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February 9, 20261 citations

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

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MWMan WongTMTeresa MartinezMHMy Hua

Key Points

  • The research aims to understand the inhalation toxicology of hydroxyacetone in electronic cigarette aerosols and its effects on airway epithelial cells.
  • Used 3D EpiAirway tissues for acute exposures at the air-liquid interface
  • Conducted proteomics analysis for differential protein expression
  • Validated findings using submerged BEAS-2B cell cultures with varying hydroxyacetone concentrations
  • Assessed mitochondrial activity, oxidative stress, and F-actin integrity
  • Hydroxyacetone exposure caused mitochondrial dysfunction and oxidative stress in human airway cells
  • Significant increases in reactive oxygen species and hydrogen peroxide at 1 mg/mL
  • Cell rounding and apoptosis observed at 10 mg/mL
  • Actin cytoskeletal disruption noted at multiple concentrations, more severely affecting cytoplasmic filaments than cortical actin

Abstract

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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Cite This Study

Wong et al. (2026) studied this question.

synapsesocial.com/papers/69897a14f0ec2af6756e858dhttps://doi.org/10.1021/acs.chemrestox.5c00358
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