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Updated: Jul 17, 2026

Isolation of Pulmonary Artery Smooth Muscle Cells from Neonatal Mice
Published on: October 19, 2013
Hyperoxia reduces bone marrow, circulating, and lung endothelial progenitor cells in the developing lung:
Vivek Balasubramaniam1, Cela F Mervis, Anne M Maxey
1Pediatric Heart Lung Center, Department of Pediatrics, University of Colorado School of Medicine, Denver, Colorado, USA. vivek.balasubramaniam@uchsc.edu
Insights
Neonatal mice exposed to high oxygen levels experienced reduced vascular growth and impaired lung structure, linked to fewer endothelial progenitor cells (EPCs). This suggests a key factor in bronchopulmonary dysplasia development.
Area of Science:
- Pulmonary Medicine
- Neonatal Physiology
- Vascular Biology
Background:
- Bronchopulmonary dysplasia (BPD) is characterized by disrupted lung vascular and alveolar growth, often exacerbated by hyperoxia.
- Endothelial progenitor cells (EPCs) are crucial for vascular repair, but their role in neonatal lung development under hyperoxia is unclear.
Purpose of the Study:
- To investigate the hypothesis that neonatal hyperoxia impairs EPC mobilization and homing to the lung, contributing to structural abnormalities.
- To compare the effects of hyperoxia on EPCs and lung development in neonatal versus adult mice.
Main Methods:
- Neonatal and adult mice were exposed to 80% oxygen or room air for 10 days.
- Pulmonary vascular density, lung structure, and EPC populations (CD45-/Sca-1+/CD133+/VEGFR-2+) in blood, bone marrow, and lungs were analyzed.
- Expression levels of VEGF, nitric oxide (NO), and erythropoietin (Epo) signaling pathways were assessed.
Main Results:
- Neonatal hyperoxia significantly decreased pulmonary vascular density (72%) and simplified distal lung structure.
- EPCs were reduced in the blood (55%), bone marrow (48%), and lungs (66%) of neonatal mice exposed to hyperoxia.
- Conversely, adult mice showed increased EPCs in bone marrow (2.5-fold) and lungs (2-fold) after hyperoxia, with no significant impact on vascular density.
Conclusions:
- Moderate hyperoxia impairs lung vascular and alveolar growth in neonatal mice by reducing EPCs and downregulating key signaling pathways (VEGF, NO, Epo).
- The differential response of EPCs in neonatal versus adult mice highlights the developmental vulnerability of the neonatal lung to hyperoxia.
- These findings suggest that impaired EPC function in neonates contributes to the pathogenesis of BPD.
Abstract:
Hyperoxia disrupts vascular and alveolar growth of the developing lung and contributes to the development of bronchopulmonary dysplasia (BPD). Endothelial progenitor cells (EPC) have been implicated in repair of the vasculature, but their role in lung vascular development is unknown. Since disruption of vascular growth impairs lung structure, we hypothesized that neonatal hyperoxia impairs EPC mobilization and homing to the lung, contributing to abnormalities in lung structure. Neonatal mice (1-day-old) were exposed to 80% O(2) at Denver's altitude (= 65% at sea level) or room air for 10 days. Adult mice were also exposed for comparison. Blood, lung, and bone marrow were harvested after hyperoxia. Hyperoxia decreased pulmonary vascular density by 72% in neonatal but not adult mice. In contrast to the adult, hyperoxia simplified distal lung structure neonatal mice. Moderate hyperoxia reduced EPCs (CD45-/Sca-1+/CD133+/VEGFR-2+) in the blood (55%; P < 0.03), bone marrow (48%; P < 0.01), and lungs (66%; P < 0.01) of neonatal mice. EPCs increased in bone marrow (2.5-fold; P < 0.01) and lungs (2-fold; P < 0.03) of hyperoxia-exposed adult mice. VEGF, nitric oxide (NO), and erythropoietin (Epo) contribute to mobilization and homing of EPCs. Lung VEGF, VEGF receptor-2, endothelial NO synthase, and Epo receptor expression were reduced by hyperoxia in neonatal but not adult mice. We conclude that moderate hyperoxia decreases vessel density, impairs lung structure, and reduces EPCs in the circulation, bone marrow, and lung of neonatal mice but increases EPCs in adults. This developmental difference may contribute to the increased susceptibility of the developing lung to hyperoxia and may contribute to impaired lung vascular and alveolar growth in BPD.
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