Variability in fibre properties in paralysed human quadriceps muscles and effects of training
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A. de Haan | B. Engelen | A. Sargeant | D. Jones | M. Hopman | A. Haan | C. Offringa | H. L. Gerrits | M. T. E. Hopman | C. Offringa | B. G. M. van Engelen | A. J. Sargeant | D. A. Jones | M. Hopman | H. Gerrits | B.G.M. van Engelen
[1] P. London. Injury , 1969, Definitions.
[2] David A Jones,et al. Contractile properties of the quadriceps muscle in individuals with spinal cord injury , 1999, Muscle & nerve.
[3] R. Stein,et al. Skeletal muscle fibre type transformation following spinal cord injury , 1997, Spinal Cord.
[4] G. Vrbóva,et al. Adaptation of mammalian skeletal muscle fibers to chronic electrical stimulation. , 1992, Reviews of physiology, biochemistry and pharmacology.
[5] C. Bouchard,et al. Human variation in skeletal muscle fiber-type proportion and enzyme activities. , 1989, The American journal of physiology.
[6] K. Castleman,et al. Quantitative histochemical determination of muscle enzymes: biochemical verification. , 1985, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[7] R. Stein,et al. Influence of electrical stimulation on the morphological and metabolic properties of paralyzed muscle. , 1992, Journal of applied physiology.
[8] C. Crone,et al. High expression of MHC I in the tibialis anterior muscle of a paraplegic patient , 1999, Muscle & nerve.
[9] W. Donovan,et al. The International Standards Booklet for Neurological and Functional Classification of Spinal Cord Injury , 1994, Paraplegia.
[10] M. Brooke,et al. Muscle fiber types: how many and what kind? , 1970, Archives of neurology.
[11] R. Talmadge,et al. Myosin heavy chain isoform expression following reduced neuromuscular activity: Potential regulatory mechanisms , 2000, Muscle & nerve.
[12] D. Pette,et al. Mammalian skeletal muscle fiber type transitions. , 1997, International review of cytology.
[13] M. A. Johnson,et al. Influence of electrical stimulation of the tibialis anterior muscle in paraplegic subjects. 1. Contractile properties , 1995, Paraplegia.
[14] David A Jones,et al. Effects of training on contractile properties of paralyzed quadriceps muscle , 2002, Muscle & nerve.
[15] C. Reggiani,et al. Force‐velocity properties of human skeletal muscle fibres: myosin heavy chain isoform and temperature dependence. , 1996, The Journal of physiology.
[16] R. Waters,et al. International Standards for Neurological and Functional Classification of Spinal Cord Injury , 1997, Spinal Cord.
[17] R. Thériault,et al. Electrical stimulation-induced changes in performance and fiber type proportion of human knee extensor muscles , 1996, European Journal of Applied Physiology and Occupational Physiology.
[18] S. Powers,et al. Exercise-induced alterations in skeletal muscle myosin heavy chain phenotype: dose-response relationship. , 1999, Journal of applied physiology.
[19] J. Jeon,et al. Histochemical changes in muscle of individuals with spinal cord injury following functional electrical stimulated exercise training , 1999, Spinal Cord.
[20] J. F. Yang,et al. Optimal stimulation of paralyzed muscle after human spinal cord injury. , 1992, Journal of applied physiology.
[21] L. Larsson,et al. Maximum velocity of shortening in relation to myosin isoform composition in single fibres from human skeletal muscles. , 1993, The Journal of physiology.
[22] C. Bouchard,et al. Skeletal muscle histochemical and biochemical characteristics in sedentary male and female subjects. , 1985, Canadian journal of physiology and pharmacology.
[23] M. A. Johnson,et al. Influence of electrical stimulation of the tibialis anterior muscle in paraplegic subjects. 2. Morphological and histochemical properties , 1995, Paraplegia.
[24] S. I. Rosenthal,et al. SIRIUS RED F3BA AS A STAIN FOR CONNECTIVE TISSUE. , 1964, Archives of pathology.
[25] C. Reggiani,et al. Molecular diversity of myofibrillar proteins: gene regulation and functional significance. , 1996, Physiological reviews.
[26] S. Salmons. Exercise, Stimulation and Type Transformation of Skeletal Muscle , 1994, International Journal of Sports Medicine.
[27] R. Colman,et al. Morphologic differences in skeletal muscle with age in normally active human males and their well-trained counterparts. , 1990, Human biology.
[28] F. Biering-Sørensen,et al. Myosin heavy chain isoform transformation in single fibres from m. vastus lateralis in spinal cord injured individuals: Effects of long-term functional electrical stimulation (FES) , 1996, Pflügers Archiv.
[29] D. Pette,et al. J.B. Wolffe memorial lecture. Activity-induced fast to slow transitions in mammalian muscle. , 1984, Medicine and science in sports and exercise.
[30] R. Thériault,et al. Electrical stimulation-induced changes in skeletal muscle enzymes of men and women. , 1992, Medicine and science in sports and exercise.
[31] R. Thériault,et al. Human skeletal muscle adaptation in response to chronic low-frequency electrical stimulation. , 1994, Journal of applied physiology.