Comparison of the oxidative potential of primary (POA) and secondary (SOA) organic aerosols derived from α-pinene and gasoline engine exhaust precursors

dc.contributor.authorLovett, Christopher
dc.contributor.authorBaasiri, Mohamad
dc.contributor.authorAtwi, Khairallah M.
dc.contributor.authorSowlat, Mohammad Hossein
dc.contributor.authorShirmohammadi, Farimah
dc.contributor.authorShihadeh, Alan Louis
dc.contributor.authorSioutas, Constantinos
dc.contributor.departmentDepartment of Mechanical Engineering
dc.contributor.facultyMaroun Semaan Faculty of Engineering and Architecture (MSFEA)
dc.contributor.institutionAmerican University of Beirut
dc.date.accessioned2025-01-24T11:32:24Z
dc.date.available2025-01-24T11:32:24Z
dc.date.issued2018
dc.description.abstractBackground: Primary (POA) and secondary (SOA) organic aerosols, deriving from both anthropogenic and biogenic sources, represent a major fraction of ambient particulate matter (PM) and play an important role in the etiology of respiratory and cardiovascular diseases, largely through systemic inflammation and cellular oxidative stress. The relative contributions of these species to the inhalation burden, however, are rather poorly characterized. In this study, we measured the in vitro oxidative stress response of alveolar macrophages exposed to primary and secondary PM derived from both anthropogenic and biogenic sources. Methods: POA and SOA were generated within an oxidation flow reactor (OFR) fed by pure, aerosolized α-pinene or gasoline engine exhaust, as representative emissions of biogenic and anthropogenic sources, respectively. The OFR utilized an ultraviolet (UV) lamp to achieve an equivalent atmospheric aging process of several days. Results: Anthropogenic SOA produced the greatest oxidative response (1900 ± 255 µg-Zymosan/mg-PM), followed by biogenic (α-pinene) SOA (1321 ± 542 µg-Zymosan/mg-PM), while anthropogenic POA produced the smallest response (51.4 ± 64.3 µg-Zymosan/mg-PM). Conclusions: These findings emphasize the importance of monitoring and controlling anthropogenic emissions in the urban atmosphere, while also taking into consideration spatial and seasonal differences in SOA composition. Local concentrations of biogenic and anthropogenic species contributing to the oxidative potential of ambient PM may vary widely, depending on the given region and time of year, due to factors such as surrounding vegetation, proximity to urban areas, and hours of daylight. © 2018 Lovett C et al.
dc.identifier.doihttps://doi.org/10.12688/f1000research.15445.1
dc.identifier.urihttp://hdl.handle.net/10938/27789
dc.language.isoen
dc.publisherF1000 Research Ltd
dc.sourceScopus
dc.subjectAnthropogenic pm
dc.subjectBiogenic pm
dc.subjectParticulate matter
dc.subjectPhotochemical aging
dc.subjectSoa
dc.subjectAerosols
dc.subjectAir pollutants
dc.subjectAnimals
dc.subjectCell line
dc.subjectMacrophages, alveolar
dc.subjectMice
dc.subjectMonoterpenes
dc.subjectOxidation-reduction
dc.subjectOxidative stress
dc.subjectVehicle emissions
dc.subjectPinene
dc.subjectZymosan
dc.subjectAlpha-pinene
dc.subjectTerpene
dc.subjectAir monitoring
dc.subjectArticle
dc.subjectAtmosphere
dc.subjectCell assay
dc.subjectConcentration (parameter)
dc.subjectControlled study
dc.subjectExhaust gas
dc.subjectHealth hazard
dc.subjectIn vitro study
dc.subjectLung alveolus macrophage
dc.subjectOxidation flow reactor
dc.subjectOxidation reduction potential
dc.subjectPhotooxidation
dc.subjectPrimary organic aerosol
dc.subjectSecondary organic aerosol
dc.subjectUltraviolet radiation
dc.subjectUrban area
dc.subjectAerosol
dc.subjectAir pollutant
dc.subjectAnimal
dc.subjectComparative study
dc.subjectDrug effect
dc.subjectMetabolism
dc.subjectMouse
dc.subjectOxidation reduction reaction
dc.subjectPathology
dc.subjectToxicity
dc.titleComparison of the oxidative potential of primary (POA) and secondary (SOA) organic aerosols derived from α-pinene and gasoline engine exhaust precursors
dc.typeArticle

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