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Measurement Techniques for Respiratory Tract Deposition of Airborne Nanoparticles: A Critical Review

机译:空气中纳米颗粒呼吸道沉积的测量技术:综述。

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摘要

Determination of the respiratory tract deposition of airborne particles is critical for risk assessment of air pollution, inhaled drug delivery, and understanding of respiratory disease. With the advent of nanotechnology, there has been an increasing interest in the measurement of pulmonary deposition of nanoparticles because of their unique properties in inhalation toxicology and medicine. Over the last century, around 50 studies have presented experimental data on lung deposition of nanoparticles (typical diameter≤100 nm, but here≤300 nm). These data show a considerable variability, partly due to differences in the applied methodologies. In this study, we review the experimental techniques for measuring respiratory tract deposition of nano-sized particles, analyze critical experimental design aspects causing measurement uncertainties, and suggest methodologies for future studies. It is shown that, although particle detection techniques have developed with time, the overall methodology in respiratory tract deposition experiments has not seen similar progress. Available experience from previous research has often not been incorporated, and some methodological design aspects that were overlooked in 30–70% of all studies may have biased the experimental data. This has contributed to a significant uncertainty on the absolute value of the lung deposition fraction of nanoparticles. We estimate the impact of the design aspects on obtained data, discuss solutions to minimize errors, and highlight gaps in the available experimental set of data.
机译:确定空气中颗粒物在呼吸道中的沉积对于评估空气污染,吸入药物和了解呼吸系统疾病的风险至关重要。随着纳米技术的出现,由于其在吸入毒理学和医学中的独特性能,人们对纳米颗粒在肺部沉积的测量越来越感兴趣。在过去的一个世纪中,大约有50项研究提供了有关纳米颗粒在肺部沉积的实验数据(典型直径≤100nm,但此处≤300nm)。这些数据显示出相当大的可变性,部分原因是所应用方法的差异。在这项研究中,我们回顾了用于测量纳米尺寸颗粒的呼吸道沉积的实验技术,分析了导致测量不确定性的关键实验设计方面,并提出了用于未来研究的方法论。结果表明,尽管粒子检测技术随着时间的发展而发展,但呼吸道沉积实验的总体方法并未取得类似进展。以往研究的可用经验通常没有被纳入,在所有研究中有30%至70%被忽略的一些方法设计方面可能会使实验数据产生偏差。这导致了纳米颗粒的肺部沉积分数的绝对值的显着不确定性。我们估计设计方面对获得的数据的影响,讨论将错误最小化的解决方案,并强调可用实验数据集中的差距。

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