Scientific Reports (Jan 2024)

Hyperoxia prevents the dynamic neonatal increases in lung mesenchymal cell diversity

  • Fabio Zanini,
  • Xibing Che,
  • Nina E. Suresh,
  • Carsten Knutsen,
  • Paula Klavina,
  • Yike Xie,
  • Racquel Domingo-Gonzalez,
  • Min Liu,
  • Alexander Kum,
  • Robert C. Jones,
  • Stephen R. Quake,
  • Cristina M. Alvira,
  • David N. Cornfield

DOI
https://doi.org/10.1038/s41598-023-50717-w
Journal volume & issue
Vol. 14, no. 1
pp. 1 – 16

Abstract

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Abstract Rapid expansion of the pulmonary microvasculature through angiogenesis drives alveolarization, the final stage of lung development that occurs postnatally and dramatically increases lung gas-exchange surface area. Disruption of pulmonary angiogenesis induces long-term structural and physiologic lung abnormalities, including bronchopulmonary dysplasia, a disease characterized by compromised alveolarization. Although endothelial cells are primary determinants of pulmonary angiogenesis, mesenchymal cells (MC) play a critical and dual role in angiogenesis and alveolarization. Therefore, we performed single cell transcriptomics and in-situ imaging of the developing lung to profile mesenchymal cells during alveolarization and in the context of lung injury. Specific mesenchymal cell subtypes were present at birth with increasing diversity during alveolarization even while expressing a distinct transcriptomic profile from more mature correlates. Hyperoxia arrested the transcriptomic progression of the MC, revealed differential cell subtype vulnerability with pericytes and myofibroblasts most affected, altered cell to cell communication, and led to the emergence of Acta1 expressing cells. These insights hold the promise of targeted treatment for neonatal lung disease, which remains a major cause of infant morbidity and mortality across the world.