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May 6, 2026Annals of Work Exposures and Health0 citations

52 Cerebral oxidative stress response to acute diesel exhaust and world trade center dust exposures

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MMManuel MoralesKSKristina ShkirkovaMVMarc Vermulst

Key Points

  • This research examines how acute exposure to diesel exhaust and World Trade Center dust affects cerebral oxidative stress in mice.
  • C57BL/6 mice were exposed to diesel exhaust particles or World Trade Center dust via inhalation.
  • Exposure duration was 5 hours at a concentration of 100ug/m3, with a control group receiving filtered air.
  • Cerebral oxidative stress was assessed through whole cell lysate assays and immunofluorescence.
  • Reduced antioxidant activity (GPx and PCOOH) was observed in the cortex of mice exposed to DEP and WTC dust compared to controls.
  • Increased levels of 4-HNE in the cortex were noted in DEP and WTC exposure groups versus controls.
  • Elevated 8-OHdG levels were found in the DEP group, indicating oxidative stress.

Abstract

Abstract Background In acute settings, particulate matter related oxidative stress presents a significant risk factor for cerebrovascular disease and stroke. In this study, we aim to investigate the effect of particulate matter from two sources with heterogeneous chemical compositions: diesel exhaust particles (DEP) and World Trade Center dust (WTC). Methods 2-month-old C57BL/6 mice (n = 6/sex/group) were exposed via inhalation for 5 h to DEP or WTC dust at 100ug/m3 concentration or filtered air as a control. After humane euthanasia and PBS perfusion, brains were prepared either in −80 freezing or fixated in PFA. Oxidative stress was measured using whole cell lysate assays (GPx enzyme, PCOOH assay, and 4-HNE) and immunofluorescence for 4-HNE and 8-OHdG. Results In the whole cell lysate cortex assays, antioxidant GPx and PCOOH activity were reduced in DEP and WTC compared to Filter group. 4-HNE increased in the cortex of DEP and WTC animals compared to Filter. On the immunofluorescent analysis in the cortex 8-OHdG was elevated in the DEP group compared to Filter, while in the corpus callosum, both 4-HNE and 8-OHdG increased in DEP group but not in WTC group. Discussion Our data suggests that an acute exposure to chemically different pollutants results in cerebral oxidative stress damage. Both DEP and WTC exposures blunt oxidized lipid detoxification and promotes oxidative stress response, although with variability across brain areas. Further research is needed to characterize biochemical elements contributing to cerebral oxidative stress in exogenous environmental exposure.

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Cite This Study

Morales et al. (2026) studied this question.

synapsesocial.com/papers/69fa8eca04f884e66b53132chttps://doi.org/10.1093/annweh/wxag024.032
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Prolonged brain cytokine elevation and microgliosis following exposure to World Trade Center dust particulate matter in male spontaneously hypertensive rats2026
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  3. 3D94-04 Regulators of Oxidative Stress and Inflammation in a High Fat Diet Murine Model With World Trade Center Particulate Matter Exposure2026
  4. 4Urban exposures, frailty, and mental illness in World Trade Center Health Program responders2026
  5. 5Inhalation of Particulate-free Diesel Engine Exhaust Induces Pulmonary Histopathological Alterations in Rat Models: Role of TRPV1 Receptors and Oxidative Stress During Sub-acute Exposure2025