Jordan M Lee, Jaclynn A Meshanni, Kinal N Vayas, Vasanthi R Sunil, Jared Radbel, Jeffrey D Laskin, Debra L Laskin, Andrew J Gow
{"title":"在雌性小鼠急性和偶发性暴露模型中,吸入臭氧引起肺功能的明显改变。","authors":"Jordan M Lee, Jaclynn A Meshanni, Kinal N Vayas, Vasanthi R Sunil, Jared Radbel, Jeffrey D Laskin, Debra L Laskin, Andrew J Gow","doi":"10.1093/toxsci/kfae162","DOIUrl":null,"url":null,"abstract":"<p><p>Ozone is an urban air pollutant known to cause lung injury and altered function. Using established models of acute (0.8 ppm, 3 h) and episodic (1.5 ppm, 2 h, 2 times/wk, 6 wk) inhalation exposure, we observed distinct structural changes in the lung; whereas acutely, ozone primarily disrupts the bronchiolar epithelial barrier, episodic exposure causes airway remodeling. Herein we examined how these responses altered pulmonary function. A SCIREQ small animal ventilator was used to assess lung function; impedance was used to conditionally model resistance and elastance. Episodic, but not acute ozone exposure reduced the inherent and frequency-dependent tissue recoil (elastance) of the lung. Episodic ozone also increased central and high-frequency resistance relative to air control after methacholine challenge, indicating airway hyperresponsiveness. Pressure-volume (PV)-loops showed that episodic ozone increased maximum lung volume, whereas acute ozone decreased lung volume. Episodic ozone-induced functional changes were accompanied by increases in alveolar circularization; conversely, minimal histopathology was observed after acute exposure. However, acute ozone exposure caused increases in total phospholipids, total surfactant protein D (SP-D), and low-molecular weight SP-D in bronchoalveolar lavage fluid. Episodic ozone exposure only increased total SP-D. These findings demonstrate that acute and episodic ozone exposure caused distinct alterations in surfactant composition and pulmonary function. Whereas loss in PV-loop area following acute ozone exposure is likely driven by increases in SP-D and inflammation, emphysematous pathology and airway hyperresponsiveness after episodic ozone appear to be the result of alterations in lung structure.</p>","PeriodicalId":23178,"journal":{"name":"Toxicological Sciences","volume":" ","pages":"70-78"},"PeriodicalIF":3.4000,"publicationDate":"2025-03-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11879009/pdf/","citationCount":"0","resultStr":"{\"title\":\"Inhaled ozone induces distinct alterations in pulmonary function in models of acute and episodic exposure in female mice.\",\"authors\":\"Jordan M Lee, Jaclynn A Meshanni, Kinal N Vayas, Vasanthi R Sunil, Jared Radbel, Jeffrey D Laskin, Debra L Laskin, Andrew J Gow\",\"doi\":\"10.1093/toxsci/kfae162\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Ozone is an urban air pollutant known to cause lung injury and altered function. 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Episodic ozone-induced functional changes were accompanied by increases in alveolar circularization; conversely, minimal histopathology was observed after acute exposure. However, acute ozone exposure caused increases in total phospholipids, total surfactant protein D (SP-D), and low-molecular weight SP-D in bronchoalveolar lavage fluid. Episodic ozone exposure only increased total SP-D. These findings demonstrate that acute and episodic ozone exposure caused distinct alterations in surfactant composition and pulmonary function. 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Inhaled ozone induces distinct alterations in pulmonary function in models of acute and episodic exposure in female mice.
Ozone is an urban air pollutant known to cause lung injury and altered function. Using established models of acute (0.8 ppm, 3 h) and episodic (1.5 ppm, 2 h, 2 times/wk, 6 wk) inhalation exposure, we observed distinct structural changes in the lung; whereas acutely, ozone primarily disrupts the bronchiolar epithelial barrier, episodic exposure causes airway remodeling. Herein we examined how these responses altered pulmonary function. A SCIREQ small animal ventilator was used to assess lung function; impedance was used to conditionally model resistance and elastance. Episodic, but not acute ozone exposure reduced the inherent and frequency-dependent tissue recoil (elastance) of the lung. Episodic ozone also increased central and high-frequency resistance relative to air control after methacholine challenge, indicating airway hyperresponsiveness. Pressure-volume (PV)-loops showed that episodic ozone increased maximum lung volume, whereas acute ozone decreased lung volume. Episodic ozone-induced functional changes were accompanied by increases in alveolar circularization; conversely, minimal histopathology was observed after acute exposure. However, acute ozone exposure caused increases in total phospholipids, total surfactant protein D (SP-D), and low-molecular weight SP-D in bronchoalveolar lavage fluid. Episodic ozone exposure only increased total SP-D. These findings demonstrate that acute and episodic ozone exposure caused distinct alterations in surfactant composition and pulmonary function. Whereas loss in PV-loop area following acute ozone exposure is likely driven by increases in SP-D and inflammation, emphysematous pathology and airway hyperresponsiveness after episodic ozone appear to be the result of alterations in lung structure.
期刊介绍:
The mission of Toxicological Sciences, the official journal of the Society of Toxicology, is to publish a broad spectrum of impactful research in the field of toxicology.
The primary focus of Toxicological Sciences is on original research articles. The journal also provides expert insight via contemporary and systematic reviews, as well as forum articles and editorial content that addresses important topics in the field.
The scope of Toxicological Sciences is focused on a broad spectrum of impactful toxicological research that will advance the multidisciplinary field of toxicology ranging from basic research to model development and application, and decision making. Submissions will include diverse technologies and approaches including, but not limited to: bioinformatics and computational biology, biochemistry, exposure science, histopathology, mass spectrometry, molecular biology, population-based sciences, tissue and cell-based systems, and whole-animal studies. Integrative approaches that combine realistic exposure scenarios with impactful analyses that move the field forward are encouraged.