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Published on: February 25, 2016
Development of baroreflex influences on heart rate variability in preterm infants
J E Mazursky1, C L Birkett, K A Bedell
1Department of Pediatrics, University of Iowa, Iowa City 52242, USA.
Insights
Autonomic cardiovascular reflexes in preterm infants mature with postnatal development. Heart rate variability analysis shows improved cardiac baroreceptor function as infants grow, indicating enhanced reflex responses.
Area of Science:
- Neonatal Physiology
- Cardiovascular Regulation
- Autonomic Nervous System Development
Background:
- Preterm infants exhibit immature autonomic cardiovascular reflexes.
- Understanding the development of these reflexes is crucial for neonatal care.
Purpose of the Study:
- To investigate the developmental trajectory of autonomic cardiovascular reflexes in preterm infants.
- To analyze the impact of upright tilting on heart rate variability (HRV) in relation to postnatal age.
Main Methods:
- Longitudinal study of 28 preterm infants from 28-32 weeks postconceptional age.
- Autoregressive power spectral analysis of HRV during supine and head-up tilt positions weekly.
- Analysis of low-frequency (LF) and high-frequency (HF) power spectral densities and the LF/HF ratio.
Main Results:
- Initially, head-up tilt caused no significant heart rate change, indicating a poorly developed cardiac baroreflex.
- With increasing postnatal age, heart rate response to tilt became significantly positive (P<0.005).
- The LF/HF ratio decreased with age in the supine position, signifying maturational changes in sympathovagal balance.
Conclusions:
- Cardiac baroreceptor reflexes in preterm infants are underdeveloped at 28-32 weeks postconceptional age.
- These reflexes mature significantly with postnatal development.
- Postnatal maturation enhances the functional capacity of cardiac baroreceptor reflexes in premature infants.
Abstract:
To investigate developmental changes in autonomic cardiovascular reflexes in preterm infants, we used autoregressive power spectral analysis to analyze the effect of upright tilting on heart rate variability in preterm infants. Twenty-eight infants were studied in a longitudinal fashion beginning at 28-32 weeks postconceptional age (postnatal age 1-5 weeks). Each week, heart rate variability in the supine position and after 45 degrees head-up tilt was analyzed by spectral analysis. With the initial study of each infant, there was no significant change in heart rate following head-up tilt compared with baseline (-0.5+/-0.9 bpm). However, linear regression analysis revealed that with increasing postnatal age, the change in heart rate in response to tilting became more positive (mean slope of regressions 0.45+/-0.12 bpm/week, P<0.005). The power spectral density of R-R interval variability in the low-(LF; 0.02-0.15 Hz) and high-(HF; 0.15-1.5 Hz) frequency ranges were obtained and the values normalized by dividing each component by the total power. For measurements obtained in the supine position, the LF/HF ratio progressively decreased with increasing postnatal age, indicating a maturational change in sympathovagal balance. We used the difference in the LF/HF ratio between tilt and the recumbent position as a measure of the change in autonomic input to the heart in response to unloading of the arterial baroreceptors. No significant change in these ratios were observed when infants were first studied between 28 and 32 weeks postconceptional age, suggesting that the cardiac baroreflex is poorly developed at this stage of development. However, with postnatal maturation, the LF component of the power spectrum became progressively larger with tilt relative to the basal state, such that the difference between LF/HF(tilt) and LF/HF(base) became progressively more positive (P <0.006). These findings suggest that in premature infants, cardiac baroreceptor reflexes become more functional with postnatal development.
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