Literature DB >> 30508396

Hyperoxia-induced Cellular Senescence in Fetal Airway Smooth Muscle Cells.

Pavan Parikh1, Rodney D Britt2,3, Logan J Manlove4, Sarah A Wicher4, Anne Roesler4, Jovanka Ravix4, Jacob Teske4, Michael A Thompson4, Gary C Sieck5,6, James L Kirkland5,7, Nathan LeBrasseur5,6,7, Daniel J Tschumperlin5, Christina M Pabelick4,5, Y S Prakash4,5.   

Abstract

Supplemental O2 (hyperoxia; 30-90% O2) is a necessary intervention for premature infants, but it contributes to development of neonatal and pediatric asthma, necessitating better understanding of contributory mechanisms in hyperoxia-induced changes to airway structure and function. In adults, environmental stressors promote formation of senescent cells that secrete factors (senescence-associated secretory phenotype), which can be inflammatory and have paracrine effects that enhance chronic lung diseases. Hyperoxia-induced changes in airway structure and function are mediated in part by effects on airway smooth muscle (ASM). In the present study, using human fetal ASM cells as a model of prematurity, we ascertained the effects of clinically relevant moderate hyperoxia (40% O2) on cellular senescence. Fetal ASM exposed to 40% O2 for 7 days exhibited elevated concentrations of senescence-associated markers, including β-galactosidase; cell cycle checkpoint proteins p16, p21, and p-p53; and the DNA damage marker p-γH2A.X (phosphorylated γ-histone family member X). The combination of dasatinib and quercetin, compounds known to eliminate senescent cells (senolytics), reduced the number of hyperoxia-exposed β-galactosidase-, p21-, p16-, and p-γH2A.X-positive ASM cells. The senescence-associated secretory phenotype profile of hyperoxia-exposed cells included both profibrotic and proinflammatory mediators. Naive ASM exposed to media from hyperoxia-exposed senescent cells exhibited increased collagen and fibronectin and higher contractility. Our data show that induction of cellular senescence by hyperoxia leads to secretion of inflammatory factors and has a functional effect on naive ASM. Cellular senescence in the airway may thus contribute to pediatric airway disease in the context of sequelae of preterm birth.

Entities:  

Keywords:  asthma; neonatal; reactive airway disease; senescence

Mesh:

Substances:

Year:  2019        PMID: 30508396      PMCID: PMC6604224          DOI: 10.1165/rcmb.2018-0176OC

Source DB:  PubMed          Journal:  Am J Respir Cell Mol Biol        ISSN: 1044-1549            Impact factor:   6.914


  46 in total

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Review 3.  Cellular senescence in the lung across the age spectrum.

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10.  Hyperoxia causes senescence and increases glycolysis in cultured lung epithelial cells.

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