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Development of a Neonatal Piglet Acute Lung Injury Model Recreating the Early Environment of Preterm Infant Lungs
Published on: October 31, 2025
Disrupted lung development and bronchopulmonary dysplasia: opportunities for lung repair and regeneration
Christopher D Baker1, Cristina M Alvira
1aSection of Pulmonary Medicine and Pediatric Heart Lung Center, Department of Pediatrics, University of Colorado School of Medicine, Aurora, Colorado, USA bDepartment of Pediatrics, Center for Excellence in Pulmonary Biology, Stanford University School of Medicine, Stanford, California, USA.
Insights
Bronchopulmonary dysplasia (BPD) in premature infants disrupts lung development and causes long-term deficits. Promoting alveolarization offers a new strategy to treat this persistent clinical problem.
Area of Science:
- Neonatal Medicine
- Pulmonary Biology
- Developmental Pediatrics
Background:
- Medical advances improve survival of extremely premature infants.
- Bronchopulmonary dysplasia (BPD) now primarily results from disrupted lung development rather than acute lung injury.
- Key questions involve molecular mechanisms of lung development, long-term effects of early disruption, and regenerative potential.
Purpose of the Study:
- To review the evolving understanding of bronchopulmonary dysplasia (BPD).
- To explore the impact of disrupted postnatal lung development on long-term outcomes.
- To identify potential therapeutic strategies for lung regeneration.
Main Methods:
- Review of recent clinical and experimental studies on alveolarization and BPD.
- Analysis of longitudinal data on BPD survivors' lung function.
- Synthesis of current knowledge on mechanisms controlling postnatal lung growth.
Main Results:
- Alveolarization, crucial for lung development, primarily occurs postnatally.
- Premature birth impairs alveolarization, reducing lung gas exchange surface area and causing BPD.
- BPD survivors exhibit persistent lung function deficits and increased risk for adult lung disease.
Conclusions:
- BPD remains a significant clinical challenge despite improved infant survival.
- Current treatments for BPD are largely supportive.
- Targeting postnatal alveolarization presents a promising avenue for developing effective BPD therapies.
Purpose Of Review:
Advances in medical therapy have increased survival of extremely premature infants and changed the pathology of bronchopulmonary dysplasia (BPD) from one of acute lung injury to a disease of disrupted lung development. With this evolution, new questions emerge regarding the molecular mechanisms that control postnatal lung development, the effect of early disruptions of postnatal lung development on long-term lung function, and the existence of endogenous mechanisms that permit lung regeneration after injury.
Recent Findings:
Recent data demonstrate that a significant component of alveolarization, the final stage of lung development, occurs postnatally. Further, clinical and experimental studies demonstrate that premature birth disrupts alveolarization, decreasing the gas exchange surface area of the lung and causing BPD. BPD is associated with significant short-term morbidity, and new longitudinal, clinical data demonstrate that survivors of BPD have long-standing deficits in lung function and may be at risk for the development of additional lung disease as adults. Unfortunately, current care is mainly supportive with few effective therapies that prevent or treat established BPD. These studies underscore the need to further elucidate the mechanisms that direct postnatal lung growth and develop innovative strategies to stimulate lung regeneration.
Summary:
Despite significant improvements in the care and survival of extremely premature infants, BPD remains a major clinical problem. Although efforts should remain focused on the prevention of preterm labor and BPD, novel research aimed at promoting postnatal alveolarization offers a unique opportunity to develop effective strategies to treat established BPD.
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