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Published on: October 19, 2013
Increased Bronchial Hyperresponsiveness and Higher Asymmetric Dimethylarginine Levels after Fetal Growth Restriction
Anne-Lise Bjørke-Monsen1, Maria Vollsæter2, Per M Ueland1,3
11 Laboratory of Clinical Biochemistry, and.
Insights
Intrauterine growth restriction in preterm infants is linked to increased bronchial hyperresponsiveness (BHR) and altered nitric oxide metabolism, suggesting long-term respiratory health implications.
Area of Science:
- Pediatric Pulmonology
- Neonatology
- Respiratory Medicine
Background:
- Bronchial hyperresponsiveness (BHR), a hallmark of asthma, is prevalent in preterm-born children.
- Intrauterine growth restriction (IUGR) is a known risk factor for BHR in this population.
- The interplay between BHR, nitric oxide (NO) metabolism, and inflammation in preterm infants with IUGR requires further elucidation.
Purpose of the Study:
- To investigate the association between IUGR and BHR in extremely preterm-born children.
- To examine the role of nitric oxide metabolism, specifically asymmetric dimethylarginine (ADMA), in this relationship.
- To explore potential links with bronchopulmonary dysplasia (BPD) and systemic inflammation markers.
Main Methods:
- A population-based study involving 57 extremely preterm-born children (gestational age <28 weeks or birth weight <1000 g) and 54 term-born controls.
- Assessment of methacholine-induced BHR (Met-BHR) and fractional exhaled nitric oxide (FeNO).
- Measurement of plasma ADMA and systemic soluble inflammation markers.
Main Results:
- Preterm children with IUGR exhibited significantly increased Met-BHR and elevated plasma ADMA levels.
- Met-BHR was positively correlated with ADMA levels (r=0.27, P=0.007).
- No significant associations were found between BPD status and Met-BHR, FeNO, or inflammation markers.
Conclusions:
- IUGR in preterm-born children is associated with heightened Met-BHR and altered NO regulation, indicated by higher ADMA levels.
- These findings highlight the lasting respiratory consequences of an adverse fetal environment.
- Further research in term-born populations is warranted to validate these observations.
Abstract:
Bronchial hyperresponsiveness (BHR), a feature of asthma, is observed in preterm-born children and has been linked to intrauterine growth restriction. BHR is mediated via airway smooth muscle tone and is modulated by the autonomic nervous system, nitric oxide, and airway inflammation. Interactions among these factors are insufficiently understood. Methacholine-induced BHR (Met-BHR), fractional exhaled NO, and systemic soluble markers of nitric oxide metabolism and inflammation were determined in a population-based sample of 57 eleven-year-old children born extremely preterm (gestational age [GA] < 28 wk) or with extremely low birth weight (<1,000 g), and in a matched normal-birth weight term-born control group (n = 54). Bronchopulmonary dysplasia (BPD) was defined as the need for oxygen treatment at a GA of 36 weeks. In preterm-born children, birth weight below the 10th percentile for GA was associated with increased Met-BHR and higher plasma levels of asymmetric dimethylarginine (ADMA), with an increased odds ratio for being in the upper tertile of Met-BHR (11.8; 95% confidence interval, 3.3-42.4) and of ADMA (5.2; 95% confidence interval, 1.3-20.3). Met-BHR was correlated to ADMA level (r = 0.27, P = 0.007). There were no significant differences in Met-BHR, fractional exhaled NO, or z-FEV1 according to BPD status. No associations with systemic soluble markers of inflammation were observed for Met-BHR, birth, or BPD status. Intrauterine growth restriction in preterm-born children was associated with substantially increased Met-BHR and higher ADMA levels, suggesting altered nitric oxide regulation. These findings contribute to the understanding of the consequences from an adverse fetal environment; they should also be tested in term-born children.
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