Effect of ten days of aerobic training on energy potential and system of blood supply of the rat skeletal muscles
Nemirovskaia, T.L.; Shenkman, B.S.; Tarasova, O.S.; Koshelev, V.B.
Biulleten' Eksperimental'noi Biologii i Meditsiny 117(1): 33-35
1994
ISSN/ISBN: 0365-9615 PMID: 8193325 Document Number: 438157
An early increase in mitochondrial creatine kinase activity in saponin skinned skeletal muscle fibers was observed in rats following a ten-day treadmill training. No significant changes were noticed in the maximum mitochondrial respiration rate, capillary number per muscle fiber, or capillary density.
Document emailed within 1 workday
Related Documents
Boyadjiev, N.; Delchev, S.; Hristova, M. 1997: Changes in the aerobic capacity and ultrastructure of skeletal muscles and myocardium of endurance training rats induced by specialized food supplements with different compositions Folia Medica 39(2): 20-30Danilova, L.I.; Simeonova, N.K. 1978: Effect of deafferentation on several energy metabolism indices and the thermogenic reaction in the skeletal muscles of rats Patologicheskaia Fiziologiia i Eksperimental'naia Terapiia 6: 56-59
Ladd, H.; Jonsson, B.; Lindegren, U. 1972: The learning process for fine neuromuscular controls in skeletal muscles of man. I. Transfer of training between different muscles Electromyography and Clinical Neurophysiology 12(3): 213-223
Samitz, G. 1992: Aerobic upper body training. An underutilized potential in training therapy Wiener Medizinische Wochenschrift 142(14): 309-313
Bogatov, A.A. 2001: Typological characteristics of energy supply to muscles of racing skiers Fiziologiia Cheloveka 27(1): 106-112
Potapov, P.P. 1989: The rate of glycolysis and glycogenolysis in the skeletal muscles of rats in the period of readaptation following 30 days' hypokinesia Kosmicheskaia Biologiia i Aviakosmicheskaia Meditsina 23(4): 92-94
Kalinskiĭ, M.I.; Kotsiuruba, V.N.; Khalmuradov, A.G. 1984: Effect of isobutylmethylxanthine on the adenylate cyclase system of the myocardium and skeletal muscles of the rat during the recovery period following physical loading Ukrainskii Biokhimicheskii Zhurnal 56(2): 153-157
Kazueva, T.V.; Kovrizhnykh, E.E.; Kuz'mina, R.I.; Assur, M.V. 1987: Energy metabolism in skeletal muscles in experimental traumatic shock Voprosy Meditsinskoi Khimii 33(4): 40-42
Kalinskiĭ, M.I.; Kotsiuruba, V.N.; Khalmuradov, A.G.; Gubkina, N.I.; Balakleevskiĭ, A.I. 1984: Effect of immobilized adrenaline on the state of the adenylate cyclase system in the cardiac and skeletal muscles of rats in the recuperative period after physical exertion Ukrainskii Biokhimicheskii Zhurnal 56(1): 52-57
Kushner, V.P.; Chernysheva, M.D. 1980: Comparative study of the immunochemical properties of the 5th lactate dehydrogenase isoenzyme from rat skeletal muscles and liver. I. the isolation and characteristics of LDH-5 preparations from skeletal muscles Tsitologiia 22(5): 560-565
Baracos, V.E.; Goldberg, A.L. 1986: Maintenance of normal length improves protein balance and energy status in isolated rat skeletal muscles American Journal of Physiology 251(4 Pt 1): C588-C596
Nemirovskaia, T.L.; Shenkman, B.S.; Mazin, M.G.; Koshelev, V.B.; Maevskiĭ, E.I.; Grishina, E. 2000: Concentration of macroergic phosphates and oxidative potential of skeletal muscles Tsitologiia 42(1): 79-83
Balasubramanian, B.; Pansare, M.S. 1991: Effect of yoga on aerobic and anaerobic power of muscles Indian Journal of Physiology and Pharmacology 35(4): 281-282
Stingl, J. 1970: The vascular system of the skeletal muscles Acta Anatomica 76(4): 488-504
Jonsson, B.; Ladd, H. 1973: The learning process for fine neuromuscular controls in skeletal muscles of man. II. Transfer of training to the contralateral muscle Electromyography and Clinical Neurophysiology 13(2): 191-198
Vinogradova, O.L.; Stoĭda, I.M.; Mano, T.; Iwase, S. 2002: Effects of gravitational unloading on blood supply of working muscles Aviakosmicheskaia i Ekologicheskaia Meditsina 36(3): 39-46
Rosety-Rodríguez, M.; Díaz-Ordoñez, A.; Rosety, I.; Fornieles, G.; Camacho-Molina, A.; García, N.; Rosety, M.A.; Ordoñez, F.J. 2012: Aerobic training improves antioxidant defense system in women with metabolic syndrome Medicina 72(1): 15-18
Ohsaka, N.; Yonezu, T.; Hosokawa, K.; Yamaguchi, H. 1986: Effect of mitomycin C on energy metabolism: essential role of aerobic glycolysis in proliferation of L cells Cellular and Molecular Biology 32(4): 477-485
Wierniuk, A.; Włodarek, D. 2014: Assessment of physical activity, energy expenditure and energy intakes of young men practicing aerobic sports Roczniki Panstwowego Zakladu Higieny 65(4): 353-357
Chi, M.M.; Manchester, J.K.; Lowry, O.H. 1998: Effect of centrifugation at 2G for 14 days on metabolic enzymes of the tibialis anterior and soleus muscles Aviation Space and Environmental Medicine 69(6 Suppl): A9-11