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Circulation 1994; 90: 2324–2332. 127. Nery LE, Wasserman K, Andrews JD, Huntsman OJ, Hansen JE, Whipp BJ. Ventilatory and gas exchange kinetics during exercise in chronic obstructive pulmonary disease. J Appl Physiol 1982; 53: 1594–1602. 128. Puente-Maestu L, Sanz ML, Sanz P, Ruiz de Ona JM, Rodriguez-Hermosa JL, Whipp BJ. Effects of two types of training on pulmonary and cardiac responses to moderate exercise in patients with COPD. Eur Resp J 2000; 15: 1026–1032. 129. Hill DW. The critical power concept.

Muscular exercise, lactic acid and the supply and utilization of oxygen. Q J Med 1923; 16: 135–171. 119. Mitchell JH, Sproule BJ, Chapman CB. The physiological meaning of the maximal oxygen intake test. J Clin Invest 1957; 37: 538–547. 120. Taylor HL, Buskirk E, Henschel A. Maximal oxygen intake as an objective measure of cardiorespiratory performance. J Appl Physiol 1955; 8: 73–80. 121. Day JR, Rossiter HB, Coats EM, Skasick A, Whipp BJ. The maximally attainable V9O2 during exercise in humans: the peak vs maximum issue.

Am Rev Respir Dis 1984; 129: S90–S92. Coyle EF, Sidossis LS, Horowitz JF, Beltz JD. Cycling efficiency is related to the percentage of type I muscle fibers. Med Sci Sports Exerc 1992; 24: 782–788. Mogensen M, Bagger M, Pedersen PK, Fernstrom M, Sahlin K. Cycling efficiency in humans is related to low UCP3 content and to type I fibres but not to mitochondrial efficiency. J Physiol (Lond) 2006; 571: 669–681. Barstow TJ, Jones AM, Nguyen PH, Casaburi R. Influence of muscle fibre type and fitness on the oxygen uptake/power output slope during incremental exercise in humans.

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