Development of an antioxidant assay to study oxidative potential of airborne particulate matter
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Published:2019-12-09
Issue:12
Volume:12
Page:6529-6539
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ISSN:1867-8548
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Container-title:Atmospheric Measurement Techniques
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language:en
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Short-container-title:Atmos. Meas. Tech.
Author:
Shahpoury PouryaORCID, Harner Tom, Lammel GerhardORCID, Lelieveld Steven, Tong HaijieORCID, Wilson Jake
Abstract
Abstract. Oxidative potential is a measure of redox activity of airborne
particulate matter (PM) and is often used as a surrogate to estimate one
form of PM toxicity. The evaluation of oxidative potential in
a physiologically relevant environment is always challenging. In this work, we
developed a chromatographic method, employing an ultra-high-performance
liquid chromatograph coupled to a triple–quadruple mass spectrometer, to
determine the oxidative potential of PM from different sources. To this
purpose, we measured the PM-induced oxidation of glutathione, cysteine, and
ascorbic acid, and formation of glutathione disulfide and cystine, following
PM addition to simulated epithelial lining fluids, which, in addition to the
antioxidants, contained inorganic salts, a phospholipid, and proteins. The
new method showed high precision and, when applied to standard reference PM,
the oxidative potential was found to increase with the reaction time and PM
concentration in the lung fluid. The antioxidant depletion rates were
considerably higher than the rates found with the conventional
dithiothreitol assay, indicating the higher sensitivity of the new method.
The presence of the lung fluid inorganic species increased the oxidative
potential determined through glutathione and cysteine, but showed an
opposite effect with ascorbic acid, whereas the presence of proteins
resulted in a moderate decrease in the oxidative potential. In the presence
of PM2.5, glutathione and cysteine demonstrated similar depletion
patterns, which were noticeably different from that of ascorbic acid,
suggesting that cysteine could be used as an alternative to glutathione for
probing oxidative potential.
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference56 articles.
1. Ayres, J. G., Borm, P., Cassee, F. R., Castranova, V., Donaldson, K., Ghio,
A., Harrison, R. M., Hider, R., Kelly, F., Kooter, I. M., Marano, F.,
Maynard, R. L., Mudway, I., Nel, A., Sioutas, C., Smith, S., Baeza-Squiban,
A., Cho, A., Duggan, S., and Froines, J.: Evaluating the toxicity of airborne
particulate matter and nanoparticles by measuring oxidative stress potential
– a workshop report and consensus statement, Inhal. Toxicol., 20, 75–99,
https://doi.org/10.1080/08958370701665517, 2008. 2. Bates, J. T., Fang, T., Verma, V., Zeng, L., Weber, R. J., Tolbert, P. E.,
Abrams, J. Y., Sarnat, S. E., Klein, M., Mulholland, J. A., and Russell, A.
G.: Review of acellular assays of ambient particulate matter oxidative
potential: methods and relationships with composition, sources, and health
effects, Environ. Sci. Technol., 53, 4003–4019,
https://doi.org/10.1021/acs.est.8b03430, 2019. 3. Boisa, N., Elom, N., Dean, J. R., Deary, M. E., Bird, G., and Entwistle, J.
A.: Development and application of an inhalation bioaccessibility method
(IBM) for lead in the PM10 size fraction of soil, Environ. Int., 70,
132–142, https://doi.org/10.1016/j.envint.2014.05.021, 2014. 4. Borm, P. J. A., Kelly, F., Kunzli, N., Schins, R. P. F., and Donaldson, K.:
Oxidant generation by particulate matter: from biologically effective dose
to a promising, novel metric, Occup. Environ. Med., 64, 73–74,
https://doi.org/10.1136/oem.2006.029090, 2007. 5. Bredberg, A., Gobom, J., Almstrand, A.-C., Larsson, P., Blennow, K., Olin,
A.-C., and Mirgorodskaya, E.: Exhaled endogenous particles contain lung
proteins, Clin. Chem., 58, 431–440, https://doi.org/10.1373/clinchem.2011.169235, 2012.
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