Key result
High altitude exposure is linked to decreased sleep R-R intervals, indicating increased sympathetic cardiovascular modulation.
Why the study?
Does high altitude acclimatization affect heart rate variability during sleep in mountain marathon runners compared to low altitude?
Observational (n=5)
No
Does high altitude acclimatization affect heart rate variability during sleep in mountain marathon runners compared to low altitude?
p-value: p=<0.001
High altitude exposure significantly decreases RR-intervals during sleep in marathon runners, reflecting increased sympathetic modulation that may protect against oxygen deprivation.
May reflect adaptive sympathetic activation during sleep at altitude in runners; hypothesis-generating and leaves open effects on performance or risk.
Fluctuations in autonomic cardiovascular regulation during exposure to high altitude may increase the risk of heart attack during waking and sleep. This study compared heart rate variability (HVR) and its components during sleep at low altitude and after 30 - 41 hours of acclimatization at high altitude (3480 m) in five mountain marathon runners controlled for diet, drugs, light-dark cycle and jet lag. In comparison to sea level, RR-intervals during sleep at high altitude decreased significantly (P 0.001). The significant increase in sympathetic autonomic cardiovascular modulation at high altitude protects against excessive oxygen deprivation during sleep. Increases in R-R intervals can require longer periods of acclimatization at3480 m to mitigate the effects of altitude/hypoxia on sympathetic tone, thus reducing cardiovascular distress at rest during waking and sleep and probably before during and after athletic performance at altitude.
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Gritti et al. (2013) conducted an observational in Healthy mountain marathon runners (n=5). High altitude exposure (3480 m) vs. Sea level (122 m) was evaluated on R-R intervals during sleep (p=<0.001). Exposure to high altitude (3480 m) significantly decreased R-R intervals during sleep compared to sea level (P < 0.001), indicating an increase in sympathetic autonomic cardiovascular modulation.
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