In vivo alterations in skeletal muscle form and function after disuse atrophy.
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[1] William J Kraemer,et al. Neural factors account for strength decrements observed after short-term muscle unloading. , 2002, American journal of physiology. Regulatory, integrative and comparative physiology.
[2] R. Fitts,et al. Substrate profile in rat soleus muscle fibers after hindlimb unloading and fatigue. , 2000, Journal of applied physiology.
[3] S. Kandarian,et al. The molecular basis of skeletal muscle atrophy. , 2004, American journal of physiology. Cell physiology.
[4] T. Fukunaga,et al. Changes in muscle size, architecture, and neural activation after 20 days of bed rest with and without resistance exercise , 2001, European Journal of Applied Physiology.
[5] C. Franklin,et al. Maintaining muscle mass during extended disuse: aestivating frogs as a model species. , 2002, The Journal of experimental biology.
[6] T. Fukunaga,et al. Strength training counteracts motor performance losses during bed rest. , 2003, Journal of applied physiology.
[7] B. Saltin,et al. The effect of ageing and immobilization on structure and function of human skeletal muscle fibres. , 2003, The Journal of physiology.
[8] R. Enoka,et al. Limb immobilization alters muscle activation patterns during a fatiguing isometric contraction , 2000, Muscle & nerve.
[9] R. Enoka,et al. Short-term immobilization has a minimal effect on the strength and fatigability of a human hand muscle. , 1995, Journal of applied physiology.
[10] B. Clark,et al. Immobilization‐induced increase in fatigue resistance is not explained by changes in the muscle metaboreflex , 2008, Muscle & nerve.
[11] C. Pientok,et al. Regional changes in muscle mass following 17 weeks of bed rest. , 1992, Journal of applied physiology.
[12] B. Clark,et al. Adaptations in human neuromuscular function following prolonged unweighting: I. Skeletal muscle contractile properties and applied ischemia efficacy. , 2006, Journal of applied physiology.
[13] B. Clark,et al. Effect of prolonged unweighting of human skeletal muscle on neuromotor force control , 2007, European Journal of Applied Physiology.
[14] C. Maganaris,et al. Influence of 90-day simulated microgravity on human tendon mechanical properties and the effect of resistive countermeasures. , 2005, Journal of applied physiology.
[15] R. Enoka,et al. Muscle fatigue: what, why and how it influences muscle function , 2008, The Journal of physiology.
[16] C. Maganaris,et al. Time course of muscular, neural and tendinous adaptations to 23 day unilateral lower‐limb suspension in young men , 2007 .
[17] R M Enoka,et al. Gender differences in the fatigability of human skeletal muscle. , 1999, Journal of neurophysiology.
[18] K. Seki,et al. Alterations in contractile properties of human skeletal muscle induced by joint immobilization , 2001, The Journal of physiology.
[19] P. D. di Prampero,et al. Soleus T reflex modulation in response to spinal and tendinous adaptations to unilateral lower limb suspension in humans , 2008, Acta physiologica.
[20] T. Mano,et al. Muscle sympathetic nerve activity during handgrip and post-handgrip muscle ischemia after exposure to simulated microgravity in humans , 2000, Neuroscience Letters.
[21] M. Tarnopolsky,et al. Sex-based differences in skeletal muscle function and morphology with short-term limb immobilization. , 2005, Journal of applied physiology.
[22] Motoki Kouzaki,et al. Modulation of muscle activity and force fluctuations in the plantarflexors after bedrest depends on knee position , 2007, Muscle & nerve.
[23] B. Clark,et al. Neuromuscular plasticity during and following 3 wk of human forearm cast immobilization. , 2008, Journal of applied physiology.
[24] S. Bolanowski,et al. Adaptations in human neuromuscular function following prolonged unweighting: II. Neurological properties and motor imagery efficacy. , 2006, Journal of applied physiology.
[25] G. Lynch. Therapies for Improving Muscle Function in Neuromuscular Disorders , 2001, Exercise and sport sciences reviews.
[26] J. Petit,et al. Effects of immobilizing the cat peroneus longus muscle on the activity of its own spindles. , 1993, Journal of applied physiology.
[27] R. Fitts,et al. Physiology of a microgravity environment invited review: microgravity and skeletal muscle. , 2000, Journal of applied physiology.
[28] Patrick Ragert,et al. Contribution of transcranial magnetic stimulation to the understanding of cortical mechanisms involved in motor control , 2008, The Journal of physiology.
[29] K M Baldwin,et al. Substrate oxidation capacity in rodent skeletal muscle: effects of exposure to zero gravity. , 1993, Journal of applied physiology.
[30] D. Stegeman,et al. Knee extensor fatigability after bedrest for 8 weeks with and without countermeasure , 2007, Muscle & nerve.
[31] J. Nielsen,et al. Immobilization induces changes in presynaptic control of group Ia afferents in healthy humans , 2008, The Journal of physiology.
[32] B. Clark,et al. Restoration of voluntary muscle strength after 3 weeks of cast immobilization is suppressed in women compared with men. , 2009, Archives of physical medicine and rehabilitation.
[33] D. Heil,et al. Prior resistance training and sex influence muscle responses to arm suspension. , 2005, Medicine and science in sports and exercise.
[34] K. Gundersen,et al. Nuclear domains during muscle atrophy: nuclei lost or paradigm lost? , 2008, The Journal of physiology.
[35] V. Convertino,et al. Alterations of the in vivo torque-velocity relationship of human skeletal muscle following 30 days exposure to simulated microgravity. , 1989, Aviation, space, and environmental medicine.
[36] S. Kandarian,et al. Molecular Events in Skeletal Muscle During Disuse Atrophy , 2002, Exercise and sport sciences reviews.
[37] J. Hayano,et al. Bed rest attenuates sympathetic and pressor responses to isometric exercise in antigravity leg muscles in humans. , 2004, American journal of physiology. Regulatory, integrative and comparative physiology.
[38] Á. Pascual-Leone,et al. Transcranial magnetic stimulation in neurology , 2003, The Lancet Neurology.
[39] R. Fitts,et al. Decreased thin filament density and length in human atrophic soleus muscle fibers after spaceflight. , 2000, Journal of applied physiology.
[40] M. Bilodeau,et al. Task‐dependent effect of limb immobilization on the fatigability of the elbow flexor muscles in humans , 1997, Experimental physiology.
[41] V A Convertino,et al. Structural and metabolic characteristics of human skeletal muscle following 30 days of simulated microgravity. , 1989, Aviation, space, and environmental medicine.
[42] M. Nalls,et al. Reduced physical activity increases intermuscular adipose tissue in healthy young adults. , 2007, The American journal of clinical nutrition.
[43] K. Seki,et al. Reduction in maximal firing rate of motoneurons after 1-week immobilization of finger muscle in human subjects. , 2007, Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology.
[44] Matthew Harber,et al. Human single muscle fibre function with 84 day bed‐rest and resistance exercise , 2004, The Journal of physiology.
[45] G. Dudley,et al. Work capacity and metabolic and morphologic characteristics of the human quadriceps muscle in response to unloading. , 1993, Clinical physiology.
[46] M. Rennie,et al. Exercise- and nutrient-controlled mechanisms involved in maintenance of the musculoskeletal mass. , 2007, Biochemical Society transactions.
[47] J. W. Veldhuizen,et al. Functional and morphological adaptations following four weeks of knee immobilization. , 1993, International journal of sports medicine.
[48] E. Hasser,et al. Hindlimb unweighting decreases ecNOS gene expression and endothelium-dependent dilation in rat soleus feed arteries. , 1999, Journal of applied physiology.
[49] P M Clarkson,et al. Muscle function at the wrist following 9 d of immobilization and suspension. , 1994, Medicine and science in sports and exercise.
[50] Peng Zhang,et al. Signaling mechanisms involved in disuse muscle atrophy. , 2007, Medical hypotheses.
[51] D F Doerr,et al. Changes in volume, muscle compartment, and compliance of the lower extremities in man following 30 days of exposure to simulated microgravity. , 1989, Aviation, space, and environmental medicine.
[52] T. Hamaoka,et al. Deterioration of muscle function after 21-day forearm immobilization. , 2003, Medicine and science in sports and exercise.
[53] R. Enoka,et al. Muscle Fatigue and the Mechanisms of Task Failure , 2004, Exercise and sport sciences reviews.
[54] P. Clarkson,et al. Immobilization effects in young and older adults , 2006, European Journal of Applied Physiology.