Evaluation of the health impacts of aircraft nanoparticles using a surrogate soot source and in vitro cell exposure
Evaluation of the health impacts of aircraft nanoparticles using a surrogate soot source and in vitro cell exposure
批准号:
2435517
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2020
资助国家:
英国
项目状态:
未结题
起止时间:
2020 至 --
中文摘要
飞机发动机排放的污染物会降低机场周围的空气质量,这可能会影响当地居民和机场员工的健康。具体地说,燃气轮机发动机排放的纳米颗粒包括煤烟聚集体、硫化物、半挥发性有机碳和金属灰。当飞机发动机喷流冷却并与周围大气混合时,成核和冷凝过程导致成核态粒子迅速增长,半挥发性化合物凝聚到非挥发性烟尘聚集体上。相对于其他燃烧来源,例如公路运输,飞机纳米粒子排放的特点是其尺寸较小(<;60 nm)。因此,它们可能会产生特殊的健康后果,目前还没有得到充分的研究和很好的理解。很少有研究进行体外毒理学测试,以评估飞机发动机排放的飞机烟尘对人支气管上皮细胞的影响。要了解航空纳米颗粒的不同作用及其不同性质和化学成分的作用,还需要做更多的工作。本项目旨在通过开发和实验方法来测试细胞对不同尺寸纳米颗粒和化学成分的反应,以帮助理解纳米颗粒对健康影响的途径。该项目的具体目标是:1.回顾有关飞机纳米颗粒排放、机场附近的纳米颗粒测量以及不同类型和来源的燃烧气溶胶对健康的影响的文献,包括细胞反应研究。开发实验室来源的烟尘颗粒,可用于产生可调节的替代飞机气雾剂,包括颗粒分布和形态、化学成分和不同涂层,以及大气老化和氧化。煤烟源将基于燃烧器的设计,该燃烧器以前曾被用作飞机烟尘颗粒的替代品,并将开发有机碳涂层和大气老化等附加功能。3.使用替代烟灰源设计和进行综合实验矩阵,以评估细胞对颗粒大小和形态、涂层的化学成分和大气老化的响应。例如,气溶胶分类器可以在细胞培养上沉积之前分离特定的颗粒大小,以控制颗粒大小的影响。类似地,颗粒可以被不同的材料覆盖,或者通过使用催化汽提器来去除它们的涂层。这些方法已经建立,涉及原代人肺细胞暴露在增加的颗粒物浓度下,并测定细胞活力(四甲基偶氮唑盐/乳酸脱氢酶/细胞凋亡试验)、介质产生(如炎症反应;酶联免疫吸附试验)、氧化应激(ROS测定)、线粒体完整性(Mitotracker)、细胞抗氧化剂耗竭(GSH氧化)和颗粒摄取。已知毒性的阳性对照(如氧化锌纳米颗粒)将进行平行测试。利用现有证据和新的建模工作,评估机场周围飞机纳米粒子排放的潜在健康影响,以了解健康风险如何随着距离机场的距离以及天气条件等其他因素而变化。新的工程/物理科学内容粒子技术技术的发展,以产生不同涂层、大小、形状的碳烟纳米粒子来自工程系统的污染,特别是飞机发动机排放的健康影响。这可能会为空气质量标准的制定提供信息。研究理事会主题与EPSRC相关主题:工程学、能源与EPRSC相关研究领域:分析科学、建筑环境、基础设施和城市系统、粒子技术、传感器和仪器
英文摘要
Aircraft engines emit pollutants that degrade the air quality around airports, which may affect the health of local residents and employees at the airport. Specifically, nanoparticles emitted from gas turbine engines comprise soot aggregates, sulphur compounds, semi-volatile organic carbon and metallic ash. As the aircraft engine jet cools and mixes with the surrounding atmosphere, nucleation and condensation processes lead to a rapid growth in nucleation mode particles and condensation of semi-volatile compounds onto non-volatile soot aggregates. Aircraft nanoparticle emissions are characterised by their small size (<60 nm) relative to other combustion sources, e.g. road transport. They may therefore have particular health consequences that are currently under-studied and not well understood. Few studies have conducted in-vitro toxicology tests to evaluate the effects on human bronchial epithelial cells to exposure to aircraft soot emissions from aircraft engines. Much more work is needed to understand the different effects of aircraft nanoparticles and the role of their different properties and chemical constituents.This project aims to contribute to the understanding of the health impacts pathways of nanoparticles by developing and experimental methodology to test cellular responses to different sized nanoparticles and chemical compositions. The specific objectives of the project are to:1. Review the literature on aircraft nanoparticle emissions, nanoparticle measurements near airports, and health impacts of different types and sources of combustion aerosols, including cellular response studies.2. Develop laboratory source of soot particles that can be used to generate a tuneable surrogate aircraft aerosol in terms of particle size distribution and morphology, chemical composition and different coatings, and atmospheric ageing and oxidation. The soot source will be based on a burner design that has been used as a surrogate for aircraft soot particles before, and additional features such as organic carbon coatings and atmospheric ageing will be developed. 3. Use the surrogate soot source to design and conduct a comprehensive matrix of experiments to evaluate cellular responses to particle size and morphology, chemical composition of coatings, and atmospheric ageing. For example, aerosol classifiers could separate particular particle sizes before deposition on the cell culture to control for the effects of particle size. Similarly, particles could be coated with different materials, or have their coating removed by the use of a catalytic stripper. These methods are already established and involve exposure of primary human lung cells to increasing concentrations of the particles and determination of cell viability (MTT/LDH/apoptosis assays), mediator production (ie pro-inflmmatory responses; ELISA assays), oxidative stress (ROS measurement), mitochondrial integrity (mitotracker), cellular antioxidant depletion (GSH oxidation) and particle uptake. Positive controls (eg ZnO nanoparticles) with known toxicity will be tested in parallel.4. Evaluate potential health impacts of aircraft nanoparticle emissions around airports using existing evidence and new modelling works to understand how health risks may vary with distance from the airport, and other factors such as weather conditions.Novel engineering/physical sciences contentDevelopment of particle technology techniques to generate soot nanoparticles with different coatings, sizes, shapesHealth impacts of pollution from engineering systems, specifically aircraft engine emissions. This could inform development of air quality standards. Research council themesRelevant EPSRC themes: Engineering, EnergyRelevant EPRSC research areas: Analytical science, Built environment, Infrastructure and urban systems, Particle technology, Sensors and instrumentation
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