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Updates on Functional Characterization of Bronchopulmonary Dysplasia - The Contribution of Lung Function Testing
Anne Greenough1, Anoop Pahuja2
1Division of Asthma, Allergy and Lung Biology, MRC and Asthma UK Centre in Allergic Mechanisms of Asthma, King's College London , London , UK ; NIHR Biomedical Research Centre, Guy's and St. Thomas NHS Foundation Trust , London , UK.
Insights
Bronchopulmonary dysplasia (BPD) affects premature infants, causing chronic lung disease with varying severity. Early lung function tests in neonates are crucial for understanding BPD, but predicting long-term outcomes remains challenging.
Area of Science:
- Neonatology
- Pediatric Pulmonology
- Respiratory Medicine
Background:
- Bronchopulmonary dysplasia (BPD) is a chronic lung disease affecting premature infants.
- BPD presentation has evolved, now including infants with minimal initial lung disease signs.
- Diagnosis criteria and oxygen saturation levels influence observed lung function abnormalities.
Purpose of the Study:
- To review the current understanding of lung function abnormalities in infants with BPD.
- To discuss the challenges in predicting BPD development and long-term respiratory outcomes.
- To explore the impact of interventions and ventilation strategies on infant lung function.
Main Methods:
- Literature review and synthesis of studies on BPD and infant lung function.
- Analysis of neonatal lung function parameters in BPD.
- Evaluation of the effectiveness of interventions like diuretics, bronchodilators, and high-frequency oscillation.
Main Results:
- Infants with BPD consistently show low compliance, low functional residual capacities, and increased resistance in the neonatal period.
- No single early lung function measurement reliably predicts BPD development across studies.
- While lung function may improve in infancy, airflow limitation and small airway dysfunction persist.
- Diuretics and bronchodilators show limited long-term respiratory benefits.
- Neonatal high-frequency oscillation may protect small airway function.
Conclusions:
- Interpreting infant lung function in BPD requires careful consideration of diagnostic criteria, testing methods, and population size.
- BPD is not a definitive predictor of long-term respiratory morbidity.
- Early ventilation strategies, such as high-frequency oscillation, show promise in preserving lung function.
Abstract:
Bronchopulmonary dysplasia (BPD) is a chronic lung disease that predominantly affects prematurely born infants. Initially, BPD was described in infants who had suffered severe respiratory failure and required high pressure, mechanical ventilation with high concentrations of supplementary oxygen. Now, it also occurs in very prematurely born infants who initially had minimal or even no signs of lung disease. These differences impact the nature of the lung function abnormalities suffered by "BPD" infants, which are also influenced by the criteria used to diagnose BPD and the oxygen saturation level used to determine the supplementary oxygen requirement. Key also to interpreting lung function data in this population is whether appropriate lung function tests have been used and in an adequately sized population to make meaningful conclusions. It should also be emphasized that BPD is a poor predictor of long-term respiratory morbidity. Bearing in mind those caveats, studies have consistently demonstrated that infants who develop BPD have low compliance and functional residual capacities and raised resistances in the neonatal period. There is, however, no agreement with regard to which early lung function measurement predicts the development of BPD, likely reflecting different techniques were used in different populations in often underpowered studies. During infancy, lung function generally improves, but importantly airflow limitation persists and small airway function appears to decline. Improvements in lung function following administration of diuretics or bronchodilators have not translated into long-term improvements in respiratory outcomes. By contrast, early differences in lung function related to different ventilation modes have led to investigation and demonstration that prophylactic, neonatal high-frequency oscillation appears to protect small airway function.
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