4.6 Article

An endogenous circadian rhythm of respiratory control in humans

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JOURNAL OF PHYSIOLOGY-LONDON
卷 526, 期 3, 页码 683-694

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WILEY
DOI: 10.1111/j.1469-7793.2000.00683.x

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  1. NCRR NIH HHS [M01 RR002635, MO1 RR02635] Funding Source: Medline
  2. NHLBI NIH HHS [HL62149] Funding Source: Medline

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1. Many physiological and behavioural functions have circadian rhythms - endogenous oscillations with a period of approximately 24 h that can occur even in the absence of sleep. We determined whether there is an endogenous circadian rhythm in breathing, metabolism and ventilatory chemosensitivity in humans. 2. Ten healthy adult males were studied throughout 4 days in a stable laboratory environment. After two initial baseline days (16 h wakefulness plus 8 h sleep) that served to achieve a steady state, subjects were studied under constant behavioural and environmental conditions throughout 41 h of wakefulness. Ventilation, metabolism and the magnitude of the hypercapnic ventilatory response (HCVR) were measured every 2 h. individuals' data were aligned according to circadian phase (core body temperature minimum; (CBTmin) and averaged. 3. In the group average data, there mas a significant and large amplitude circadian variation in HCVR slope (average of +/- 0.41 min(-1) mmHg(-1); corresponding to +/-12.1% of 24 h mean), and a smaller amplitude rhythm in the HCVR x-asis intercept (average of +/- 1.1 mmHg +/-2.1 % of 24 h mean). 4. Despite a significant circadian variation in metabolism (+/- 3.2 % of 24 h mean), there were no detectable rhythms in tidal volume, respiratory frequency or ventilation. This small discrepancy between metabolism and ventilation led to a small but significant circadian variation in end-tidal P-CO2(P-ET,(CO2); +/- 0.6 mmHg; +/-1.5% OF 24 h mean). 5. The circadian minima of the group-averaged respiratory variables occurred 6-8 h earlier than CBTmin, suggesting that endogenous changes in CBT across the circadian cycle have less of an effect on respiration than equivalent experimentally induced changes in CBT. 6. Throughput these circadian changes, there were no correlations between HCVR parameters (slope or x-axis intercept) and either resting ventilation or resting P-ET,P-CO2. This suggests that ventilation and P-ET,P-CO2 are little influenced by central chemosensory respiratory control in awake humans even when at rest under constant environmental and behavioural conditions. 7. The characteristic change in P-ET,P-CO2 during non-rapid eye movement sleep n as shown to be independent of circadian variations in P-ET,P-CO2, and probably reflects a change from predominantly behavioural to predominantly chemosensory respiratory control. 8. This study has documented the existence and magnitude of circadian variations in respiration and respiratory control in awake humans for the first time under constant behavioural and environmental conditions. These results provide unique insights into respiratory control in awake humans, and highlight the importance of considering the phase of the circadian cycle in studies of respiratory control.

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