .
[66] J. Mayhew,et al. Body composition changes in young women with high resistance weight training. , 1974, Research quarterly.
[67] R. Staron,et al. Reevaluation of human muscle fast-twitch subtypes: evidence for a continuum , 1983, Histochemistry.
[68] M. Schaub,et al. Exercise training induces transitions of myosin isoform subunits within histochemically typed human muscle fibres , 1987, Pflügers Archiv.
[69] J. Wegner,et al. Power Weight Training and the Female Athlete. , 1981, The Physician and sportsmedicine.
[70] D G Sale,et al. Voluntary strength and muscle characteristics in untrained men and women and male bodybuilders. , 1987, Journal of applied physiology.
[71] L. Larsson,et al. Effects of long‐term physical training and detraining on enzyme histochemical and functional skeletal muscle characteristics in man , 1985, Muscle & nerve.
[72] A. Thorstensson,et al. Effect of strength training on enzyme activities and fibre characteristics in human skeletal muscle. , 1976, Acta physiologica Scandinavica.
[73] M. A. Collins,et al. Muscle hypertrophy in men and women. , 1988, Medicine and science in sports and exercise.
[74] P. Tesch,et al. Muscle metabolism during intense, heavy-resistance exercise , 2004, European Journal of Applied Physiology and Occupational Physiology.
[75] B. Essén. Glycogen depletion of different fibre types in human skeletal muscle during intermittent and continuous exercise. , 1978, Acta physiologica Scandinavica.
[76] D. Sale,et al. Biochemical adaptation of human skeletal muscle to heavy resistance training and immobilization. , 1977, Journal of applied physiology: respiratory, environmental and exercise physiology.