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Published on: December 12, 2014
Heart rate recovery after maximal exercise is impaired in healthy young adults born preterm
Kristin Haraldsdottir1,2, Andrew M Watson3, Arij G Beshish1
1Department of Pediatrics, University of Wisconsin-Madison, Madison, WI, USA.
Insights
Young adults born preterm show impaired heart rate recovery (HRR), a marker of autonomic nervous system function. This suggests potential long-term cardiovascular risks, warranting further investigation into autonomic dysfunction following premature birth.
Area of Science:
- Physiology
- Cardiology
- Neonatology
Background:
- Premature birth can have lasting effects on physiological systems.
- Autonomic nervous system (ANS) function, assessed by heart rate recovery (HRR), is crucial for cardiovascular health.
- Long-term ANS function in preterm survivors is not well understood.
Purpose of the Study:
- To investigate whether young adults born preterm (PYA) exhibit impaired HRR.
- To assess ANS function in PYA compared to term-born controls.
Main Methods:
- Recruited individuals born preterm (<1500g, 28 weeks gestation) and age-matched term-born controls.
- Measured HRR for 2 minutes post-maximal exercise in normoxia and hypoxia.
- Assessed maximal aerobic capacity (VO2max).
Main Results:
- Preterm individuals had significantly lower VO2max compared to controls.
- PYA demonstrated slower HRR at 1 and 2 minutes post-exercise in normoxia, even after adjusting for VO2max.
- HRR was also slower in hypoxia, but this difference was not significant after VO2max adjustment.
Conclusions:
- Impaired HRR in young adults born preterm indicates potential autonomic dysfunction.
- This dysfunction may be linked to increased cardiovascular disease risk observed in non-preterm populations.
- Further research is needed to elucidate the mechanisms of autonomic dysfunction after preterm birth.
Purpose:
The long-term implications of premature birth on autonomic nervous system (ANS) function are unclear. Heart rate recovery (HRR) following maximal exercise is a simple tool to evaluate ANS function and is a strong predictor of cardiovascular disease. Our objective was to determine whether HRR is impaired in young adults born preterm (PYA).
Methods:
Individuals born between 1989 and 1991 were recruited from the Newborn Lung Project, a prospectively followed cohort of subjects born preterm weighing < 1500 g with an average gestational age of 28 weeks. Age-matched term-born controls were recruited from the local population. HRR was measured for 2 min following maximal exercise testing on an upright cycle ergometer in normoxia and hypoxia, and maximal aerobic capacity (VO2max) was measured.
Results:
Preterms had lower VO2max than controls (34.88 ± 5.24 v 46.15 ± 10.21 ml/kg/min, respectively, p < 0.05), and exhibited slower HRR compared to controls after 1 and 2 min of recovery in normoxia (absolute drop of 20 ± 4 v 31 ± 10 and 41 ± 7 v 54 ± 11 beats per minute (bpm), respectively, p < 0.01) and hypoxia (19 ± 5 v 26 ± 8 and 39 ± 7 v 49 ± 13 bpm, respectively, p < 0.05). After adjusting for VO2max, HRR remained slower in preterms at 1 and 2 min of recovery in normoxia (21 ± 2 v 30 ± 2 and 42 ± 3 v 52 ± 3 bpm, respectively, p < 0.05), but not hypoxia (19 ± 3 v 25 ± 2 and 40 ± 4 v 47 ± 3 bpm, respectively, p > 0.05).
Conclusions:
Autonomic dysfunction as seen in this study has been associated with increased rates of cardiovascular disease in non-preterm populations, suggesting further study of the mechanisms of autonomic dysfunction after preterm birth.
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