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The genome-wide transcriptional response to neonatal hyperoxia identifies Ahr as a key regulator
Soumyaroop Bhattacharya1, Zhongyang Zhou2, Min Yee3
1Division of Neonatology, Department of Pediatrics, University of Rochester Medical Center, Rochester, New York; Pediatric Molecular and Personalized Medicine Program, Department of Pediatrics, University of Rochester Medical Center, Rochester, New York; and.
Insights
Neonatal hyperoxia, a model for bronchopulmonary dysplasia (BPD), significantly alters gene expression in mouse lungs. The aryl hydrocarbon receptor (Ahr) was identified as a key regulator of these hyperoxia-induced gene changes.
Area of Science:
- Pulmonary Medicine
- Genomics
- Developmental Biology
Background:
- Premature infants needing oxygen therapy face high risks of bronchopulmonary dysplasia (BPD).
- Neonatal hyperoxia models in rodents are crucial for understanding BPD pathology.
- Genome-wide studies can uncover novel genes and pathways involved in BPD.
Purpose of the Study:
- To conduct a genome-wide transcriptomic analysis of neonatal mouse lungs exposed to hyperoxia.
- To identify novel genes and pathways implicated in hyperoxia-induced lung injury.
- To elucidate the role of key regulatory nodes, such as the aryl hydrocarbon receptor (Ahr), in BPD pathogenesis.
Main Methods:
- Newborn mice were exposed to 100% oxygen for 10 days.
- High-throughput RNA sequencing (RNA-Seq) was performed on whole lung tissue.
- Bioinformatic analyses (SAM, IPA) identified dysregulated genes and pathways; qPCR validated gene expression; cell culture experiments tested mechanistic roles.
Main Results:
- Acute neonatal hyperoxia significantly affected 300 genes in mouse lungs.
- Dysregulated canonical pathways included oxidative stress signaling (Nrf2), p53 signaling, eNOS signaling, and aryl hydrocarbon receptor (Ahr) pathways.
- Ahr was identified as a critical regulatory node, mechanistically regulating hyperoxia markers like Cdkn1a, Pdgfrb, and A2m in lung epithelial cells.
Conclusions:
- Global gene expression analysis in a neonatal hyperoxia model of BPD-like pathology identified Ahr as a significant driver of gene dysregulation.
- Understanding Ahr's role provides insights into molecular mechanisms underlying BPD.
- This study highlights Ahr as a potential therapeutic target for preventing or treating BPD.
Abstract:
Premature infants requiring supplemental oxygen are at increased risk for developing bronchopulmonary dysplasia (BPD). Rodent models involving neonatal exposure to excessive oxygen concentrations (hyperoxia) have helped to identify mechanisms of BPD-associated pathology. Genome-wide assessments of the effects of hyperoxia in neonatal mouse lungs could identify novel BPD-related genes and pathways. Newborn C57BL/6 mice were exposed to 100% oxygen for 10 days, and whole lung tissue RNA was used for high-throughput, sequencing-based transcriptomic analysis (RNA-Seq). Significance Analysis of Microarrays and Ingenuity Pathway Analysis were used to identify genes and pathways affected. Expression patterns for selected genes were validated by qPCR. Mechanistic relationships between genes were further tested in cultured mouse lung epithelial cells. We identified 300 genes significantly and substantially affected following acute neonatal hyperoxia. Canonical pathways dysregulated in hyperoxia lungs included nuclear factor (erythryoid-derived-2)-like 2-mediated oxidative stress signaling, p53 signaling, eNOS signaling, and aryl hydrocarbon receptor (Ahr) pathways. Cluster analysis identified Ccnd1, Cdkn1a, and Ahr as critical regulatory nodes in the response to hyperoxia, with Ahr serving as the major effector node. A mechanistic role for Ahr was assessed in lung epithelial cells, and we confirmed its ability to regulate the expression of multiple hyperoxia markers, including Cdkn1a, Pdgfrb, and A2m. We conclude that a global assessment of gene regulation in the acute neonatal hyperoxia model of BPD-like pathology has identified Ahr as one driver of gene dysregulation.
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