Effect of repetitive stimulation on cell volume and its relationship to membrane potential in amphibian skeletal muscle
暂无分享,去创建一个
[1] C. Huang,et al. Slow volume transients in amphibian skeletal muscle fibres studied in hypotonic solutions , 2005, The Journal of physiology.
[2] C. Huang,et al. The effect of intracellular acidification on the relationship between cell volume and membrane potential in amphibian skeletal muscle , 2005, The Journal of physiology.
[3] J. Fraser,et al. A quantitative analysis of cell volume and resting potential determination and regulation in excitable cells , 2004, The Journal of physiology.
[4] E. Ferenczi,et al. Membrane potential stabilization in amphibian skeletal muscle fibres in hypertonic solutions , 2004, The Journal of physiology.
[5] J. Skepper,et al. The tubular vacuolation process in amphibian skeletal muscle , 1998, Journal of Muscle Research & Cell Motility.
[6] F. Gallagher,et al. Osmotic ’detubulation‘ in frog muscle arises from a reversible vacuolation process , 1997, Journal of Muscle Research & Cell Motility.
[7] C. Juel. Potassium and sodium shifts during in vitro isometric muscle contraction, and the time course of the ion-gradient recovery , 1986, Pflügers Archiv.
[8] P. Donaldson,et al. Intracellular ionic activities in the EDL muscle of the mouse , 1984, Pflügers Archiv.
[9] N. Kriz,et al. Work-induced potassium changes in skeletal muscle and effluent venous blood assessed by liquid ion-exchanger microelectrodes , 1976, Pflügers Archiv.
[10] R. Foppen. In skeletal muscle the relaxation of the resting membrane potential induced by K+ permeability changes depends on Cl− transport , 2003, Pflügers Archiv.
[11] D. Stephenson,et al. Tubular system volume changes in twitch fibres from toad and rat skeletal muscle assessed by confocal microscopy , 2002, The Journal of physiology.
[12] J. V. van Heukelom,et al. Effects of chloride transport on bistable behaviour of the membrane potential in mouse skeletal muscle. , 2002, The Journal of physiology.
[13] H. Langberg,et al. Interstitial and arterial‐venous [K+] in human calf muscle during dynamic exercise: effect of ischaemia and relation to muscle pain , 2000, The Journal of physiology.
[14] J. Bangsbo,et al. Interstitial K(+) in human skeletal muscle during and after dynamic graded exercise determined by microdialysis. , 2000, American journal of physiology. Regulatory, integrative and comparative physiology.
[15] G Sjøgaard,et al. Dynamics and consequences of potassium shifts in skeletal muscle and heart during exercise. , 2000, Physiological reviews.
[16] D. Thomason,et al. Molecular and functional evidence for Na+-K+-2Cl- cotransporter expression in rat skeletal muscle. , 1999, American journal of physiology. Regulatory, integrative and comparative physiology.
[17] P. J. Griffiths,et al. Volume changes of the myosin lattice resulting from repetitive stimulation of single muscle fibers. , 1998, Biophysical journal.
[18] C. Juel,et al. Muscle pH regulation: role of training. , 1998, Acta physiologica Scandinavica.
[19] F. Lang,et al. The Diversity of Volume Regulatory Mechanisms , 1998, Cellular Physiology and Biochemistry.
[20] P. D. Watson,et al. Measurement of tissue volume during non-steady state high-intensity muscle contraction. , 1996, The American journal of physiology.
[21] R. Fitts,et al. Effects of fatiguing stimulation on intracellular Na+ and K+ in frog skeletal muscle. , 1996, Journal of applied physiology.
[22] R. Ruff. Sodium channel slow inactivation and the distribution of sodium channels on skeletal muscle fibres enable the performance properties of different skeletal muscle fibre types. , 1996, Acta physiologica Scandinavica.
[23] L. Ploutz-Snyder,et al. Resistance exercise-induced fluid shifts: change in active muscle size and plasma volume. , 1995, The American journal of physiology.
[24] J. Hallén,et al. K+ shifts of skeletal muscle during stepwise bicycle exercise with and without beta‐adrenoceptor blockade. , 1994, The Journal of physiology.
[25] P. D. Watson,et al. Water uptake in stimulated cat skeletal muscle. , 1993, The American journal of physiology.
[26] U. Krause,et al. Metabolic changes in skeletal muscle of frog during exercise and recovery. , 1991, Biochemical Society transactions.
[27] G. Heigenhauser,et al. The roles of ion fluxes in skeletal muscle fatigue. , 1991, Canadian journal of physiology and pharmacology.
[28] E. Potchen,et al. Direct relationship between proton T2 and exercise intensity in skeletal muscle MR images. , 1990, Investigative radiology.
[29] G Sjøgaard,et al. Exercise-induced muscle fatigue: the significance of potassium. , 1990, Acta physiologica Scandinavica. Supplementum.
[30] H. Westerblad,et al. Force and membrane potential during and after fatiguing, intermittent tetanic stimulation of single Xenopus muscle fibres. , 1986, Acta physiologica Scandinavica.
[31] G. Sjøgaard,et al. Water and ion shifts in skeletal muscle of humans with intense dynamic knee extension. , 1985, The American journal of physiology.
[32] G. Sjøgaard. Electrolytes in slow and fast muscle fibers of humans at rest and with dynamic exercise. , 1983, The American journal of physiology.
[33] Vaughan-Jones Rd. Chloride activity and its control in skeletal and cardiac muscle. , 1982 .
[34] R. Vaughan-Jones. Chloride activity and its control in skeletal and cardiac muscle. , 1982, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[35] A. Gilai,et al. Structural changes in single muscle fibers after stimulation at a low frequency , 1979, The Journal of general physiology.
[36] C. Peracchia,et al. FIXATION BY MEANS OF GLUTARALDEHYDE-HYDROGEN PEROXIDE REACTION PRODUCTS , 1972, The Journal of cell biology.
[37] J. Lundvall. Tissue hyperosmolality as a mediator of vasodilatation and transcapillary fluid flux in exercising skeletal muscle. , 1972, Acta physiologica Scandinavica. Supplementum.
[38] J. R. Blinks. Influence of osmotic strength on cross‐section and volume of isolated single muscle fibres , 1965, The Journal of physiology.
[39] A. Hodgkin,et al. The effect of sudden changes in ionic concentrations on the membrane potential of single muscle fibres , 1960, The Journal of physiology.
[40] D. Noble,et al. The chloride conductance of frog skeletal muscle , 1960, The Journal of physiology.
[41] R. H. Adrian. Potassium chloride movement and the membrane potential of frog muscle , 1960, The Journal of physiology.
[42] O. Hutter,et al. Effect of nitrate and other anions on the membrane resistance of frog skeletal muscle , 1959, The Journal of physiology.
[43] R. Creese,et al. Potassium movements in contracting diaphragm muscle , 1958, The Journal of physiology.
[44] R. H. Adrian,et al. The effect of internal and external potassium concentration on the membrane potential of frog muscle , 1956, The Journal of physiology.
[45] E. Conway,et al. Potassium accumulation in muscle and associated changes 1 , 1941 .
[46] E J Conway,et al. Potassium accumulation in muscle and associated changes. , 1941, The Journal of physiology.
[47] A. Hill,et al. Anaerobic and Aerobic Activity in Isolated Muscle , 1929 .