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Resynchronization of the biological clock using exposure to low oxygen levels in humans: an exploratory study

Morin, R.; Forest, G.; Nolet, K. I.; Bourgon, V.; Duval, F.-G.; Mauger, J.-F.; Imbeault, P.

2025-09-15 physiology
10.1101/2025.09.09.674331 bioRxiv
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IntroductionCircadian desynchronization, evident in scenarios such as jet lag, shift work, and circadian rhythm sleep disorders, detrimentally affects sleep quality and overall health, both acutely and chronically. Aligning the circadian system with environmental time cues is therefore essential for maintaining physiological and psychological well-being. While luminotherapy and melatonin supplementation are widely used to facilitate circadian realignment, emerging evidence suggests that fluctuations in oxygen levels may also help in circadian realignment. However, the effect of hypoxia on the synchronisation of the circadian clock in humans remains largely unexplored. MethodsUsing a randomized controlled crossover study design, 11 healthy participants (6 men, 5 women, mean age 23.3 {+/-} 1.9 years) completed one baseline condition and two 48-h experimental conditions. The baseline condition (BL) was used to establish circadian markers. Both experimental conditions simulated a phase advance of 4 hours. In condition 1 (Hypo), participants underwent a 2-hour normobaric hypoxic exposure (FiO2 = 12%), starting 2 h after habitual wake time. In condition 2 (Lum+Mel), participants received a 3-hour luminotherapy session (500 nm, 506 lux) at the same time point, combined with 5 mg of exogenous melatonin administered 6 hours before usual bedtime. Salivary melatonin levels were measured in each phase of the study to assess circadian phase shifts. Data were analyzed using linear mixed models. ResultsSalivary melatonin levels increased progressively over time in all conditions (p < 0.001), with significant differences observed between experimental conditions (p < 0.001), but no interaction effect (p = 0.854). Exposure to hypoxia significantly reduced oxyhemoglobin saturation (p < 0.05) and increased heart rate and subjective symptoms of fatigue. In terms of circadian phase, the dim light melatonin onset (DLMO) occurred 1.30 hour (78 minutes) earlier in the Lum+Mel condition compared to baseline (p=0.001). In the hypoxia condition, the DLMO occurred on average 0.58 hour (34.8 minutes) earlier than baseline, but this change did not reach statistical significance (p=0.156). ConclusionsThis study provides preliminary evidence that normobaric hypoxia may modestly advance the human circadian phase, although not to a statistically significant extent. In contrast, combined phototherapy and melatonin administration produced a robust and significant phase advance in salivary melatonin onset. These findings suggest that while hypoxia may influence circadian timing, established interventions like light and melatonin remain more effective for circadian realignment. Further research is warranted to elucidate the mechanisms and optimize the application of hypoxia in circadian modulation.

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