Armitage P (1971) Statistical Methods in Medical Research. John Wiley & Sons, New York
Google Scholar
Bedford TG, Tipton CM, Wilson NC, Oppliger RA, Gisolfi CV (1979) Maximum oxygen consumption of rats and its changes with various experimental procedures. J Appl Physiol 47:1278–1283
Google Scholar
Bjorntorp P, Fahlen M, Grimby G, Gustafson A, Holm J, Renstrom P, Schersten T (1972) Carbohydrate and lipid metabolism in middle-aged, physically well-trained men. Metabolism 21:1037–1044
Google Scholar
Budohoski L, Challiss RAJ, McManus B, Newsholme EA (1984a) Effects of analogues of adenosine and methyl xantines on insulin sensitivity in soleus muscle of the rat. FEBS Lett 167:13
Google Scholar
Budohoski L, Challiss RAJ, Lozeman FJ, McManus B, Newsholme EA (1984b) Increased insulin sensitivity in soleus muscle from cold exposed rats: reversal by adenosine-receptor agonist. FEBS Lett 175:402–406
Google Scholar
Challiss RAJ, Espinal J, Newsholme EA (1983) Insulin sensitivity of rates of glycolysis and glycogen synthesis in stripped soleus, epitrochlearis and hemidiafragm muscle isolated from sedentary rats. Biosci Rep 3:675–679
Google Scholar
Davies TA, Klahr S, Tegetmeyer ED, Osborne DF, Howard TL, Karl IE (1986) Glucose metabolism in epitrochlearis muscle of acutely exercised and trained rats. Am J Physiol 250 (Endocrinol Metab 13):E137-E143
Google Scholar
Dietze GJ (1982) Modulation of the action of insulin in relation to the energy state in skeletal muscle tissue. Possible involvement of kinins and prostaglandins. Mol Cell Endocrinol 25:127–149
Google Scholar
Espinal J, Challiss RAJ, Newsholme EA (1983a) Effect of adenosine deaminase and adenosine analogue on insulin sensitivity in soleus muscle of the rat. FEBS Lett 158:103–106
Google Scholar
Espinal J, Dohm GL, Newsholme EA (1983b) Sensitivity to insulin of glycolysis and glycogen synthesis of isolated soleus muscle strips from sedentary and exercise-trained rats. Biochem J 212:453–458
Google Scholar
Garetto LP, Richter EA, Godman MN, Ruderman NB (1984) Enhanced muscle glucose metabolism after exercise in the rat: the two phases. Am J Physiol 246 (Endocrinol Metab 9): E471-E475
Google Scholar
Hultman E (1967) Muscle glycogen in men determined in needle biopsy specimens. Methods and normal values. Scand J Clin Lab Invest 19 [Suppl 91]:1–63
Google Scholar
James DE, Kraegen EW, Chisholm DJ (1985) Effects of exercise training on in vivo insulin action in individual tissues of the rats. J Clin Invest 76:657–666
Google Scholar
Langfort J, Budohoski L, Newsholme EA (1988) Effect of various types of acute exercise and exercise training on the insulin sensitivity of rat soleus muscle measured in vitro. Pflügers Arch 412:101–105
Google Scholar
Leighton B, Budohoski L, Lozeman FJ, Challiss RAJ, Newsholme EA (1985) The effect of prostaglandins E1, E2, F2 and indomethacin on the sensitivity of glycolysis and glycogen synthesis to insulin in stripped soleus muscle of the rat. Biochem J 227:337–340
Google Scholar
Reaven GM (1980) Insulin-independent diabetes mellitus: metabolic characteristics. Metabolism 29:445–454
Google Scholar
Richter EA, Garetto LP, Goodman MN, Ruderman NB (1982) Muscle glucose metabolism following exercise in the rat: increased sensitivity to insulin. J Clin Invest 69:785–793
Google Scholar
Richter EA, Garetto LP, Goodman MN, Ruderman NB (1984) Enhanced muscle glucose metabolism after exercise: modulation by local factors. Am J Physiol 246 (Endocrinol Metab 9): E476-E482
Google Scholar
Ruderman NB, Ganda OP, Johansen K (1979) The effect of physical training on glucose tolerance and plasma lipids in maturity-onset diabetes. Diabetes 28:89–92
Google Scholar
Sonne B, Galbo H (1980) Simultaneous determinations of metabolic and hormonal responses, heart rate, temperature and oxygen uptake in running rats. Acta Physiol Scand 109:201–209
Google Scholar
Stupnicki R (1982) A single-parameter quality control in radioimmunoassay. Endocrinologie 80:48–51
Google Scholar