Unraveling the Toxicological Effects of Hydroxyacetone─A Reaction Product in Electronic Cigarette Aerosols

活性氧 化学 细胞骨架 线粒体 氧化磷酸化 细胞生物学 细胞质 氧化应激 过氧化氢 细胞凋亡 生物化学 毒性 肌动蛋白 细胞培养 吸入 线粒体呼吸链 吸入染毒 电子烟 生物物理学 氧化损伤 抗氧化剂 天然产物 线粒体内膜 香烟烟雾 细胞 生物 氧气 谷胱甘肽 程序性细胞死亡 纳米毒理学
作者
Man Wong,Teresa Martinez,My Hua,Nathan G. Hendricks,Prue Talbot
出处
期刊:Chemical Research in Toxicology [American Chemical Society]
卷期号:39 (3): 305-318
标识
DOI:10.1021/acs.chemrestox.5c00358
摘要

Hydroxyacetone was previously detected at high concentrations (up to ∼12 mg/mL) in electronic cigarette (EC) aerosols, including those derived from products associated with adverse health effects. Given the limited understanding of its inhalation toxicology, we investigated hydroxyacetone's impact on human airway epithelial cells. Acute exposures at the air-liquid interface (ALI) using 3D EpiAirway tissues─a surrogate for human tracheobronchial epithelium─were analyzed via proteomics. Differential expression analysis identified numerous affected proteins, with enrichment pointing to alterations in mitochondrial function and actin cytoskeletal disruption as major targets. Ingenuity Pathway Analysis (IPA) highlighted "Mitochondrial Dysfunction" and "NRF2-Mediated Oxidative Stress" among top toxicological categories, and "Nuclear Cytoskeletal Signaling" as a key canonical pathway. To validate and extend these findings, submerged cultures of BEAS-2B cells were exposed to hydroxyacetone (0.01-10 mg/mL) and assessed for mitochondrial activity, oxidative stress, and F-actin integrity. At 1 mg/mL, mitochondrial membrane potential and reactive oxygen species (ROS) increased, with elevated hydrogen peroxide detected in the culture medium. At 10 mg/mL, mitochondrial activity declined significantly, accompanied by cell rounding and apoptotic blebbing within 2 h. F-actin destabilization occurred at 1, 3.33, and 10 mg/mL, with cytoplasmic and perinuclear filaments more affected than cortical actin. Findings from ALI and submerged models were concordant, supporting hydroxyacetone-induced mitochondrial stress, oxidative damage, and cytoskeletal disruption. These results suggest that hydroxyacetone concentrations found in EC aerosols may contribute to respiratory toxicity and warrant further investigation.
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