Muscle fatigue: lactic acid or inorganic phosphate the major cause?
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[1] R. Woledge,et al. The effect of metabolic fuel on force production and resting inorganic phosphate levels in mouse skeletal muscle. , 1993, The Journal of physiology.
[2] G. Lamb,et al. Effects of creatine phosphate and P(i) on Ca2+ movements and tension development in rat skinned skeletal muscle fibres. , 1995, The Journal of physiology.
[3] H. Westerblad,et al. The effect of intracellular pH on contractile function of intact, single fibres of mouse muscle declines with increasing temperature. , 1997, The Journal of physiology.
[4] G. Lamb,et al. L(+)-lactate does not affect twitch and tetanic responses in mechanically skinned mammalian muscle fibres , 2001, Pflügers Archiv.
[5] H. Westerblad,et al. Inhibition of creatine kinase reduces the rate of fatigue‐induced decrease in tetanic [Ca2+]i in mouse skeletal muscle , 2001, The Journal of physiology.
[6] A. Duke,et al. Characteristics of phosphate-induced Ca(2+) efflux from the SR in mechanically skinned rat skeletal muscle fibers. , 2000, American journal of physiology. Cell physiology.
[7] K. Ranatunga,et al. Effects of acidosis on tension development in mammalian skeletal muscle , 1987, Muscle & nerve.
[8] P. Chase,et al. Effect of intracellular pH on force development depends on temperature in intact skeletal muscle from mouse. , 1996, The American journal of physiology.
[9] D. Laver,et al. ATP inhibition and rectification of a Ca2+-activated anion channel in sarcoplasmic reticulum of skeletal muscle. , 1998, Biophysical journal.
[10] C. Louis,et al. Mechanisms of Pi regulation of the skeletal muscle SR Ca2+ release channel , 2000 .
[11] Mechanisms of P(i) regulation of the skeletal muscle SR Ca(2+) release channel. , 2000, American journal of physiology. Cell physiology.
[12] D. Allen,et al. The use of the indicator fluo‐5N to measure sarcoplasmic reticulum calcium in single muscle fibres of the cane toad , 2001, The Journal of physiology.
[13] H. Westerblad,et al. Role of myoplasmic phosphate in contractile function of skeletal muscle: studies on creatine kinase‐deficient mice , 2001, The Journal of physiology.
[14] H. Westerblad,et al. Effects of CO2-induced acidification on the fatigue resistance of single mouse muscle fibers at 28 degrees C. , 1998, Journal of applied physiology.
[15] W. G. Owen,et al. Linear transduction of natural stimuli by dark‐adapted and light‐adapted rods of the salamander, Ambystoma tigrinum , 1997, The Journal of physiology.
[16] H. Westerblad,et al. Is creatine kinase responsible for fatigue? Studies of isolated skeletal muscle deficient in creatine kinase , 2000, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[17] R. Cooke,et al. Reduced effect of pH on skinned rabbit psoas muscle mechanics at high temperatures: implications for fatigue. , 1995, The Journal of physiology.
[18] H. Westerblad,et al. Muscle cell function during prolonged activity: cellular mechanisms of fatigue , 1995, Experimental physiology.
[19] J. Bangsbo,et al. Effect of muscle acidity on muscle metabolism and fatigue during intense exercise in man. , 1996, The Journal of physiology.
[20] K. Sahlin,et al. Relationship of contraction capacity to metabolic changes during recovery from a fatiguing contraction. , 1989, Journal of applied physiology.
[21] D. Allen,et al. The role of calcium stores in fatigue of isolated single muscle fibres from the cane toad , 1999, The Journal of physiology.
[22] G. Lamb,et al. Effect of myoplasmic pH on excitation‐contraction coupling in skeletal muscle fibres of the toad. , 1992, The Journal of physiology.