Abstract
This study aimed to compare oxygen deficit during exhaustive ramp exercise (ODramp and ODlag) with maximal oxygen deficit during a high-intensity constant-power test (MAOD). ODramp was estimated from the difference between oxygen demand and actual oxygen uptake. ODlag was estimated using a simple equation assuming a linear increase in oxygen uptake lagging behind metabolic requirement. After a first test providing estimation of Ppeak, 12 healthy males did two 15 W · min-1 and two 30 W · min-1 ramp tests to evaluate in duplicate ODramp and ODlag and an exhaustive exercise at 105 % of Ppeak to evaluate MAOD. ODramp from the 15 W · min-1 tests (1.50 ± 1.83 and 2.60 ± 2.12 l) and from the 30 W · min-1 tests (2.41 ± 1.00 and 2.72 ± 1.23 l) did not differ from MAOD (2.33 ± 0.50 l). Contrary to ODlag estimated from the 15 W · min-1 tests (2.27 ± 0.30 and 2.31 ± 0.31 l), ODlag from the 30 W · min-1 tests (2.51 ± 0.34 and 2.52 ± 0.36 l) was significantly greater than MAOD (p < 0.05). The conclusion is that the oxygen deficit would accumulate progressively during a ramp test until attaining the maximal oxygen deficit. This measurement would not however give reliable index of an individual subject due to the elevated test-retest variability.
Key words
maximal accumulated oxygen deficit - anaerobic capacity - exercise testing
References
-
1
Bangsbo J.
Quantification of anaerobic energy production during intense exercise.
Med Sci Sports Exerc.
1998;
30
47-52
-
2
Bangsbo J, Gollnick P D, Graham T E, Juel C, Kiens B, Mizuno M, Saltin B.
Anaerobic energy production and O2 deficit-debt relationship during exhaustive exercise in humans.
J Physiol.
1990;
422
539-559
-
3
Davis J A, Whipp B J, Lamarra N, Huntsman D J, Frank M H, Wasserman K.
Effect of ramp slope on determination of aerobic parameters from the ramp exercise test.
Med Sci Sports Exerc.
1982;
14
339-343
-
4
Day J R, Rossiter H B, Coats E M, Skasick A, Whipp B J.
The maximally attainable V·O2 during exercise in humans: the peak vs. maximum issue.
J Appl Physiol.
2003;
95
1901-1907
-
5
Doherty M, Smith P M, Schroder K.
Reproducibility of the maximum accumulated oxygen deficit and run time to exhaustion during short-distance running.
J Sports Sci.
2000;
18
331-338
-
6
Green S, Dawson B.
Measurement of anaerobic capacities in humans. Definitions, limitations and unsolved problems.
Sports Med.
1993;
15
312-327
-
7
Hansen J E, Casaburi R, Cooper D M, Wasserman K.
Oxygen uptake as related to work rate increment during cycle ergometer exercise.
Eur J Appl Physiol.
1988;
57
140-145
-
8
Hopkins W G, Schabort E J, Hawley J A.
Reliability of power in physical performance tests.
Sports Med.
2001;
31
211-234
-
9
Hughson R L, Inman M D.
Oxygen uptake kinetics from ramp work tests: variability of single test values.
J Appl Physiol.
1986;
61
373-376
-
10
Jones A M, Carter H.
Oxygen uptake - work rate relationship during two consecutive ramp exercise tests.
Int J Sports Med.
2004;
25
415-420
-
11
Medbo J I, Burgers S.
Effect of training on the anaerobic capacity.
Med Sci Sports Exerc.
1990;
22
501-507
-
12
Medbo J I, Mohn A C, Tabata I, Bahr R, Vaage O, Sejersted O M.
Anaerobic capacity determined by maximal accumulated O2 deficit.
J Appl Physiol.
1988;
64
50-60
-
13
Medbo J I, Tabata I.
Anaerobic energy release in working muscle during 30 s to 3 min of exhausting bicycling.
J Appl Physiol.
1993;
75
1654-1660
-
14
Medbo J I, Tabata I.
Relative importance of aerobic and anaerobic energy release during short-lasting exhausting bicycle exercise.
J Appl Physiol.
1989;
67
1881-1886
-
15
Scott C B, Bogdanffy G M.
Aerobic and anaerobic energy expenditure during exhaustive ramp exercise.
Int J Sports Med.
1998;
19
277-280
-
16
Scott C B, Roby F B, Lohman T G, Bunt J C.
The maximally accumulated oxygen deficit as an indicator of anaerobic capacity.
Med Sci Sports Exerc.
1991;
23
618-624
-
17
Swanson G D, Hughson R L.
On the modeling and interpretation of oxygen uptake kinetics from ramp work rate tests.
J Appl Physiol.
1988;
65
2453-2458
-
18
Takaishi T, Ono T, Yasuda Y.
Relationship between muscle fatigue and oxygen uptake during cycle ergometer exercise with different ramp slope increments.
Eur J Appl Physiol.
1992;
65
335-339
-
19
Weber C L, Schneider D A.
Increases in maximal accumulated oxygen deficit after high-intensity interval training are not gender dependent.
J Appl Physiol.
2002;
92
1795-1801
-
20
Weber C L, Schneider D A.
Reliability of MAOD measured at 110 % and 120 % of peak oxygen uptake for cycling.
Med Sci Sports Exerc.
2001;
33
1056-1059
-
21
Whipp B J.
Dynamics of pulmonary gas exchange.
Circulation.
1987;
76
VI 18-28
-
22
Whipp B J, Davis J A, Torres F, Wasserman K.
A test to determine parameters of aerobic function during exercise.
J Appl Physiol.
1981;
50
217-221
Mr.
Jean-Pierre PouillyPhD Student
Unité de Recherche Physiologie et Physiopathologie de l'Exercice et Handicap
Université de St Etienne
Médecine du Sport et Myologie, Hôpital de Bellevue
42055 St Etienne cedex 2
France
Phone: + 33 477 12 79 85
Fax: + 33 477 12 72 29
Email: JP.Pouilly@univ-st-etienne.fr