<p>Inhalation of fine atmospheric particulate matter (PM) with a diameter smaller than 2.5&#xa0;μm (PM<sub>2.5</sub>) has been linked to an increased risk of respiratory damage, hospital admissions, and respiratory-related fatalities. While the exact mechanism connecting PM<sub>2.5</sub> exposure to negative health outcomes remains unclear, oxidative stress caused by PM<sub>2.5</sub> is believed to play a critical role in its toxicity. CGK012 [(7S)-( +)-cyclopentyl carbamic acid 8,8-dimethyl-2-oxo-6,7-dihydro-2H,8H-pyrano[3,2-g]chromen-7-yl-ester] is a newly developed small-molecule inhibitor of the Wnt/β-catenin pathway. This study aimed to explore the protective effects of CGK012 against PM<sub>2.5</sub>-induced oxidative damage and to uncover the mechanisms involved. Human pulmonary artery endothelial cells (HPAECs) were exposed to PM<sub>2.5</sub> followed by CGK012 treatment. PM<sub>2.5</sub> exposure reduced HPAEC viability in a dose- and time-dependent manner, likely due to increased lactate dehydrogenase release and elevated intracellular reactive oxygen species. The oxidative damage was linked to changes in superoxide dismutase and catalase activities, as well as downregulation of SGK1, a key cell survival factor. CGK012 treatment, however, improved cell survival, decreased oxidative stress, and restored SGK1 expression. Additionally, CGK012 increased mTOR phosphorylation and significantly inhibited PM<sub>2.5</sub>-induced expression of toll-like receptor 4, MyD88, and autophagy markers LC3 II and Beclin 1. These results suggest that CGK012 offers protection against PM<sub>2.5</sub>-induced lung damage by targeting oxidative stress and mTOR-dependent autophagy pathways, positioning it as a potential treatment for PM<sub>2.5</sub>-related respiratory injury.</p>

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CGK012 attenuates PM2.5-induced oxidative stress via mTOR-autophagy regulation in human endothelial cells

  • Jinhee Lee,
  • Jong Beom Heo,
  • Gyuri Han,
  • Hae Joon Heo,
  • Gyu Yong Song,
  • Jong-Sup Bae

摘要

Inhalation of fine atmospheric particulate matter (PM) with a diameter smaller than 2.5 μm (PM2.5) has been linked to an increased risk of respiratory damage, hospital admissions, and respiratory-related fatalities. While the exact mechanism connecting PM2.5 exposure to negative health outcomes remains unclear, oxidative stress caused by PM2.5 is believed to play a critical role in its toxicity. CGK012 [(7S)-( +)-cyclopentyl carbamic acid 8,8-dimethyl-2-oxo-6,7-dihydro-2H,8H-pyrano[3,2-g]chromen-7-yl-ester] is a newly developed small-molecule inhibitor of the Wnt/β-catenin pathway. This study aimed to explore the protective effects of CGK012 against PM2.5-induced oxidative damage and to uncover the mechanisms involved. Human pulmonary artery endothelial cells (HPAECs) were exposed to PM2.5 followed by CGK012 treatment. PM2.5 exposure reduced HPAEC viability in a dose- and time-dependent manner, likely due to increased lactate dehydrogenase release and elevated intracellular reactive oxygen species. The oxidative damage was linked to changes in superoxide dismutase and catalase activities, as well as downregulation of SGK1, a key cell survival factor. CGK012 treatment, however, improved cell survival, decreased oxidative stress, and restored SGK1 expression. Additionally, CGK012 increased mTOR phosphorylation and significantly inhibited PM2.5-induced expression of toll-like receptor 4, MyD88, and autophagy markers LC3 II and Beclin 1. These results suggest that CGK012 offers protection against PM2.5-induced lung damage by targeting oxidative stress and mTOR-dependent autophagy pathways, positioning it as a potential treatment for PM2.5-related respiratory injury.