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Effect of Atmospheric Aging on Soot Particle Toxicity in Lung Cell Models at the Air–Liquid Interface: Differential Toxicological Impacts of Biogenic and Anthropogenic Secondary Organic Aerosols (SOAs)

BACKGROUND: Secondary organic aerosols (SOAs) formed from anthropogenic or biogenic gaseous precursors in the atmosphere substantially contribute to the ambient fine particulate matter [PM [Formula: see text] in aerodynamic diameter ([Formula: see text])] burden, which has been associated with adver...

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Autores principales: Offer, Svenja, Hartner, Elena, Di Bucchianico, Sebastiano, Bisig, Christoph, Bauer, Stefanie, Pantzke, Jana, Zimmermann, Elias J., Cao, Xin, Binder, Stefanie, Kuhn, Evelyn, Huber, Anja, Jeong, Seongho, Käfer, Uwe, Martens, Patrick, Mesceriakovas, Arunas, Bendl, Jan, Brejcha, Ramona, Buchholz, Angela, Gat, Daniella, Hohaus, Thorsten, Rastak, Narges, Jakobi, Gert, Kalberer, Markus, Kanashova, Tamara, Hu, Yue, Ogris, Christoph, Marsico, Annalisa, Theis, Fabian, Pardo, Michal, Gröger, Thomas, Oeder, Sebastian, Orasche, Jürgen, Paul, Andreas, Ziehm, Till, Zhang, Zhi-Hui, Adam, Thomas, Sippula, Olli, Sklorz, Martin, Schnelle-Kreis, Jürgen, Czech, Hendryk, Kiendler-Scharr, Astrid, Rudich, Yinon, Zimmermann, Ralf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Environmental Health Perspectives 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8812555/
https://www.ncbi.nlm.nih.gov/pubmed/35112925
http://dx.doi.org/10.1289/EHP9413
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author Offer, Svenja
Hartner, Elena
Di Bucchianico, Sebastiano
Bisig, Christoph
Bauer, Stefanie
Pantzke, Jana
Zimmermann, Elias J.
Cao, Xin
Binder, Stefanie
Kuhn, Evelyn
Huber, Anja
Jeong, Seongho
Käfer, Uwe
Martens, Patrick
Mesceriakovas, Arunas
Bendl, Jan
Brejcha, Ramona
Buchholz, Angela
Gat, Daniella
Hohaus, Thorsten
Rastak, Narges
Jakobi, Gert
Kalberer, Markus
Kanashova, Tamara
Hu, Yue
Ogris, Christoph
Marsico, Annalisa
Theis, Fabian
Pardo, Michal
Gröger, Thomas
Oeder, Sebastian
Orasche, Jürgen
Paul, Andreas
Ziehm, Till
Zhang, Zhi-Hui
Adam, Thomas
Sippula, Olli
Sklorz, Martin
Schnelle-Kreis, Jürgen
Czech, Hendryk
Kiendler-Scharr, Astrid
Rudich, Yinon
Zimmermann, Ralf
author_facet Offer, Svenja
Hartner, Elena
Di Bucchianico, Sebastiano
Bisig, Christoph
Bauer, Stefanie
Pantzke, Jana
Zimmermann, Elias J.
Cao, Xin
Binder, Stefanie
Kuhn, Evelyn
Huber, Anja
Jeong, Seongho
Käfer, Uwe
Martens, Patrick
Mesceriakovas, Arunas
Bendl, Jan
Brejcha, Ramona
Buchholz, Angela
Gat, Daniella
Hohaus, Thorsten
Rastak, Narges
Jakobi, Gert
Kalberer, Markus
Kanashova, Tamara
Hu, Yue
Ogris, Christoph
Marsico, Annalisa
Theis, Fabian
Pardo, Michal
Gröger, Thomas
Oeder, Sebastian
Orasche, Jürgen
Paul, Andreas
Ziehm, Till
Zhang, Zhi-Hui
Adam, Thomas
Sippula, Olli
Sklorz, Martin
Schnelle-Kreis, Jürgen
Czech, Hendryk
Kiendler-Scharr, Astrid
Rudich, Yinon
Zimmermann, Ralf
author_sort Offer, Svenja
collection PubMed
description BACKGROUND: Secondary organic aerosols (SOAs) formed from anthropogenic or biogenic gaseous precursors in the atmosphere substantially contribute to the ambient fine particulate matter [PM [Formula: see text] in aerodynamic diameter ([Formula: see text])] burden, which has been associated with adverse human health effects. However, there is only limited evidence on their differential toxicological impact. OBJECTIVES: We aimed to discriminate toxicological effects of aerosols generated by atmospheric aging on combustion soot particles (SPs) of gaseous biogenic ([Formula: see text]) or anthropogenic (naphthalene) precursors in two different lung cell models exposed at the air–liquid interface (ALI). METHODS: Mono- or cocultures of lung epithelial cells (A549) and endothelial cells (EA.hy926) were exposed at the ALI for 4 h to different aerosol concentrations of a photochemically aged mixture of primary combustion SP and [Formula: see text] ([Formula: see text]) or naphthalene ([Formula: see text]). The internally mixed soot/SOA particles were comprehensively characterized in terms of their physical and chemical properties. We conducted toxicity tests to determine cytotoxicity, intracellular oxidative stress, primary and secondary genotoxicity, as well as inflammatory and angiogenic effects. RESULTS: We observed considerable toxicity-related outcomes in cells treated with either SOA type. Greater adverse effects were measured for [Formula: see text] compared with [Formula: see text] in both cell models, whereas the nano-sized soot cores alone showed only minor effects. At the functional level, we found that [Formula: see text] augmented the secretion of malondialdehyde and interleukin-8 and may have induced the activation of endothelial cells in the coculture system. This activation was confirmed by comet assay, suggesting secondary genotoxicity and greater angiogenic potential. Chemical characterization of PM revealed distinct qualitative differences in the composition of the two secondary aerosol types. DISCUSSION: In this study using A549 and EA.hy926 cells exposed at ALI, SOA compounds had greater toxicity than primary SPs. Photochemical aging of naphthalene was associated with the formation of more oxidized, more aromatic SOAs with a higher oxidative potential and toxicity compared with [Formula: see text]. Thus, we conclude that the influence of atmospheric chemistry on the chemical PM composition plays a crucial role for the adverse health outcome of emissions. https://doi.org/10.1289/EHP9413
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spelling pubmed-88125552022-02-09 Effect of Atmospheric Aging on Soot Particle Toxicity in Lung Cell Models at the Air–Liquid Interface: Differential Toxicological Impacts of Biogenic and Anthropogenic Secondary Organic Aerosols (SOAs) Offer, Svenja Hartner, Elena Di Bucchianico, Sebastiano Bisig, Christoph Bauer, Stefanie Pantzke, Jana Zimmermann, Elias J. Cao, Xin Binder, Stefanie Kuhn, Evelyn Huber, Anja Jeong, Seongho Käfer, Uwe Martens, Patrick Mesceriakovas, Arunas Bendl, Jan Brejcha, Ramona Buchholz, Angela Gat, Daniella Hohaus, Thorsten Rastak, Narges Jakobi, Gert Kalberer, Markus Kanashova, Tamara Hu, Yue Ogris, Christoph Marsico, Annalisa Theis, Fabian Pardo, Michal Gröger, Thomas Oeder, Sebastian Orasche, Jürgen Paul, Andreas Ziehm, Till Zhang, Zhi-Hui Adam, Thomas Sippula, Olli Sklorz, Martin Schnelle-Kreis, Jürgen Czech, Hendryk Kiendler-Scharr, Astrid Rudich, Yinon Zimmermann, Ralf Environ Health Perspect Research BACKGROUND: Secondary organic aerosols (SOAs) formed from anthropogenic or biogenic gaseous precursors in the atmosphere substantially contribute to the ambient fine particulate matter [PM [Formula: see text] in aerodynamic diameter ([Formula: see text])] burden, which has been associated with adverse human health effects. However, there is only limited evidence on their differential toxicological impact. OBJECTIVES: We aimed to discriminate toxicological effects of aerosols generated by atmospheric aging on combustion soot particles (SPs) of gaseous biogenic ([Formula: see text]) or anthropogenic (naphthalene) precursors in two different lung cell models exposed at the air–liquid interface (ALI). METHODS: Mono- or cocultures of lung epithelial cells (A549) and endothelial cells (EA.hy926) were exposed at the ALI for 4 h to different aerosol concentrations of a photochemically aged mixture of primary combustion SP and [Formula: see text] ([Formula: see text]) or naphthalene ([Formula: see text]). The internally mixed soot/SOA particles were comprehensively characterized in terms of their physical and chemical properties. We conducted toxicity tests to determine cytotoxicity, intracellular oxidative stress, primary and secondary genotoxicity, as well as inflammatory and angiogenic effects. RESULTS: We observed considerable toxicity-related outcomes in cells treated with either SOA type. Greater adverse effects were measured for [Formula: see text] compared with [Formula: see text] in both cell models, whereas the nano-sized soot cores alone showed only minor effects. At the functional level, we found that [Formula: see text] augmented the secretion of malondialdehyde and interleukin-8 and may have induced the activation of endothelial cells in the coculture system. This activation was confirmed by comet assay, suggesting secondary genotoxicity and greater angiogenic potential. Chemical characterization of PM revealed distinct qualitative differences in the composition of the two secondary aerosol types. DISCUSSION: In this study using A549 and EA.hy926 cells exposed at ALI, SOA compounds had greater toxicity than primary SPs. Photochemical aging of naphthalene was associated with the formation of more oxidized, more aromatic SOAs with a higher oxidative potential and toxicity compared with [Formula: see text]. Thus, we conclude that the influence of atmospheric chemistry on the chemical PM composition plays a crucial role for the adverse health outcome of emissions. https://doi.org/10.1289/EHP9413 Environmental Health Perspectives 2022-02-03 /pmc/articles/PMC8812555/ /pubmed/35112925 http://dx.doi.org/10.1289/EHP9413 Text en https://ehp.niehs.nih.gov/about-ehp/licenseEHP is an open-access journal published with support from the National Institute of Environmental Health Sciences, National Institutes of Health. All content is public domain unless otherwise noted.
spellingShingle Research
Offer, Svenja
Hartner, Elena
Di Bucchianico, Sebastiano
Bisig, Christoph
Bauer, Stefanie
Pantzke, Jana
Zimmermann, Elias J.
Cao, Xin
Binder, Stefanie
Kuhn, Evelyn
Huber, Anja
Jeong, Seongho
Käfer, Uwe
Martens, Patrick
Mesceriakovas, Arunas
Bendl, Jan
Brejcha, Ramona
Buchholz, Angela
Gat, Daniella
Hohaus, Thorsten
Rastak, Narges
Jakobi, Gert
Kalberer, Markus
Kanashova, Tamara
Hu, Yue
Ogris, Christoph
Marsico, Annalisa
Theis, Fabian
Pardo, Michal
Gröger, Thomas
Oeder, Sebastian
Orasche, Jürgen
Paul, Andreas
Ziehm, Till
Zhang, Zhi-Hui
Adam, Thomas
Sippula, Olli
Sklorz, Martin
Schnelle-Kreis, Jürgen
Czech, Hendryk
Kiendler-Scharr, Astrid
Rudich, Yinon
Zimmermann, Ralf
Effect of Atmospheric Aging on Soot Particle Toxicity in Lung Cell Models at the Air–Liquid Interface: Differential Toxicological Impacts of Biogenic and Anthropogenic Secondary Organic Aerosols (SOAs)
title Effect of Atmospheric Aging on Soot Particle Toxicity in Lung Cell Models at the Air–Liquid Interface: Differential Toxicological Impacts of Biogenic and Anthropogenic Secondary Organic Aerosols (SOAs)
title_full Effect of Atmospheric Aging on Soot Particle Toxicity in Lung Cell Models at the Air–Liquid Interface: Differential Toxicological Impacts of Biogenic and Anthropogenic Secondary Organic Aerosols (SOAs)
title_fullStr Effect of Atmospheric Aging on Soot Particle Toxicity in Lung Cell Models at the Air–Liquid Interface: Differential Toxicological Impacts of Biogenic and Anthropogenic Secondary Organic Aerosols (SOAs)
title_full_unstemmed Effect of Atmospheric Aging on Soot Particle Toxicity in Lung Cell Models at the Air–Liquid Interface: Differential Toxicological Impacts of Biogenic and Anthropogenic Secondary Organic Aerosols (SOAs)
title_short Effect of Atmospheric Aging on Soot Particle Toxicity in Lung Cell Models at the Air–Liquid Interface: Differential Toxicological Impacts of Biogenic and Anthropogenic Secondary Organic Aerosols (SOAs)
title_sort effect of atmospheric aging on soot particle toxicity in lung cell models at the air–liquid interface: differential toxicological impacts of biogenic and anthropogenic secondary organic aerosols (soas)
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8812555/
https://www.ncbi.nlm.nih.gov/pubmed/35112925
http://dx.doi.org/10.1289/EHP9413
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