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Published on: October 19, 2013
Upregulating carnitine palmitoyltransferase 1 attenuates hyperoxia-induced endothelial cell dysfunction and
Jason L Chang1, Jiannan Gong1,2, Salu Rizal1
1Division of Biology and Medicine, Department of Molecular Biology, Cell Biology and Biochemistry, Brown University, 185 Meeting Street, SFH, Providence, RI, 02912, USA.
Insights
Upregulating carnitine palmitoyltransferase 1a (Cpt1a) with baicalin or L-carnitine protects against hyperoxia-induced lung injury in premature infants. These compounds may prevent bronchopulmonary dysplasia (BPD) by improving endothelial cell function.
Area of Science:
- Neonatal research
- Pulmonary medicine
- Endothelial cell biology
Background:
- Bronchopulmonary dysplasia (BPD) is a chronic lung disease in premature infants.
- The vascular hypothesis suggests lung endothelial cell dysfunction drives BPD.
- Endothelial carnitine palmitoyltransferase 1a (Cpt1a) is reduced by hyperoxia, increasing injury susceptibility.
Purpose of the Study:
- To investigate if Cpt1a upregulation by baicalin or L-carnitine can ameliorate hyperoxia-induced endothelial cell dysfunction and lung injury.
- To test the hypothesis that Cpt1a upregulation protects against BPD development.
Main Methods:
- Lung endothelial cells and newborn mice were exposed to hyperoxia (50% and 95% O2) followed by air recovery.
- Cells and mice were treated with varying doses of baicalin or L-carnitine.
- Hyperoxia-induced apoptosis, migration, angiogenesis, and lung structural changes were assessed.
- Experiments included endothelial cell-specific Cpt1a knockout mice.
Main Results:
- Baicalin and L-carnitine reduced hyperoxia-induced apoptosis, impaired migration, and angiogenesis in lung endothelial cells.
- These treatments increased Cpt1a gene expression.
- In mice, baicalin and L-carnitine attenuated persistent alveolar and vascular simplification caused by neonatal hyperoxia.
- The protective effects were diminished in endothelial cell-specific Cpt1a knockout mice.
Conclusions:
- Upregulating Cpt1a via baicalin or L-carnitine effectively ameliorates hyperoxia-induced lung endothelial cell dysfunction.
- These compounds mitigate persistent alveolar and vascular simplification, offering potential therapeutic strategies for BPD.
- L-carnitine and baicalin show promise as Cpt1a upregulators to prevent lung injury in premature infants.
Background:
Bronchopulmonary dysplasia (BPD) is a chronic lung disease in premature infants that may cause long-term lung dysfunction. Accumulating evidence supports the vascular hypothesis of BPD, in which lung endothelial cell dysfunction drives this disease. We recently reported that endothelial carnitine palmitoyltransferase 1a (Cpt1a) is reduced by hyperoxia, and that endothelial cell-specific Cpt1a knockout mice are more susceptible to developing hyperoxia-induced injury than wild type mice. Whether Cpt1a upregulation attenuates hyperoxia-induced endothelial cell dysfunction and lung injury remains unknown. We hypothesized that upregulation of Cpt1a by baicalin or L-carnitine ameliorates hyperoxia-induced endothelial cell dysfunction and persistent lung injury.
Methods:
Lung endothelial cells or newborn mice (< 12 h old) were treated with baicalin or L-carnitine after hyperoxia (50% and 95% O2) followed by air recovery.
Results:
We found that incubation with L-carnitine (40 and 80 mg/L) and baicalin (22.5 and 45 mg/L) reduced hyperoxia-induced apoptosis, impaired cell migration and angiogenesis in cultured lung endothelial cells. This was associated with increased Cpt1a gene expression. In mice, neonatal hyperoxia caused persistent alveolar and vascular simplification in a concentration-dependent manner. Treatment with L-carnitine (150 and 300 mg/kg) and baicalin (50 and 100 mg/kg) attenuated neonatal hyperoxia-induced alveolar and vascular simplification in adult mice. These effects were diminished in endothelial cell-specific Cpt1a knockout mice.
Conclusions:
Upregulating Cpt1a by baicalin or L-carnitine ameliorates hyperoxia-induced lung endothelial cell dysfunction, and persistent alveolar and vascular simplification. These findings provide potential therapeutic avenues for using L-carnitine and baicalin as Cpt1a upregulators to prevent persistent lung injury in premature infants with BPD.
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