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Isolation of Pulmonary Artery Smooth Muscle Cells from Neonatal Mice
Published on: October 19, 2013
Hyperoxia and iron homeostasis in developing human airway smooth muscle
Yamillie Ortiz1, Maunick Lefin Koloko Ngassie1, Colleen M Bartman1
1Department of Anesthesiology and Perioperative Medicine, Mayo Clinic, Rochester, Minnesota, United States.
Insights
Supplemental oxygen harms premature infant airways, with moderate levels impairing antioxidant defenses and severe levels inducing ferroptosis. This study reveals a dose-dependent effect of oxygen on airway disease development.
Area of Science:
- Pulmonary Medicine
- Cell Biology
- Neonatology
Background:
- Premature infants receiving supplemental oxygen face risks of airway diseases like asthma, hyperoxic lung injury (HLI), and bronchopulmonary dysplasia (BPD).
- Previous research linked severe hyperoxia (80-90% O2) to increased reactive oxygen species (ROS), lipid peroxidation, and ferroptosis in HLI models.
- The effects of clinically relevant moderate hyperoxia (<60% O2) on developing airways remain less understood.
Purpose of the Study:
- To investigate whether hyperoxia contributes to ferroptosis in human fetal airway smooth muscle (fASM) cells.
- To examine the impact of moderate and severe hyperoxia on antioxidant systems, iron metabolism, and lipid peroxidation in fASM.
- To assess the potential protective effects of Deferoxamine (DFO) and Ferrostatin-1 (Fer-1) against hyperoxia-induced ferroptosis.
Main Methods:
- Human fetal airway smooth muscle (fASM) cells were pretreated with or without DFO or Fer-1.
- Cells were exposed to normoxia (21% O2) or moderate to severe hyperoxia (50%, 70%, or 90% O2) for 48 hours.
- Analysis included assessment of antioxidant systems, iron metabolism, lipid peroxidation, and ferroptosis markers.
Main Results:
- Moderate hyperoxia impaired antioxidant systems and dysregulated iron metabolism in fASM cells.
- Severe hyperoxia (90% O2) increased labile iron and lipid peroxidation, indicating early ferroptosis.
- DFO reduced cytosolic iron, and Fer-1 decreased lipid peroxidation byproducts, though neither rescued antioxidant systems.
Conclusions:
- Supplemental oxygen exposure impacts premature infant airways in a dose-dependent manner.
- Hyperoxia affects iron metabolism and lipid peroxidation, potentially leading to ferroptosis in airway smooth muscle.
- Understanding these mechanisms is crucial for managing oxygen therapy in premature infants and preventing airway diseases.
Abstract:
Premature infants exposed to supplemental oxygen (O2) are at increased risk of developing airway diseases such as asthma, hyperoxic lung injury (HLI), and bronchopulmonary dysplasia (BPD). Therefore, it is important to understand how O2 detrimentally impacts developing airways. Previous studies found that severe (80%-90%) O2 exposure increases reactive oxygen species (ROS) and lipid peroxidation, inducing ferroptosis in models of HLI. However, the impact of clinically relevant moderate (<60%) O2 exposure is less understood. Recognizing the importance of smooth muscle in airway dysfunction, the present study uses human fetal airway smooth muscle (fASM) as a model to investigate whether hyperoxia contributes to the establishment of a ferroptotic phenotype. fASM pretreated with or without deferoxamine (DFO; 100 µM) or ferrostatin (Fer-1; 10 µM) was exposed for 48 h to normoxia (21% O2) versus moderate to severe hyperoxia (50%, 70%, or 90% O2). The effects of hyperoxia on antioxidant systems, iron metabolism, and lipid peroxidation, and the alleviating effect of DFO or Fer-1 were examined. Moderate hyperoxia impaired antioxidant systems involved in preventing ferroptosis and dysregulated iron metabolism. Interestingly, only severe hyperoxia (90% O2) induced negative effects on downstream mechanisms involving early onset of ferroptosis such as increased labile iron and lipid peroxidation. DFO and Fer-1 showed no rescue effect on antioxidant systems. However, DFO decreased cytosolic iron, and Fer-1 decreased lipid peroxidation byproducts. Together, these data highlight the impact of supplemental oxygen on premature airways and introduce the concept of a dose-dependent effect of hyperoxia in the context of iron metabolism, lipid peroxidation, and ultimately ferroptosis.NEW & NOTEWORTHY Recognizing that antioxidant systems are impaired in the airways of premature infants, we used human fetal airway cells to explore the impact of oxygen on iron regulation and iron-mediated cell death (ferroptosis). We find moderate hyperoxia impairs antioxidant systems that prevent ferroptosis and dysregulates iron metabolism, while severe hyperoxia has a negative effect on mechanisms driving the early onset of ferroptosis. Inhibitors of ferroptosis decrease iron and lipid peroxidation, demonstrating links between oxygen and iron regulation in developing airways.
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