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Abstract
We report concentrations of organophosphate esters (OPEs) in air from living rooms, bedrooms, and offices in Birmingham, UK. To place concentrations in these commonly frequented indoor microenvironments in context, we also measured the same OPEs in air samples collected from an outdoor location on the University of Birmingham campus. Concentrations of tris(2-chloroethyl) phosphate (TCEP), tris(2-chloroisopropyl) phosphate (TCIPP), and tri-n-butyl phosphate (TnBP) in indoor air significantly exceeded (P > 0.05) those in outdoor air. In contrast, concentrations of tris(1,3-dichloroisopropyl) phosphate (TDCIPP), triphenyl phosphate (TPhP), and 2-ethylhexyl diphenyl phosphate (EHDPP) in indoor and outdoor air were statistically indistinguishable (P < 0.05). Comparison of estimates of human exposure via inhalation derived from our data with previous estimates of exposure via dust ingestion, diet, drinking water, and dermal contact with furniture reveals that inhalation is the most important contributor to aggregate UK adult exposure to TCIPP (85%
exposure) and TCEP (67%
exposure). While average aggregate exposures of UK adults were well below health-based reference dose values, continued evaluation of human exposure is recommended as high-end exposures of some individuals (e.g., those inhabiting microenvironments containing concentrations of TCIPP at the high end of the range reported here) likely exceed substantially average exposures.
Keywords
Organophosphate esters(OPEs)
/
atmosphere
/
inhalation exposure
/
offices
/
homes
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Yessica Ortiz, Stuart Harrad.
Organophosphate esters in indoor and outdoor air in Birmingham, UK: implications for human exposure.
Journal of Environmental Exposure Assessment, 2023, 2(3): 15 DOI:10.20517/jeea.2023.20
| [1] |
van der Veen I.Phosphorus flame retardants: properties, production, environmental occurrence, toxicity and analysis.Chemosphere2012;88:1119-53
|
| [2] |
USEPA, Mid Atlantic risk assessment, regional screening levels (RSLs)-generic Tables. Available from: http://www.epa.gov/region9/superfund/prg [Last accessed on 28 Jul 2023]
|
| [3] |
Van den Eede N,Neels H.Analytical developments and preliminary assessment of human exposure to organophosphate flame retardants from indoor dust.Environ Int2011;37:454-61
|
| [4] |
Ali N,Van den Eede N.Occurrence of alternative flame retardants in indoor dust from New Zealand: indoor sources and human exposure assessment.Chemosphere2012;88:1276-82
|
| [5] |
Saito I,Seto H.Indoor organophosphate and polybrominated flame retardants in Tokyo.Indoor Air2007;17:28-36
|
| [6] |
Newton S,Harrad S,de Wit CA.Comparisons of indoor active and passive air sampling methods for emerging and legacy halogenated flame retardants in Beijing, China offices.Emerging Contaminants2016;2:80-8
|
| [7] |
Zhang X,Lei YD.Influence of sampler configuration on the uptake kinetics of a passive air sampler.Environ Sci Technol2012;46:397-403
|
| [8] |
Abdollahi A,Jantunen LM.Characterization of polyurethane foam (PUF) and sorbent impregnated PUF (SIP) disk passive air samplers for measuring organophosphate flame retardants.Chemosphere2017;167:212-9
|
| [9] |
Brommer S.Sources and human exposure implications of concentrations of organophosphate flame retardants in dust from UK cars, classrooms, living rooms, and offices.Environ Int2015;83:202-7
|
| [10] |
Harrad S,Ibarra C.Concentrations of polychlorinated biphenyls in indoor air and polybrominated diphenyl ethers in indoor air and dust in Birmingham, United Kingdom: implications for human exposure.Environ Sci Technol2006;40:4633-8
|
| [11] |
Bergh C,Wise S.Organophosphate and phthalate esters in standard reference material 2585 organic contaminants in house dust.Anal Bioanal Chem2012;402:51-9
|
| [12] |
Brandsma SH,van Velzen MJ.Organophosphorus flame retardants (PFRs) and plasticizers in house and car dust and the influence of electronic equipment.Chemosphere2014;116:3-9
|
| [13] |
Brommer S,Bidleman TF,Diamond ML.Determination of vapor pressures for organophosphate esters.J Chem Eng Data2014;59:1441-7
|
| [14] |
Bergman A,Law RJ.A novel abbreviation standard for organobromine, organochlorine and organophosphorus flame retardants and some characteristics of the chemicals.Environ Int2012;49:57-82 PMCID:PMC3483428
|
| [15] |
Esplugas R,Mari M.Emerging and legacy flame retardants in indoor air and dust samples of Tarragona Province (Catalonia, Spain).Sci Total Environ2022;806:150494
|
| [16] |
Kim UJ,Li W.Occurrence of and human exposure to organophosphate flame retardants/plasticizers in indoor air and dust from various microenvironments in the United States.Environ Int2019;125:342-9
|
| [17] |
Stubbings WA,Thomas MB,Venier M.Exposure to brominated and organophosphate ester flame retardants in U.S. childcare environments: effect of removal of flame-retarded nap mats on indoor levels.Environ Pollut2018;238:1056-68
|
| [18] |
Vykoukalová M,Vojta Š.Organophosphate esters flame retardants in the indoor environment.Environ Int2017;106:97-104
|
| [19] |
Wong F,Newton SR.Concentrations and variability of organophosphate esters, halogenated flame retardants, and polybrominated diphenyl ethers in indoor and outdoor air in Stockholm, Sweden.Environ Pollut2018;240:514-22
|
| [20] |
Yadav IC,Kumar A,Zhang G.Airborne brominated, chlorinated and organophosphate ester flame retardants inside the buildings of the Indian state of Bihar: Exploration of source and human exposure.Ecotoxicol Environ Saf2020;191:110212
|
| [21] |
Li Y,Hao Y.Organophosphate esters in Arctic air from 2011 to 2019: Concentrations, temporal trends, and potential sources.J Hazard Mater2022;434:128872
|
| [22] |
Kurt-Karakus P,Birgul A,Jantunen L.Organophosphate ester (OPEs) flame retardants and plasticizers in air and soil from a highly industrialized city in Turkey.Sci Total Environ2018;625:555-65
|
| [23] |
Ma Y,Becanova J.Spatial distribution and air-water exchange of organophosphate esters in the lower Great Lakes.Environ Pollut2021;286:117349
|
| [24] |
Gbadamosi MR,Harrad S.Organophosphate esters in UK diet; exposure and risk assessment.Sci Total Environ2022;849:158368
|
| [25] |
Gbadamosi MR,Abdallah MA.Concentrations of organophosphate esters in drinking water from the United Kingdom: implications for human exposure.Emerging Contaminants2023;9:100203
|
| [26] |
Abdallah MA-E.Dermal uptake of chlorinated organophosphate flame retardants via contact with furniture fabrics; implications for human exposure.Environ Res2022;209:112847
|
| [27] |
Abdallah M, Harrad S. Dermal uptake of chlorinated organophosphate flame retardants via contact with furniture fabrics; implications for human exposure.Environ Res2022;209:112847
|