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.

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