Literature DB >> 573459

A multiple regression model for blood lactate removal in man.

A Bonen, C J Campbell, R L Kirby, A N Belcastro.   

Abstract

After exercise the lactate (La) removal from blood occurs significantly faster during moderate exercise than at rest. However, under both conditions there are considerable inter-individual differences in La removal. These differences in man may depend on the slow-twitch (ST) fiber content of muscle (X1), the La concentration in blood (X2), and the intensity of the recovery exercise (X3). Therefore, multiple regression models were obtained to describe La removal rates with these variables. In 10 women La concentrations were increased via a 6 min bicycle ergometer ride (87% VO2max) and blood La concentrations were measured every 5 min during 20 min resting and active recovery periods (29--49% VO2max). For resting recovery only the initial La concentration after the 6 min exercise provided a significant description for La removal in 8 subjects (P = 0.03). However, for the active recovery a highly significant description for La removal was obtained: La removal rate (mM/1 . min) = 0.773 x 10-2X1 + 0.321 x 10-1X2 - 0.120 x 10-1X3 + 0.202 (R = 0.91; P = 0.01). The statistical independence (P greater than 0.010) of each of these variables in the model suggests that each is contributing uniquely to the total removal rate of La observed during an active recovery period. The relationship between La removal and %ST fibers may be related to the metabolic and anatomical features of these fibers, the La concentration probably reflects the significance of the mass action effect of La, and the intensity of exercise reflects the role of the muscle's metabolic rate. The present results illustrate that the removal of blood lactate is influenced by the interactive effects of the intensity of the recovery exercise, blood lactate concentration and the ST fiber content of muscle.

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Year:  1979        PMID: 573459     DOI: 10.1007/bf00582897

Source DB:  PubMed          Journal:  Pflugers Arch        ISSN: 0031-6768            Impact factor:   3.657


  22 in total

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Authors:  J Karlsson; B Sjödin; A Thorstensson; B Hultén; K Frith
Journal:  Acta Physiol Scand       Date:  1975-02

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Authors:  L Hermansen; O Vaage
Journal:  Am J Physiol       Date:  1977-11

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Authors:  J Yudkin; R D Cohen
Journal:  Clin Sci Mol Med       Date:  1974-01

4.  Metabolism of L(plus)-lactate in human skeletal muscle during exercise.

Authors:  L Jorfeldt
Journal:  Acta Physiol Scand Suppl       Date:  1970

5.  Rates of formation and oxidation of lactic acid in dogs at rest and during moderate exercise.

Authors:  F Depocas; Y Minaire; J Chatonnet
Journal:  Can J Physiol Pharmacol       Date:  1969-07       Impact factor: 2.273

6.  Lactate dehydrogenase in human skeletal muscle.

Authors:  B Sjödin
Journal:  Acta Physiol Scand Suppl       Date:  1976

7.  Dependence of lactate removal on muscle metabolism in man.

Authors:  J C McGrail; A Bonen; A N Belcastro
Journal:  Eur J Appl Physiol Occup Physiol       Date:  1978-08-15

8.  The influence of lactate on muscle metabolism. Lactate as a possible regulating factor for the increased energy supply during muscular work.

Authors:  P Dieterle; P Banholzer; R Dieterle; J Henner; K Schwarz
Journal:  Horm Metab Res       Date:  1971-09       Impact factor: 2.936

9.  Comparison of self-selected recovery methods on lactic acid removal rates.

Authors:  A Bonen; A N Belcastro
Journal:  Med Sci Sports       Date:  1976

10.  Lactate release in relation to tissue lactate in human skeletal muscle during exercise.

Authors:  L Jorfeldt; A Juhlin-Dannfelt; J Karlsson
Journal:  J Appl Physiol Respir Environ Exerc Physiol       Date:  1978-03
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  9 in total

1.  Changes in blood lactate and respiratory gas exchange measures in sports with discontinuous load profiles.

Authors:  Gerhard Smekal; Serge P von Duvillard; Rochus Pokan; Harald Tschan; Ramon Baron; Peter Hofmann; Manfred Wonisch; Norbert Bachl
Journal:  Eur J Appl Physiol       Date:  2003-04-24       Impact factor: 3.078

2.  A new method for the evaluation of anaerobic running power in athletes.

Authors:  H Rusko; A Nummela; A Mero
Journal:  Eur J Appl Physiol Occup Physiol       Date:  1993

3.  Lactate after exercise in man: I. Evolution kinetics in arterial blood.

Authors:  H Freund; P Zouloumian
Journal:  Eur J Appl Physiol Occup Physiol       Date:  1981

4.  Lactate after exercise in Man: II. Mathematical model.

Authors:  P Zouloumian; H Freund
Journal:  Eur J Appl Physiol Occup Physiol       Date:  1981

5.  Lactate after exercise in man: III. Properties of the compartment model.

Authors:  P Zouloumian; H Freund
Journal:  Eur J Appl Physiol Occup Physiol       Date:  1981

6.  Effect of previous supramaximal work on lacticaemia during supra-anaerobic threshold exercise.

Authors:  M Rieu; A Ferry; M C Martin; A Duvallet
Journal:  Eur J Appl Physiol Occup Physiol       Date:  1990

7.  Are indices of free radical damage related to exercise intensity.

Authors:  R Lovlin; W Cottle; I Pyke; M Kavanagh; A N Belcastro
Journal:  Eur J Appl Physiol Occup Physiol       Date:  1987

8.  Negligible direct lactate oxidation in subsarcolemmal and intermyofibrillar mitochondria obtained from red and white rat skeletal muscle.

Authors:  Yuko Yoshida; Graham P Holloway; Vladimir Ljubicic; Hideo Hatta; Lawrence L Spriet; David A Hood; Arend Bonen
Journal:  J Physiol       Date:  2007-06-07       Impact factor: 5.182

9.  Effect of endurance training and PGC-1α overexpression on calculated lactate production volume during exercise based on blood lactate concentration.

Authors:  Reo Takeda; Yudai Nonaka; Katsuyuki Kakinoki; Shinji Miura; Yutaka Kano; Daisuke Hoshino
Journal:  Sci Rep       Date:  2022-01-31       Impact factor: 4.379

  9 in total

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