A comparison of circadian rhythms in work performance between physically active and inactive subjects.

This study compared circadian rhythms in physiological, subjective, and performance measures between groups exhibiting different levels of habitual physical activity. Fourteen male subjects, aged 19-29 years, were assigned to a physically active (group I, n = 7) or a physically inactive (group II, n = 7) group on the basis of leisure-time physical activity. Rectal temperature, oral temperature, resting pulse rate, subjective arousal and sleepiness were measured at 02:00, 06:00, 10:00, 14:00, 18:00 and 22:00 in a counter-balanced sequence for each subject. Whole-body flexibility, back and leg strength, grip strength (right and left), flight time in a vertical jump, PWC150, and self-chosen work-rate were also recorded at each time point. At least 8h separated each test session. Subjects avoided exercise 48h prior to, and during the experiment. Data were subjected to the group cosinor method. Group I evidenced 1.5-2.5 times greater rhythm amplitudes than Group II for oral temperature, subjective arousal, sleepiness, flexibility, left and right grip strength, submaximal heart rate, and self-chosen work-rate (p < 0.05). Oral temperature and arousal for Group I were lower than Group II only at 06:00. Early morning troughs in most of the performance measures were significantly greater for Group I (p < 0.05). The groups did not differ with respect to phasing of the rhythms (p < 0.05). These results confirm with physical performance measures that rhythm amplitudes are higher for physically fit subjects. This could be attributed to greater early-morning troughs in the measures for active individuals. Since the subjects were sedentary immediately prior to testing, it is plausible that these findings are training effects of physical activity.

[1]  B. Saltin,et al.  Esophageal, rectal, and muscle temperature during exercise. , 1966, Journal of applied physiology.

[2]  D. Brodie,et al.  Leisure-time physical activity as an estimate of physical fitness: a validation study. , 1991, Journal of clinical epidemiology.

[3]  M. Bonnet,et al.  Dealing with shift work: physical fitness, temperature, and napping , 1990 .

[4]  David Minors,et al.  Circadian Rhythms and the Human , 1981 .

[5]  W. Dement,et al.  Quantification of sleepiness: a new approach. , 1973, Psychophysiology.

[6]  P Knauth,et al.  Physical training intervention in female shift workers: II. The effects of intervention on the circadian rhythms of alertness, short-term memory, and body temperature. , 1988, Ergonomics.

[7]  P. Åstrand,et al.  Textbook of Work Physiology , 1970 .

[8]  T. Reilly,et al.  Human circadian rhythms and exercise. , 1990, Critical reviews in biomedical engineering.

[9]  J. Trinder,et al.  Does aerobic fitness affect sleep? , 1983, Psychophysiology.

[10]  P Andlauer,et al.  Oral temperature, circadian rhythm amplitude, ageing and tolerance to shift-work. , 1980, Ergonomics.

[11]  M. Härmä,et al.  Circadian variation of physiological functions in physically average and very fit dayworkers. , 1982, Journal of human ergology.

[12]  F Halberg,et al.  Methods for cosinor-rhythmometry. , 1979, Chronobiologia.

[13]  J. Waterhouse,et al.  Circadian rhythm amplitude--is it related to rhythm adjustment and/or worker motivation? , 1983, Ergonomics.