Department of Pharmacology and Toxicology, Ernest Mario School of Pharmacy, Rutgers University, Piscataway, New Jersey, United States.
Department of Environmental and Occupational Health and Justice, School of Public Health, Rutgers University, Piscataway, New Jersey, United States.
Am J Physiol Lung Cell Mol Physiol. 2023 Mar 1;324(3):L345-L357. doi: 10.1152/ajplung.00222.2022. Epub 2023 Jan 24.
E-cigarette consumption is under scrutiny by regulatory authorities due to concerns about product toxicity, lack of manufacturing standards, and increasing reports of e-cigarette- or vaping-associated acute lung injury. In vitro studies have demonstrated cytotoxicity, mitochondrial dysfunction, and oxidative stress induced by unflavored e-cigarette aerosols and flavoring additives. However, e-cigarette effects on the complex lung parenchyma remain unclear. Herein, the impact of e-cigarette condensates with or without menthol flavoring on functional, structural, and cellular responses was investigated using mouse precision cut lung slices (PCLS). PCLS were exposed to e-cigarette condensates prepared from aerosolized vehicle, nicotine, nicotine + menthol, and menthol e-fluids at doses from 50 to 500 mM. Doses were normalized to the glycerin content of vehicle. Video-microscopy of PCLS revealed impaired contractile responsiveness of airways to methacholine and dampened ciliary beating following exposure to menthol-containing condensates at concentrations greater than 300 mM. Following 500 mM menthol-containing condensate exposure, epithelial exfoliation in intrabronchial airways was identified in histological sections of PCLS. Measurement of lactate dehydrogenase release, mitochondrial water-soluble-tetrazolium salt-1 conversion, and glutathione content supported earlier findings of nicotine or nicotine + menthol e-cigarette-induced dose-dependent cytotoxicity and oxidative stress responses. Evaluation of PCLS metabolic activity revealed dose-related impairment of mitochondrial oxidative phosphorylation and glycolysis after exposure to menthol-containing condensates. Taken together, these data demonstrate prominent menthol-induced pulmonary toxicity and impairment of essential physiological functions in the lung, which warrants concerns about e-cigarette consumer safety and emphasizes the need for further investigations of molecular mechanisms of toxicity and menthol effects in an experimental model of disease.
电子烟的消费正受到监管机构的审查,原因是人们对其产品毒性、缺乏制造标准以及越来越多的电子烟或蒸气相关的急性肺损伤报告感到担忧。体外研究表明,无味电子烟气溶胶和调味添加剂会引起细胞毒性、线粒体功能障碍和氧化应激。然而,电子烟对复杂的肺实质的影响尚不清楚。在此,使用小鼠精密切割肺切片(PCLS)研究了电子烟冷凝物(含或不含薄荷醇调味剂)对功能、结构和细胞反应的影响。PCLS 暴露于雾化载气、尼古丁、尼古丁+薄荷醇和薄荷醇电子烟液制备的电子烟冷凝物中,剂量为 50 至 500mM。剂量按载气中的甘油含量进行归一化。PCLS 的视频显微镜显示,气道对乙酰甲胆碱的收缩反应性受损,并且在暴露于浓度大于 300mM 的含薄荷醇冷凝物后,纤毛的摆动速度减弱。在暴露于 500mM 含薄荷醇冷凝物后,在 PCLS 的组织学切片中发现了支气管内气道上皮细胞的剥落。乳酸脱氢酶释放、线粒体水溶性四唑盐-1 转化和谷胱甘肽含量的测量支持了之前的研究结果,即尼古丁或尼古丁+薄荷醇电子烟诱导的剂量依赖性细胞毒性和氧化应激反应。评估 PCLS 的代谢活性表明,在暴露于含薄荷醇冷凝物后,与线粒体氧化磷酸化和糖酵解相关的功能呈剂量依赖性受损。总之,这些数据表明薄荷醇会引起明显的肺部毒性,并损害肺部的基本生理功能,这引起了对电子烟消费者安全的关注,并强调了在疾病的实验模型中进一步研究毒性的分子机制和薄荷醇作用的必要性。