Bakkman L., Sahlin K., Holmberg H. C., Tonkonogi M. (2007) Quantitative and qualitative adaptation of human skeletal muscle mitochondria to hypoxic compared with normoxic training at the same relative work rate. Acta Physiologica (Oxf) 190, 243-251. |
Bjørgen S., Hoff J., Husby V.S., Høydal M.A., Tjønna A. E., Steinshamn S., Richardson R.S., Helgerud J. (2009) Aerobic high intensity one and two legs interval cycling in chronic obstructive pulmonary disease: the sum of the parts is greater than the whole. European Journal of Applied Physiology 106, 501-507. |
Burtscher M (2013) Exercise limitations by the oxygen delivery and utilization systems in aging and disease: coordinated adaptation and deadaptation of the lung-heart muscle axis - a mini-review. Gerontology 59, 289-296. |
Burtscher M., Haider T., Domej W., Linser T., Gatterer H., Faulhaber M., Pocecco E., Ehrenburg I., Tkatchuk E., Koch R., Bernard L. (2009) Intermittent hypoxia increases exercise tolerance in patients at risk for or with mild COPD. Respiratory Physiology & Neurobiology 165, 97-103. |
Burtscher M., Pachinger O., Ehrenbourg I., Mitterbauer G., Faulhaber M., Pühringer R., Tkatchouk E. (2004) Intermittent hypoxia increases exercise tolerance in elderly men with and without coronary artery disease. International Journal of Cardiology 96, 247-254. |
Cesar Mde. C., Borin J.P., Gonelli P.R., Simões R.A., de Souza T. M., Montebelo M.I. (2009) The effect of local muscle endurance training on cardiorespiratory capacity in young women. Journal of Strength and Conditioning Research 23, 1637-1643. |
Czuba M., Waskiewicz Z., Zajac A., Poprzecki S., Cholewa J., Roczniok R. (2011) The effects of intermittent hypoxic training on aerobic capacity and endurance performance in cyclists. Journal of Sports Science and Medicine 10, 175-183. |
Dolmage T.E., Goldstein R.S. (2008) Effects of one-legged exercise training of patients with COPD. Chest 133, 370-376. |
Esposito F., Reese V., Shabetai R., Wagner P. D., Richardson R. S. (2011) Isolated quadriceps training increases maximal exercise capacity in chronic heart failure: the role of skeletal muscle convective and diffusive oxygen transport. Journal of the American College of Cardiology 58, 1353-1362. |
Geiser J., Vogt M., Billeter R., Zuleger C., Belforti F., Hoppeler H. (2001) Training high--living low: changes of aerobic performance and muscle structure with training at simulated altitude. International Journal of Sports Medicine 22, 579-585. |
Holliss B.A., Burden R.J., Jones A.M., Pedlar C.R. (2014) Eight weeks of intermittent hypoxic training improves submaximal physiological variables in highly trained runners. Journal of Strength and Conditioning Research 28, 2195-21203. |
Hoppeler H., Vogt M. (2001) Hypoxia training for sea-level performance. Training high-living low. Advances in Experimental Medicine and Biology 502, 61-73. |
Jankowska E.A., Wegrzynowska K., Superlak M., Nowakowska K., Lazorczyk M., Biel B., Kustrzycka-Kratochwil D., Piotrowska K., Banasiak W., Wozniewski M., Ponikowski P. (2008) The 12-week progressive quadriceps resistance training improves muscle strength, exercise capacity and quality of life in patients with stable chronic heart failure. International Journal of Cardiology 130, 36-43. |
Janse De Jonge X.A., Thompson M.W., Chuter V.H., Silk L.N., Thom J.M. (2012) Exercise performance over the menstrual cycle in temperate and hot, humid conditions. Medicine & Science in Sports & Exercise 44, 2190-2198. |
Katayama K., Matsuo H., Ishida K., Mori S., Miyamura M. (2003) Intermittent hypoxia improves endurance performance and submaximal exercise efficiency. High Altitude Medicine & Biology 4, 291-304. |
Magnusson G., Kaijser L., Sylvén C., Karlberg K. E., Isberg B., Saltin B. (1997) Peak skeletal muscle perfusion is maintained in patients with chronic heart failure when only a small muscle mass is exercised. Cardiovascular Research 33, 297-306. |
Magnusson G., Gordon A., Kaijser L., Sylvén C., Isberg B., Karpakka J., Saltin B. (1996) . , 1048-1055. |
Melissa L., MacDougall J.D., Tarnopolsky M.A., Cipriano N., Green H.J. (1997) Skeletal muscle adaptations to training under normobaric hypoxic versus normoxic conditions. Medicine and Science in Sports and Exercise 29, 238-243. |
Miyachi M., Tanaka H., Yamamoto K., Yoshioka A., Takahashi K., Onodera S. (2001) Effects of one-legged endurance training on femoral arterial and venous size in healthy humans. Journal of Applied Physiology 90, 2439-2444. |
Miyachi M., Katayama K. (1999) Effects of maximal interval training on arterial oxygen desaturation and ventilation during heavy exercise. The 49, 401-407. |
Murias J.M., Kowalchuk J.M., Paterson D.H. (2010) Time course and mechanisms of adaptations in cardiorespiratory fitness with endurance training in older and young men. Journal of Applied Physiology 108, 621-627. |
Ray C.A. (1999) Sympathetic adaptations to one-legged training. Journal of Applied Physiology 86, 1583-1587. |
Tyni-Lenné R., Dencker K., Gordon A., Jansson E., Sylvén C. (2001) Comprehensive local muscle training increases aerobic working capacity and quality of life and decreases neurohormonal activation in patients with chronic heart failure. European Journal of Heart Failure 3, 47-52. |
Wang J.S., Lee M.Y., Lien H.Y., Weng T.P. (2014) Hypoxic exercise training improves cardiac/muscular hemodynamics and is associated with modulated circulating progenitor cells in sedentary men. International Journal of Cardiology 170, 315-323. |
Zoll J., Ponsot E., Dufour S., Doutreleau S., Ventura-Clapier R., Vogt M., Hoppeler H., Richard R., Flück M. (2006) Exercise training in normobaric hypoxia in endurance runners. III. Muscular adjustments of selected gene transcripts. Journal of Applied Physiology 100, 1258-1266. |
|