Ambient NO2 induces premature pulmonary senescence in rats: The role of the ROS-DRG1/CDK5 axis
Shuzi Ye1, Sijia Luo1, Yuanyuan Tan1
1Department of Health Toxicology, Xiangya School of Public Health, Central South University, Changsha 410013, China; FuRong Laboratory, Changsha 410078, China.
Abstract:
Cellular senescence plays a crucial role in respiratory diseases. Nitrogen dioxide (NO2), a major air pollutant, causes multi-system toxicity, primarily affecting the respiratory system. However, the association between NO2 and pulmonary senescence remains unclear. This study systematically explored the association between NO2 exposure and premature pulmonary senescence using animal and cellular models. Rats were exposed for 45 days (4 h/day) to filtered air, 0.5 ppmV, or 5.0 ppmV NO2. Human bronchial epithelial (HBE) cells were treated with 0 or 120 μmol/L NaNO3, a stable metabolite of NO2, for 96 h. HBE cells exhibited hallmark senescence phenotypes, including elevated reactive oxygen species (ROS), increased expression of senescence-associated proteins (Fibronectin 1 (Fn1), Clusterin (CLU), senescence Marker Protein 30 (SMP30)), elevated β-galactosidase (β-gal) activity, increased developmentally regulated GTP-binding protein 1 (DRG1) and cyclin-dependent protein kinase 5 (CDK5) expression, and G1-phase cell cycle arrest. Treatment with the ROS inhibitor N-acetylcysteine (NAC), si-DRG1, or a CDK5 inhibitor alleviated these effects. Co-immunoprecipitation assays revealed that NaNO3 promoted the interaction between DRG1 and CDK5 during senescence. The study demonstrated that NO2/NaNO3 induces bronchial epithelial cellular senescence, contributing to pulmonary senescence via ROS-dependent upregulation of DRG1 and CDK5 expression and interaction. Targeting the ROS-DRG1/CDK5 axis may represent a therapeutic strategy for environmental pollutant-induced premature respiratory senescence and provide new insights for the management of related disorders.


