Hyperoxia-induced Cellular Senescence in Fetal Airway Smooth Muscle Cells

Pavan Parikh1, Rodney D Britt2,3, Logan J Manlove4

  • 11 Division of Maternal Fetal Medicine, Department of Obstetrics and Gynecology.

Insights

Supplemental oxygen, or hyperoxia, can induce cellular senescence in airway smooth muscle cells, contributing to pediatric asthma. Senolytic treatments reduced these senescent cells, suggesting a potential therapeutic target for preterm infants.

Area of Science:

  • Pulmonary Medicine
  • Cell Biology
  • Neonatology

Background:

  • Supplemental oxygen (hyperoxia) is vital for premature infants but linked to pediatric asthma.
  • Environmental stressors induce senescent cells with inflammatory secretory phenotypes, exacerbating chronic lung diseases.
  • Hyperoxia impacts airway smooth muscle (ASM), influencing airway structure and function.

Purpose of the Study:

  • To investigate the effects of clinically relevant moderate hyperoxia (40% O2) on cellular senescence in human fetal ASM cells.
  • To determine if senolytic compounds can mitigate hyperoxia-induced senescence in ASM cells.
  • To characterize the senescence-associated secretory phenotype (SASP) of hyperoxia-exposed ASM and its functional impact on naive ASM.

Main Methods:

  • Human fetal ASM cells were exposed to 40% O2 for 7 days.
  • Senescence markers (β-galactosidase, p16, p21, p-p53, p-γH2A.X) were quantified.
  • The effect of dasatinib and quercetin (senolytics) on senescent cells was assessed.
  • SASP factors were analyzed, and naive ASM was exposed to conditioned media.

Main Results:

  • Hyperoxia exposure elevated senescence markers in ASM cells.
  • Senolytic treatment reduced the number of senescent ASM cells.
  • Hyperoxia-induced SASP included profibrotic and proinflammatory mediators.
  • Conditioned media from senescent ASM increased collagen, fibronectin, and contractility in naive ASM.

Conclusions:

  • Hyperoxia induces cellular senescence in airway smooth muscle cells.
  • This senescence leads to the secretion of inflammatory and profibrotic factors.
  • Cellular senescence in the airway may contribute to pediatric airway diseases following preterm birth.

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