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Updated: Aug 28, 2025

Isolation of Pulmonary Artery Smooth Muscle Cells from Neonatal Mice
Published on: October 19, 2013
Neonatal intermittent hypoxia persistently impairs lung vascular development and induces long-term lung mitochondrial
Andreas Damianos1,2, Shathiyah Kulandavelu1,3, Pingping Chen1,2
1Department of Pediatrics, University of Miami Miller School of Medicine, Miami, Florida.
Insights
Neonatal intermittent hypoxia (IH) causes lasting mitochondrial DNA damage in lung cells, impairing vascular growth and increasing pulmonary hypertension risk in preterm infants. Protecting mitochondria may prevent these long-term effects.
Area of Science:
- Pulmonary vascular disease research
- Neonatal physiology and pathology
- Mitochondrial DNA research
Background:
- Adults born preterm face higher risks of pulmonary vascular disease.
- Preterm infants often experience intermittent hypoxia (IH), especially when requiring supplemental oxygen.
Purpose of the Study:
- To investigate if neonatal IH causes mitochondrial DNA (mitDNA) damage in lung endothelial cells.
- To determine if this damage contributes to long-term pulmonary vascular disease and pulmonary hypertension (PH).
Main Methods:
- Newborn mice were exposed to normoxia, hyperoxia, IH, or hyperoxia with IH for 3 weeks.
- In vitro studies used human pulmonary microvascular endothelial cells (HPMECs) exposed to IH.
- Lung angiogenesis, PH, and mitDNA lesions were assessed at 3 weeks and 3 months.
Main Results:
- In vitro, IH reduced HPMEC tubule formation and increased mitDNA lesions, especially with hyperoxia.
- Neonatal IH in mice led to increased lung mitDNA lesions, impaired angiogenesis, and PH at 3 weeks.
- These effects persisted at 3 months, even without hyperoxia, indicating long-term damage.
Conclusions:
- Neonatal IH induces persistent mitochondrial DNA damage and impairs lung angiogenesis in endothelial cells.
- This provides a mechanism for pulmonary vascular disease in preterm survivors.
- Mitochondrial protection strategies may offer therapeutic potential for mitigating IH-induced lung injury.
Abstract:
Adults born preterm have an increased risk of pulmonary vascular disease. Extreme preterm infants often require supplemental oxygen but they also exhibit frequent intermittent hypoxemic episodes (IH). Here, we test the hypothesis that neonatal IH induces lung endothelial cell mitochondrial DNA (mitDNA) damage and contributes to long-term pulmonary vascular disease and pulmonary hypertension (PH). Newborn C57BL/6J mice were assigned to the following groups: 1) normoxia, 2) hyperoxia (O2 65%), 3) normoxia cycling with IH (O2 21% + O2 10%), and 4) hyperoxia cycling with IH (O2 65% + O2 10%) for 3 wk. IH episodes were initiated on postnatal day 7. Lung angiogenesis, PH, and mitDNA lesions were assessed at 3 wk and 3 mo. In vitro, the effect of IH on tubule formation and mitDNA lesions was evaluated in human pulmonary microvascular endothelial cells (HPMECs). Data were analyzed by ANOVA. In vitro, IH exposure reduced tubule formation and increased mitDNA lesions in HPMECs. This was most marked in HPMECs exposed to hyperoxia cycling with IH. In vivo, neonatal IH increased lung mitDNA lesions, impaired angiogenesis, and induced PH in 3-wk-old mice. These findings were pronounced in mice exposed to hyperoxia cycling with IH. At 3 mo follow-up, mice exposed to neonatal IH had persistently increased lung mitDNA lesions and impaired lung angiogenesis, even without concomitant hyperoxia exposure. Neonatal IH induces lung endothelial cell mitDNA damage and causes persistent impairment in lung angiogenesis. These findings provide important mechanistic insight into the pathogenesis of pulmonary vascular disease in preterm survivors.NEW & NOTEWORTHY Our current study demonstrates that neonatal intermittent hypoxia (IH) alters lung endothelial cell function, induces mitochondrial DNA lesions, and impairs lung vascular growth into adulthood. Moreover, when superimposed on hyperoxia, neonatal IH induces a severe lung vascular phenotype that is seen in preterm infants with PH. These findings suggest that neonatal IH contributes to PH in adults born preterm and importantly, that mitochondrial protection strategies may mitigate these deleterious effects.
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