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The development of cardiovascular and cerebral vascular control in preterm infants
Karinna L Fyfe1, Stephanie R Yiallourou1, Flora Y Wong2
1The Ritchie Centre, Monash Institute of Medical Research, Monash University, Melbourne, Australia.
Insights
Preterm birth, affecting 9.6% globally, impacts infant cardiovascular and brain development. This can lead to unstable blood pressure and cerebral blood flow, increasing risks for adverse outcomes.
Area of Science:
- Neonatal Physiology
- Developmental Neuroscience
- Cardiovascular Research
Background:
- Preterm birth rates are rising globally, impacting nearly 10% of all births.
- Preterm infants face risks of adverse cardiovascular and central nervous system outcomes due to altered development.
- Physiological stress in utero or infancy may contribute to long-term complications.
Purpose of the Study:
- To investigate the cardiovascular and neurological implications of preterm birth.
- To understand the impact of preterm birth on autonomic control and cerebral hemodynamics.
- To explore the link between physiological stress and adverse long-term outcomes in preterm infants.
Main Methods:
- Comparative analysis of cardiovascular parameters (heart rate, blood pressure) in preterm versus term infants.
- Assessment of autonomic control through heart rate variability and baroreflex sensitivity.
- Evaluation of cerebral blood flow regulation and pressure-passivity in preterm neonates.
Main Results:
- Preterm infants exhibit higher heart rates and lower blood pressure compared to term infants.
- Altered autonomic control is evident in preterm infants, affecting heart rate variability and blood pressure regulation.
- Immature cerebral hemodynamics and pressure-passivity increase risks for cerebral hemorrhage and hypoxia in preterm infants.
Conclusions:
- Preterm birth significantly affects cardiovascular stability and autonomic control in neonates.
- Vulnerable cerebral hemodynamics in preterm infants heighten the risk of brain injury.
- Understanding these physiological challenges is crucial for mitigating adverse long-term outcomes.
Abstract:
Over the past three decades there has been a steady increase in the incidence of preterm birth. The worldwide rate of preterm birth is estimated to be 9.6% of all births, a total of almost 13 million births annually. Preterm birth is associated with a range of adverse cardiovascular and central nervous system outcomes, which may be attributed to altered development of these systems following preterm birth. Preterm birth has a considerable impact on cardiovascular parameters with preterm infants displaying higher heart rates and reduced blood pressure when compared to term born infants at matched ages. Furthermore, premature infants have altered autonomic control of cardiovascular parameters which manifests as abnormalities in heart rate variability and baroreflex mediated control of heart rate and blood pressure. As a result, systemic cardiovascular parameters can be unstable following preterm birth which may place stress on the neonatal brain. The brain of a preterm infant is particularly vulnerable to these fluctuations due to immature cerebral haemodynamics. Preterm infants, particularly those who are very preterm or unwell, display fluctuating pressure-passivity between systemic blood pressure and cerebral blood flow representing a considerably increased risk of cerebral haemorrhage or hypoxia. This is further compounded by immaturity of cerebral blood flow-metabolism coupling, which means increased metabolic demand cannot adequately be met by increased cerebral blood flow. It has been suggested that adverse long-term outcomes following preterm birth may occur as a result of exposure to physiological stress either in-utero or early in infancy.
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