CHANGES IN BETA-ENDORPHIN LEVELS IN RESPONSE TO AEROBIC AND ANAEROBIC EXERCISE

被引:143
作者
SCHWARZ, L
KINDERMANN, W
机构
[1] Department of Sports and Performance Medicine, University of Saarland, Saarbrücken
关键词
D O I
10.2165/00007256-199213010-00003
中图分类号
G8 [体育];
学科分类号
04 ; 0403 ;
摘要
Exercise-induced increases in the peripheral beta-endorphin concentration are mainly associated both with changes in pain perception and mood state and are possibly of importance in substrate metabolism. A more precise understanding of opioid function during exercise can be achieved by investigating the changes in beta-endorphin concentrations dependent upon intensity and duration of physical exercise and in comparison to other stress hormones. Published studies reveal that incremental graded and short term anaerobic exercise lead to an increase in beta-endorphin levels, the extent correlating with the lactate concentration. During incremental graded exercise beta-endorphin levels increase when the anaerobic threshold has been exceeded or at the point of an overproportionate increase in lactate. In endurance exercise performed at a steady-state between lactate production and elimination, blood beta-endorphin levels do not increase until exercise duration exceeds approximately 1 hour, with the increase being exponential therafter. Beta-Endorphin and ACTH are secreted simulataneously during exercise, followed by a delayed release of cortisol. It is not yet clear whether a relationship exists between the catecholamines and beta-endorphin. These results support a possible role of beta-endorphin in changes of mood state and pain perception during endurance sports. In predominantly anaerobic exercise the behaviour of beta-endorphin depends on the degree of metabolic demand, suggesting an influence of endogenous opioids on anaerobic capacity or acidosis tolerance. Further investigations are necessary to determine the role of beta-endorphin in exercise-mediated physiological and psychological events.
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页码:25 / 36
页数:12
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共 88 条
[11]  
Chavkin C., Cox B.M., Goldstein A., Stereo-specific opiate binding in the bovine adrenal medulla, Molecular Pharmacology, 15, pp. 751-753, (1979)
[12]  
Colt E.W.D., Wardlaw S.L., Frantz A.G., The effect of running on plasma β-endorphin, Life Science, 28, pp. 1637-1640, (1981)
[13]  
Dearman J., Francis K.T., Plasma levels of catecholamines, Cortisol, and β-endorphins in male athletes after running 26.2, 6 and 2 miles, Journal of Sports Medicine, 23, pp. 30-38, (1983)
[14]  
De Meirleir K., Naaktgeboren N., Steirteghem V., Gorus F., Albrecht J., Et al., Beta-endorphin and ACTH levels in peripheral blood during and after aerobic and anaerobic exercise, European Journal of Applied Physiology, 55, pp. 5-8, (1986)
[15]  
Dent R.R.M., Guilleminault C., Albert L.H., Diurnal rhythm of plasma immuno-reactive β-endorphin and its relationship to sleep stages and plasma rhythms of Cortisol and prolactin, Journal of Clinical Endocrinology and Metabolism, 52, pp. 942-947, (1981)
[16]  
Donevan R.H., Andrew G.M., Plasma β-endorphin immunoreactivity during graded cycle ergometry, 19, pp. 229-233, (1987)
[17]  
Elias A.N., Fairshter R., Pandian, Domurat E., Kayaleh R., β-Endorphin/β-lipotropin release and gonadotropin secretion after acute exercise in physicially conditioned males, European Journal of Applied Physiology, 58, pp. 522-527, (1989)
[18]  
Eich H.M., Hollt V., Kissling W., Fischler M., Laspe H., Et al., β-Endorphin-like immunoreactivity in cerebrospinal fluid and plasma of patients with schizophrenia and other neuropsychiatric disorders, Pharmakopsychiatrie, 12, (1979)
[19]  
Estilo A.E., Cottrell J.E., Hemodynamic and catecholamine changes after administration of naloxone, Anesthesia and Analgesia, 61, pp. 349-353, (1982)
[20]  
Farrell P.A., Garthwaite T.L., Gustafson A.B., Plasma adrenocorti-cotropin and Cortisol responses to submaximal and exhaustive exercise, Journal of Applied Physiology, 55, pp. 1441-1444, (1983)