吸烟排放物中萜烯类香料添加剂的臭氧分解:活性氧和氧化应激的生成增加。

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-05-22 DOI:10.1021/acs.chemrestox.4c00051
Wonsik Woo, Linhui Tian, Michael Lum, Alexa Canchola, Kunpeng Chen and Ying-Hsuan Lin*, 
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摘要

众所周知,电子烟在吸食过程中产生的气溶胶会形成各种自由基和活性氧(ROS)。尽管新鲜的电子烟排放物具有众所周知的氧化潜能和细胞毒性,但室内大气氧化剂对呼出的电子烟气溶胶的化学老化影响仍有待阐明。萜烯作为风味添加剂常见于电子液体中。在室内臭氧(O3)存在的情况下,含有萜烯类香料的电子烟气溶胶会发生化学变化,进一步产生 ROS 和活性碳。在这里,我们模拟了电子烟排放物在一个 2 立方米的 FEP 薄膜室中的老化过程,在 100 ppbv 的臭氧暴露下持续一小时。我们收集了老化的电子烟气溶胶和新鲜气溶胶,以检测 ROS 的存在。老化颗粒的氧化潜能高出 2 到 11 倍,进一步的分析表明,这些颗粒在水溶液条件下形成了更多的自由基。老化过程会诱发各种烷基氢过氧化物(ROOH)的形成,通过碘量测定定量,我们发现老化的烟雾剂颗粒中这些氢过氧化物的含量明显高于新鲜颗粒。支气管上皮细胞暴露在陈旧的吸入气溶胶中,会出现氧化应激基因HMOX-1和GSTP1的上调,这表明吸入气溶胶可能会产生毒性。这项研究强调了在地面臭氧浓度较高的环境中吸食电子烟的间接危险性,因为臭氧会将电子烟气溶胶化学转化为新的颗粒,与新鲜的电子烟气溶胶相比,新的颗粒会引起更大的氧化损伤。鉴于在目前的研究中,电子烟的毒理学特征主要与吸入新鲜气溶胶有关,我们的工作可能会提供一个视角,将在二手或三手条件下接触电子烟描述为一种重大的健康风险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Ozonolysis of Terpene Flavor Additives in Vaping Emissions: Elevated Production of Reactive Oxygen Species and Oxidative Stress

The production of e-cigarette aerosols through vaping processes is known to cause the formation of various free radicals and reactive oxygen species (ROS). Despite the well-known oxidative potential and cytotoxicity of fresh vaping emissions, the effects of chemical aging on exhaled vaping aerosols by indoor atmospheric oxidants are yet to be elucidated. Terpenes are commonly found in e-liquids as flavor additives. In the presence of indoor ozone (O3), e-cigarette aerosols that contain terpene flavorings can undergo chemical transformations, further producing ROS and reactive carbonyl species. Here, we simulated the aging process of the e-cigarette emissions in a 2 m3 FEP film chamber with 100 ppbv of O3 exposure for an hour. The aged vaping aerosols, along with fresh aerosols, were collected to detect the presence of ROS. The aged particles exhibited 2- to 11-fold greater oxidative potential, and further analysis showed that these particles formed a greater number of radicals in aqueous conditions. The aging process induced the formation of various alkyl hydroperoxides (ROOH), and through iodometric quantification, we saw that our aged vaping particles contained significantly greater amounts of these hydroperoxides than their fresh counterparts. Bronchial epithelial cells exposed to aged vaping aerosols exhibited an upregulation of the oxidative stress genes, HMOX-1 and GSTP1, indicating the potential for inhalation toxicity. This work highlights the indirect danger of vaping in environments with high ground-level O3, which can chemically transform e-cigarette aerosols into new particles that can induce greater oxidative damage than fresh e-cigarette aerosols. Given that the toxicological characteristics of e-cigarettes are mainly associated with the inhalation of fresh aerosols in current studies, our work may provide a perspective that characterizes vaping exposure under secondhand or thirdhand conditions as a significant health risk.

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