Literature DB >> 15123559

Dissociation between the time courses of femoral artery blood flow and pulmonary VO2 during repeated bouts of heavy knee extension exercise in humans.

Yoshiyuki Fukuba1, Yukie Ohe, Akira Miura, Asami Kitano, Masako Endo, Hironori Sato, Motohiko Miyachi, Shunsaku Koga, Osamu Fukuda.   

Abstract

It has frequently been demonstrated that prior heavy cycling exercise facilitates pulmonary O(2) kinetics at the onset of subsequent heavy exercise. This might be due to improved muscle perfusion via acidosis-induced vasodilating effects. However, it is difficult to measure the blood flow (BF) to the working muscles (via the femoral artery) during cycling exercise. We therefore selected supine knee extension (KE) exercise as an alternative, and investigated whether the faster O(2) kinetics in the 2nd bout was matched by proportionally faster BF kinetics to the exercising muscle. Nine healthy subjects (aged 21-44 years) volunteered to participate in this study. The protocol consisted of two consecutive 6-min KE exercise bouts in a supine position (work rate: 70-75% of peak power) separated by a 6-min baseline rest (EX1 to EX2). During the protocol, a pulsed Doppler ultrasound technique was utilized to continuously measure the BF in the right femoral artery. The protocol was repeated at least 6 times to characterize the precise kinetics. In agreement with previous studies using cycling exercise, the O(2) kinetics in the 2nd bout were facilitated compared with that in the 1st bout [mean +/-s.d. of the 'effective' time constant (tau): EX1, 68.6 +/- 15.9, versus EX2, 58.0 +/- 14.4 s. Phase II-tau: EX1, 48.7 +/- 9.0, versus EX2, 41.2 +/- 13.3 s. Empirical index of the slow component (Delta O(2(6-3))): EX1, 78 +/- 44, versus EX2, 57 +/- 36 ml min(-1) (P < 0.05)]. However, no substantial difference was observed for the facilitation of the femoral artery BF response to the 1st and 2nd exercise bouts [i.e. the 'effective'tau of the femoral artery BF: EX1, 40.8 +/- 16.9, versus EX2, 39.0 +/- 17.1 s (P > 0.05)]. It was concluded that the faster pulmonary O(2) kinetics during heavy KE exercise following prior heavy exercise was not associated with a similar modulation in the BF to the working muscles.

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Year:  2004        PMID: 15123559     DOI: 10.1113/expphysiol.2003.026609

Source DB:  PubMed          Journal:  Exp Physiol        ISSN: 0958-0670            Impact factor:   2.969


  10 in total

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Authors:  S C Forbes; G H Raymer; J M Kowalchuk; R T Thompson; G D Marsh
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Authors:  J C Weavil; T S Thurston; T J Hureau; J R Gifford; P A Kithas; R M Broxterman; A D Bledsoe; J N Nativi; R S Richardson; M Amann
Journal:  Am J Physiol Heart Circ Physiol       Date:  2020-11-08       Impact factor: 4.733

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6.  Prior heavy exercise elevates pyruvate dehydrogenase activity and speeds O2 uptake kinetics during subsequent moderate-intensity exercise in healthy young adults.

Authors:  B J Gurd; S J Peters; G J F Heigenhauser; P J LeBlanc; T J Doherty; D H Paterson; J M Kowalchuk
Journal:  J Physiol       Date:  2006-09-21       Impact factor: 5.182

7.  Kinetics of pulmonary VO2 and femoral artery blood flow and their relationship during repeated bouts of heavy exercise.

Authors:  Masako Endo; Yoko Okada; Harry B Rossiter; Anna Ooue; Akira Miura; Shunsaku Koga; Yoshiyuki Fukuba
Journal:  Eur J Appl Physiol       Date:  2005-09-29       Impact factor: 3.078

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9.  Central circulatory and peripheral O2 extraction changes as interactive facilitators of pulmonary O2 uptake during a repeated high-intensity exercise protocol in humans.

Authors:  Yoshiyuki Fukuba; Masako Yamaoka Endo; Yukie Ohe; Yuiko Hirotoshi; Asami Kitano; Chiaki Shiragiku; Akira Miura; Osamu Fukuda; Hatsumi Ueoka; Motohiko Miyachi
Journal:  Eur J Appl Physiol       Date:  2006-12-13       Impact factor: 3.078

10.  Effect of hyperventilation and prior heavy exercise on O2 uptake and muscle deoxygenation kinetics during transitions to moderate exercise.

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  10 in total

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