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通过评估支气管和肺泡黏膜模型中的肺毒理学反应来解决电子烟安全性分析的挑战。

Addressing the challenges of E-cigarette safety profiling by assessment of pulmonary toxicological response in bronchial and alveolar mucosa models.

机构信息

Unit of Integrative Toxicology, Institute of Environmental Medicine (IMM), Karolinska Institutet, Stockholm, Sweden.

Department of Environmental Health Sciences, School of Public Health, Yale University, New Haven, CT, USA.

出版信息

Sci Rep. 2020 Nov 24;10(1):20460. doi: 10.1038/s41598-020-77452-w.

DOI:10.1038/s41598-020-77452-w
PMID:33235237
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7686373/
Abstract

Limited toxicity data on electronic cigarette (ECIG) impede evidence-based policy recommendations. We compared two popular mixed fruit flavored ECIG-liquids with and without nicotine aerosolized at 40 W (E-smoke) with respect to particle number concentrations, chemical composition, and response on physiologically relevant human bronchial and alveolar lung mucosa models cultured at air-liquid interface. E-smoke was characterized by significantly increased particle number concentrations with increased wattage (25, 40, and 55 W) and nicotine presence. The chemical composition of E-smoke differed across the two tested flavors in terms of cytotoxic compounds including p-benzoquinone, nicotyrine, and flavoring agents (for example vanillin, ethyl vanillin). Significant differences in the expression of markers for pro-inflammation, oxidative stress, tissue injury/repair, alarm anti-protease, anti-microbial defense, epithelial barrier function, and epigenetic modification were observed between the flavors, nicotine content, and/ or lung models (bronchial or alveolar). Our findings indicate that ECIG toxicity is influenced by combination of multiple factors including flavor, nicotine content, vaping regime, and the region of respiratory tree (bronchial or alveolar). Toxic chemicals and flavoring agents detected in high concentrations in the E-smoke of each flavor warrant independent evaluation for their specific role in imparting toxicity. Therefore, multi-disciplinary approaches are warranted for comprehensive safety profiling of ECIG.

摘要

电子烟的有限毒性数据阻碍了基于证据的政策建议。我们比较了两种流行的混合水果口味的电子烟液体,一种含有尼古丁,另一种不含尼古丁,在 40 W 下雾化(E-smoke),比较了它们的粒子数浓度、化学成分以及对培养在气液界面的生理相关的人支气管和肺泡肺黏膜模型的反应。E-smoke 的粒子数浓度随着瓦数(25、40 和 55 W)和尼古丁的存在而显著增加。E-smoke 的化学成分因细胞毒性化合物(包括对苯醌、尼古丁和调味剂(如香草醛、乙基香草醛))的存在而在两种测试的口味之间有所不同。在炎症标志物、氧化应激标志物、组织损伤/修复标志物、警报抗蛋白酶标志物、抗微生物防御标志物、上皮屏障功能标志物和表观遗传修饰标志物的表达方面,两种口味、尼古丁含量和/或肺模型(支气管或肺泡)之间存在显著差异。我们的研究结果表明,电子烟的毒性受到多种因素的影响,包括口味、尼古丁含量、雾化模式和呼吸道区域(支气管或肺泡)。每种口味的 E-smoke 中检测到的高浓度有毒化学物质和调味剂值得对其赋予毒性的特定作用进行独立评估。因此,需要采用多学科方法对电子烟进行全面的安全性分析。

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