1 Goberdhan, D. C., "mTOR: dissecting regulation and mechanism of action to understand human disease" 37 (37): 213-216, 2009
2 Hay, N., "Upstream and downstream of mTOR" 18 : 1926-1945, 2004
3 Fry,A.C, "The role of resistance exercise intensity on muscle fibre adaptations" 34 : 663-679, 2004
4 Nojima, H., "The mammalian target of rapamycin (mTOR) partner, raptor, binds the mTOR substrates p70 S6 kinase and 4E-BP1 through their TOR signaling(TOS) motif" 278 : 15461-15464, 2003
5 Astrand, P. O., "Textbook of Work Physiology" 1986
6 Beugnet, A., "Target of rapamycin (TOR) -signaling and RAIP motifs play distinct roles in the mammalian TOR-dependent phosphorylation of initiation factor 4E-binding protein 1" 278 : 40717-40722, 2003
7 Tesch, P. A., "Skeletal muscle adaptations consequent to long-term heavy resistance exercise" 20 : S132-S134, 1988
8 Saltin, B, "Skeletal muscle adaptability: significance for metabolism and performance, In Handbook of Physiology" Skeletal Muscle 555-631, 1983
9 Burnett, P. E., "RAFT1 phosphorylation of the translational regulators p70S6 kinase and 4E-BP1" 95 : 1432-1437, 1998
10 Ivy, J. L., "Post exercise carbohydrate - protein supplementation : phosphorylation of muscle proteins involved in glycogen synthesis and protein translation" 35 : 89-97, 2008
1 Goberdhan, D. C., "mTOR: dissecting regulation and mechanism of action to understand human disease" 37 (37): 213-216, 2009
2 Hay, N., "Upstream and downstream of mTOR" 18 : 1926-1945, 2004
3 Fry,A.C, "The role of resistance exercise intensity on muscle fibre adaptations" 34 : 663-679, 2004
4 Nojima, H., "The mammalian target of rapamycin (mTOR) partner, raptor, binds the mTOR substrates p70 S6 kinase and 4E-BP1 through their TOR signaling(TOS) motif" 278 : 15461-15464, 2003
5 Astrand, P. O., "Textbook of Work Physiology" 1986
6 Beugnet, A., "Target of rapamycin (TOR) -signaling and RAIP motifs play distinct roles in the mammalian TOR-dependent phosphorylation of initiation factor 4E-binding protein 1" 278 : 40717-40722, 2003
7 Tesch, P. A., "Skeletal muscle adaptations consequent to long-term heavy resistance exercise" 20 : S132-S134, 1988
8 Saltin, B, "Skeletal muscle adaptability: significance for metabolism and performance, In Handbook of Physiology" Skeletal Muscle 555-631, 1983
9 Burnett, P. E., "RAFT1 phosphorylation of the translational regulators p70S6 kinase and 4E-BP1" 95 : 1432-1437, 1998
10 Ivy, J. L., "Post exercise carbohydrate - protein supplementation : phosphorylation of muscle proteins involved in glycogen synthesis and protein translation" 35 : 89-97, 2008
11 McGee, S. L., "Normal hypertrophy accompanied by phosphoryation and activation of AMP-activated protein kinase alpha1 following overload in LKB1 knockout mice" 586 : 1731-1741, 2008
12 Widegren, U., "Mitogen-activated protein kinase signal transduction in skeletal muscle: effects of exercise and muscle contraction" 172 : 227-238, 2001
13 Jorgen, T., "Maximal lengthening contractions induce different signaling responses in the type 1 and type 2 fibers of human skeletal muscle" 106 (106): 1412-1418, 2008
14 Eliasson, J., "Maximal lengthening contractions increase p70S6 kinase phosphorylation in human skeletal muscle in the absence of nutritional supply" 291 : E1197-E1205, 2006
15 Koopman, R., "Increase in S6K1 phosphorylation in human skeletal muscle following resistance exercise occurs mainly in type 2 muscle fibers" 290 : E1245-E1252, 2006
16 Creer, A., "InXuence of muscle glycogen availability on ERK1/2 and Akt signaling after resistance exercise in human skeletal muscle" 99 : 950-956, 2005
17 Bolster, D, R., "Immediate response of mammalian target of rapamycin (mTOR)-mediated signalling following acute resistance exercise in rat skeletal muscle" 553 (553): 1-, 2003
18 Vesely, M. J., "Fibre type specificity of haem oxygenase-1 induction in rat skeletal muscle" 458 : 257-260, 1999
19 Sakamoto, K., "Exercise effects on muscle insulin signaling and action: Intracellular signalling in contracting skeletal muscle" 93 : 369-383, 2002
20 Deldicque, L., "Effects of resistance exercise with and without creatine supplementation on gene expression and cell signaling in human skeletal muscle" 04 : 371-378, 2008
21 Mazzeo, R. S., "Effects of age on metabolic responses to endurance training in rats" 57 : 1369-1374, 1984
22 Camera, D. M., "Early Time Course of Akt Phosphorylation after Endurance and Resistance Exercise" 42 (42): 1843-1852, 2010
23 Mascher, H., "Changes in signalling pathways regulating protein synthesis in human muscle in the recovery period after endurance exercise" 191 : 67-75, 2007
24 Holloszy, J. O, "Biochemical adaptations to endurance exercise in muscle" 38 : 273-291, 1976
25 Bodine, S. C., "Akt/mTOR pathway is a crucial regulator of skeletal muscle hypertrophy and can prevent muscle atrophy in vivo" 3 : 1014-1049, 2001
26 Chan, A. Y., "Activation of AMP-activated protein kinase (AMPK) inhibits protein synthesis: a potential strategy to prevent the development of cardiac hypertrophy" 83 : 24-28, 2005
27 Hardie, D. G., "AMPK: A key sensor of fuel and energy status in skeletal muscle" 21 : 48-60, 2006
28 Thomson, D. M., "AMPK activation attenuates S6K1, 4E-BP1, and eEF2 signaling responses to high-frequency electrically stimulated skeletal muscle contractions" 104 : 625-632, 2008
29 Kimura, N. C., "A possible linkage between AMP-activated protein kinase (AMPK) and mammalian target of rapamycin (mTOR) signalling pathway" 8 : 65-69, 2003
30 Henriksson, K. G., ""semi-open’ muscle biopsy technique. A simple outpatient procedure" 59 : 317-323, 1979