首页> 外文OA文献 >Metabolic Profiling as Well as Stable Isotope Assisted Metabolic and Proteomic Analysis of RAW 264.7 Macrophages Exposed to Ship Engine Aerosol Emissions: Different Effects of Heavy Fuel Oil and Refined Diesel Fuel.
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Metabolic Profiling as Well as Stable Isotope Assisted Metabolic and Proteomic Analysis of RAW 264.7 Macrophages Exposed to Ship Engine Aerosol Emissions: Different Effects of Heavy Fuel Oil and Refined Diesel Fuel.

机译:代谢分析以及稳定的同位素辅助代谢和蛋白质组学分析RaW 264.7巨噬细胞暴露于船舶发动机气溶胶排放:重质燃料油和精炼柴油燃料的不同影响。

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摘要

Exposure to air pollution resulting from fossil fuel combustion has been linked to multiple short-term and long term health effects. In a previous study, exposure of lung epithelial cells to engine exhaust from heavy fuel oil (HFO) and diesel fuel (DF), two of the main fuels used in marine engines, led to an increased regulation of several pathways associated with adverse cellular effects, including pro-inflammatory pathways. In addition, DF exhaust exposure was shown to have a wider response on multiple cellular regulatory levels compared to HFO emissions, suggesting a potentially higher toxicity of DF emissions over HFO. In order to further understand these effects, as well as to validate these findings in another cell line, we investigated macrophages under the same conditions as a more inflammation-relevant model. An air-liquid interface aerosol exposure system was used to provide a more biologically relevant exposure system compared to submerged experiments, with cells exposed to either the complete aerosol (particle and gas phase), or the gas phase only (with particles filtered out). Data from cytotoxicity assays were integrated with metabolomics and proteomics analyses, including stable isotope-assisted metabolomics, in order to uncover pathways affected by combustion aerosol exposure in macrophages. Through this approach, we determined differing phenotypic effects associated with the different components of aerosol. The particle phase of diluted combustion aerosols was found to induce increased cell death in macrophages, while the gas phase was found more to affect the metabolic profile. In particular, a higher cytotoxicity of DF aerosol emission was observed in relation to the HFO aerosol. Furthermore, macrophage exposure to the gas phase of HFO leads to an induction of a pro-inflammatory metabolic and proteomic phenotype. These results validate the effects found in lung epithelial cells, confirming the role of inflammation and cellular stress in the response to combustion aerosols.
机译:化石燃料燃烧导致的空气污染暴露已与多种短期和长期健康影响联系在一起。在先前的研究中,肺上皮细胞暴露于重油(HFO)和柴油(DF)(船用发动机中使用的两种主要燃料)的发动机废气中,导致对与不良细胞效应相关的几种途径的调节增加,包括促炎途径。此外,与HFO排放相比,DF暴露在多种细胞调节水平上的响应更广,表明DF排放的毒性比HFO高。为了进一步了解这些效应,并在另一种细胞系中验证这些发现,我们在与炎症相关的模型相同的条件下研究了巨噬细胞。与浸没实验相比,使用气液界面气溶胶暴露系统提供了生物学上更相关的暴露系统,其中细胞暴露于完整的气溶胶(颗粒和气相)或仅暴露于气相(颗粒被滤出)。来自细胞毒性试验的数据与代谢组学和蛋白质组学分析(包括稳定的同位素辅助代谢组学)整合在一起,以便揭示巨噬细胞中受燃烧气溶胶暴露影响的途径。通过这种方法,我们确定了与气溶胶不同成分相关的不同表型效应。发现稀释的燃烧气溶胶的颗粒相可诱导巨噬细胞死亡的增加,而气相则更能影响代谢。特别地,相对于HFO气雾剂,观察到DF气雾剂排放物具有更高的细胞毒性。此外,巨噬细胞暴露于HFO的气相导致促炎性代谢和蛋白质组表型的诱导。这些结果验证了在肺上皮细胞中发现的作用,证实了炎症和细胞应激在对燃烧气溶胶的反应中的作用。

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