Outside the Safe Operating Space of a New Planetary Boundary for Per- and Polyfluoroalkyl Substances (PFAS)

. 2022 Aug 16 ; 56 (16) : 11172-11179. [epub] 20220802

Jazyk angličtina Země Spojené státy americké Médium print-electronic

Typ dokumentu časopisecké články, přehledy, práce podpořená grantem

Perzistentní odkaz   https://www.medvik.cz/link/pmid35916421

It is hypothesized that environmental contamination by per- and polyfluoroalkyl substances (PFAS) defines a separate planetary boundary and that this boundary has been exceeded. This hypothesis is tested by comparing the levels of four selected perfluoroalkyl acids (PFAAs) (i.e., perfluorooctanesulfonic acid (PFOS), perfluorooctanoic acid (PFOA), perfluorohexanesulfonic acid (PFHxS), and perfluorononanoic acid (PFNA)) in various global environmental media (i.e., rainwater, soils, and surface waters) with recently proposed guideline levels. On the basis of the four PFAAs considered, it is concluded that (1) levels of PFOA and PFOS in rainwater often greatly exceed US Environmental Protection Agency (EPA) Lifetime Drinking Water Health Advisory levels and the sum of the aforementioned four PFAAs (Σ4 PFAS) in rainwater is often above Danish drinking water limit values also based on Σ4 PFAS; (2) levels of PFOS in rainwater are often above Environmental Quality Standard for Inland European Union Surface Water; and (3) atmospheric deposition also leads to global soils being ubiquitously contaminated and to be often above proposed Dutch guideline values. It is, therefore, concluded that the global spread of these four PFAAs in the atmosphere has led to the planetary boundary for chemical pollution being exceeded. Levels of PFAAs in atmospheric deposition are especially poorly reversible because of the high persistence of PFAAs and their ability to continuously cycle in the hydrosphere, including on sea spray aerosols emitted from the oceans. Because of the poor reversibility of environmental exposure to PFAS and their associated effects, it is vitally important that PFAS uses and emissions are rapidly restricted.

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MacLeod M.; Arp H. P. H.; Tekman M. B.; Jahnke A. The Global Threat from Plastic Pollution. Science 2021, 373 (6550), 61–65. 10.1126/science.abg5433. PubMed DOI

Cousins I. T.; Ng C. A.; Wang Z.; Scheringer M. Why Is High Persistence Alone a Major Cause of Concern?. Environ. Sci.: Processes Impacts 2019, 21 (5), 781–792. 10.1039/C8EM00515J. PubMed DOI

Cousins I. T.; DeWitt J. C.; Glüge J.; Goldenman G.; Herzke D.; Lohmann R.; Ng C. A.; Scheringer M.; Wang Z. The High Persistence of PFAS Is Sufficient for Their Management as a Chemical Class. Environ. Sci.: Processes Impacts 2020, 22 (12), 2307–2312. 10.1039/D0EM00355G. PubMed DOI PMC

Quantis. Tackling the visible and invisible to close the plastic loop. https://quantis-intl.com/ocean-plastics/ (accessed 2022-04-07).

ECHA European Chemicals Agency. Registry of restriction intentions until outcome—microplastics. https://echa.europa.eu/sv/registry-of-restriction-intentions/-/dislist/details/0b0236e18244cd73 (accessed 2022-02-23).

Persson L.; Carney Almroth B. M.; Collins C. D.; Cornell S.; de Wit C. A.; Diamond M. L.; Fantke P.; Hassellöv M.; MacLeod M.; Ryberg M. W.; Søgaard Jørgensen P.; Villarrubia-Gómez P.; Wang Z.; Hauschild M. Z. Outside the Safe Operating Space of the Planetary Boundary for Novel Entities. Environ. Sci. Technol. 2022, 56 (3), 1510–1521. 10.1021/acs.est.1c04158. PubMed DOI PMC

European Environment Agency (EEA). Late Lessons from Early Warnings: Science, Precaution, Innovation, Publication EEA Report No 1/2013; 2013. https://www.eea.europa.eu/publications/late-lessons-2.

Evich M. G.; Davis M. J. B.; McCord J. P.; Acrey B.; Awkerman J. A.; Knappe D. R. U.; Lindstrom A. B.; Speth T. F.; Tebes-Stevens C.; Strynar M. J.; Wang Z.; Weber E. J.; Henderson W. M.; Washington J. W. Per- and Polyfluoroalkyl Substances in the Environment. Science 2022, 375 (6580), eabg9065 10.1126/science.abg9065. PubMed DOI PMC

ECHA European Chemicals Agency. Management of PBT/vPvB substances under REACH-ECHA. https://echa.europa.eu/management-of-pbt-vpvb-substances (accessed 2022-06-15).

Wang Z.; Buser A. M.; Cousins I. T.; Demattio S.; Drost W.; Johansson O.; Ohno K.; Patlewicz G.; Richard A. M.; Walker G. W.; White G. S.; Leinala E. A New OECD Definition for Per- and Polyfluoroalkyl Substances. Environ. Sci. Technol. 2021, 55 (23), 15575–15578. 10.1021/acs.est.1c06896. PubMed DOI

Cousins I. T.; DeWitt J. C.; Glüge J.; Goldenman G.; Herzke D.; Lohmann R.; Miller M.; Ng C. A.; Scheringer M.; Vierke L.; Wang Z. Strategies for Grouping Per- and Polyfluoroalkyl Substances (PFAS) to Protect Human and Environmental Health. Environ. Sci.: Processes Impacts 2020, 22 (7), 1444–1460. 10.1039/D0EM00147C. PubMed DOI PMC

Rockström J.; Steffen W.; Noone K.; Persson Å.; Chapin F. S.; Lambin E. F.; Lenton T. M.; Scheffer M.; Folke C.; Schellnhuber H. J.; Nykvist B.; de Wit C. A.; Hughes T.; van der Leeuw S.; Rodhe H.; Sörlin S.; Snyder P. K.; Costanza R.; Svedin U.; Falkenmark M.; Karlberg L.; Corell R. W.; Fabry V. J.; Hansen J.; Walker B.; Liverman D.; Richardson K.; Crutzen P.; Foley J. A. A Safe Operating Space for Humanity. Nature 2009, 461 (7263), 472–475. 10.1038/461472a. PubMed DOI

Rockstrom J.; Steffen W.; Noone K.; Persson Å.; Chapin F. S. I.; Lambin E.; Lenton T. M.; Scheffer M.; Folke C.; Schellnhuber H. J.; Nykvist B.; de Wit C. A.; Hughes T.; van der Leeuw S.; Rodhe H.; Sörlin S.; Snyder P. K.; Costanza R.; Svedin U.; Falkenmark M.; Karlberg L.; Corell R. W.; Fabry V. J.; Hansen J.; Walker B.; Liverman D.; Richardson K.; Crutzen P.; Foley J. Planetary Boundaries: Exploring the Safe Operating Space for Humanity. Ecology and Society 2009, 14 (2), 1. 10.5751/ES-03180-140232. PubMed DOI

Steffen W.; Richardson K.; Rockström J.; Cornell S. E.; Fetzer I.; Bennett E. M.; Biggs R.; Carpenter S. R.; de Vries W.; de Wit C. A.; Folke C.; Gerten D.; Heinke J.; Mace G. M.; Persson L. M.; Ramanathan V.; Reyers B.; Sörlin S. Planetary Boundaries: Guiding Human Development on a Changing Planet. Science 2015, 347 (6223), 1259855. 10.1126/science.1259855. PubMed DOI

Persson L. M.; Breitholtz M.; Cousins I. T.; de Wit C. A.; MacLeod M.; McLachlan M. S. Confronting Unknown Planetary Boundary Threats from Chemical Pollution. Environ. Sci. Technol. 2013, 47 (22), 12619–12622. 10.1021/es402501c. PubMed DOI

Diamond M. L.; de Wit C. A.; Molander S.; Scheringer M.; Backhaus T.; Lohmann R.; Arvidsson R.; Bergman Å.; Hauschild M.; Holoubek I.; Persson L.; Suzuki N.; Vighi M.; Zetzsch C. Exploring the Planetary Boundary for Chemical Pollution. Environment International 2015, 78, 8–15. 10.1016/j.envint.2015.02.001. PubMed DOI

U.S. Environmental Protection Agency. Lifetime Drinking Water Health Advisories for Four Perfluoroalkyl Substances (PFAS). https://www.epa.gov/system/files/documents/2022-06/prepublication-four-pfas-june-2022.pdf (accessed 2022-06-15).

Risk to Human Health Related to the Presence of Perfluoroalkyl Substances in Food. EFSA Journal 2020, 18 (9), e06223 10.2903/j.efsa.2020.6223. PubMed DOI PMC

Miljøministeriet. Bekendtgørelse Om Vandkvalitet Og Tilsyn Med. Vandforsyningsanlæg; 2021; Vol. BEK nr 2361 af 26/11/2021. https://www.retsinformation.dk/eli/lta/2021/2361.

Post G. B. Recent US State and Federal Drinking Water Guidelines for Per- and Polyfluoroalkyl Substances. Environ. Toxicol. Chem. 2021, 40 (3), 550–563. 10.1002/etc.4863. PubMed DOI

Khayan K.; Heru Husodo A.; Astuti I.; Sudarmadji S.; Sugandawaty Djohan T. Rainwater as a Source of Drinking Water: Health Impacts and Rainwater Treatment. Journal of Environmental and Public Health 2019, 2019, e1760950. 10.1155/2019/1760950. PubMed DOI PMC

Weiss J. M.; van der Veen I.; de Boer J.; van Leeuwen S. P. J.; Cofino W.; Crum S. Analytical Improvements Shown over Four Interlaboratory Studies of Perfluoroalkyl Substances in Environmental and Food Samples. TrAC Trends in Analytical Chemistry 2013, 43, 204–216. 10.1016/j.trac.2012.10.005. DOI

Chen M.; Wang C.; Gao K.; Wang X.; Fu J.; Gong P.; Wang Y. Perfluoroalkyl Substances in Precipitation from the Tibetan Plateau during Monsoon Season: Concentrations, Source Regions and Mass Fluxes. Chemosphere 2021, 282, 131105. 10.1016/j.chemosphere.2021.131105. PubMed DOI

Pike K. A.; Edmiston P. L.; Morrison J. J.; Faust J. A. Correlation Analysis of Perfluoroalkyl Substances in Regional U.S. Precipitation Events. Water Res. 2021, 190, 116685. 10.1016/j.watres.2020.116685. PubMed DOI

Liu Z.; Lu Y.; Shi Y.; Wang P.; Jones K.; Sweetman A. J.; Johnson A. C.; Zhang M.; Zhou Y.; Lu X.; Su C.; Sarvajayakesavaluc S.; Khan K. Crop Bioaccumulation and Human Exposure of Perfluoroalkyl Acids through Multi-Media Transport from a Mega Fluorochemical Industrial Park, China. Environ. Int. 2017, 106, 37–47. 10.1016/j.envint.2017.05.014. PubMed DOI

Shan G.; Chen X.; Zhu L. Occurrence, Fluxes and Sources of Perfluoroalkyl Substances with Isomer Analysis in the Snow of Northern China. J. Hazard. Mater. 2015, 299, 639–646. 10.1016/j.jhazmat.2015.07.074. PubMed DOI

Johansson J. H.; Shi Y.; Salter M. E.; Cousins I. T. Spatial Variation in the Atmospheric Deposition of Perfluoroalkyl Acids: Source Elucidation through Analysis of Isomer Patterns. Environmental Science: Processes & Impacts 2018, 20 (7), 997–1006. 10.1039/C8EM00102B. PubMed DOI

Sammut G.; Sinagra E.; Helmus R.; de Voogt P. Perfluoroalkyl Substances in the Maltese Environment – (I) Surface Water and Rain Water. Science of The Total Environment 2017, 589, 182–190. 10.1016/j.scitotenv.2017.02.128. PubMed DOI

Chen H.; Zhang L.; Li M.; Yao Y.; Zhao Z.; Munoz G.; Sun H. Per- and Polyfluoroalkyl Substances (PFASs) in Precipitation from Mainland China: Contributions of Unknown Precursors and Short-Chain (C2C3) Perfluoroalkyl Carboxylic Acids. Water Res. 2019, 153, 169–177. 10.1016/j.watres.2019.01.019. PubMed DOI

Wang S.; Lin X.; Li Q.; Li Y.; Yamazaki E.; Yamashita N.; Wang X. Particle Size Distribution, Wet Deposition and Scavenging Effect of per- and Polyfluoroalkyl Substances (PFASs) in the Atmosphere from a Subtropical City of China. Science of The Total Environment 2022, 823, 153528. 10.1016/j.scitotenv.2022.153528. PubMed DOI

Gewurtz S. B.; Bradley L. E.; Backus S.; Dove A.; McGoldrick D.; Hung H.; Dryfhout-Clark H. Perfluoroalkyl Acids in Great Lakes Precipitation and Surface Water (2006–2018) Indicate Response to Phase-Outs, Regulatory Action, and Variability in Fate and Transport Processes. Environ. Sci. Technol. 2019, 53 (15), 8543–8552. 10.1021/acs.est.9b01337. PubMed DOI

Filipovic M.; Laudon H.; McLachlan M. S.; Berger U. Mass Balance of Perfluorinated Alkyl Acids in a Pristine Boreal Catchment. Environ. Sci. Technol. 2015, 49 (20), 12127–12135. 10.1021/acs.est.5b03403. PubMed DOI

Casas G.; Martinez-Varela A.; Vila-Costa M.; Jiménez B.; Dachs J. Rain Amplification of Persistent Organic Pollutants. Environ. Sci. Technol. 2021, 55 (19), 12961–12972. 10.1021/acs.est.1c03295. PubMed DOI PMC

Han T.; Gao L.; Chen J.; He X.; Wang B. Spatiotemporal Variations, Sources and Health Risk Assessment of Perfluoroalkyl Substances in a Temperate Bay Adjacent to Metropolis, North China. Environ. Pollut. 2020, 265, 115011. 10.1016/j.envpol.2020.115011. PubMed DOI

Lindfeldt E.; Gyllenhammar I.; Strandh S.; Halldin Ankarberg E.. Kartläggning av per- och polyfluorerade alkylsubstanser PFAS, L-2021 nr 21; Livsmedelsverket: Uppsala, 2021; p 38. https://www.livsmedelsverket.se/globalassets/publikationsdatabas/rapporter/2021/l-2021-nr-21-kartlaggning-av-per-och-polyfluorerade-alkylsubstanser.pdf.

Andrews D. Q.; Naidenko O. V. Population-Wide Exposure to Per- and Polyfluoroalkyl Substances from Drinking Water in the United States. Environ. Sci. Technol. Lett. 2020, 7 (12), 931–936. 10.1021/acs.estlett.0c00713. DOI

Livsmedelsverket. Riskhantering PFAS i dricksvatten och egenfångad fisk. https://www.livsmedelsverket.se/foretagande-regler-kontroll/regler-for-livsmedelsforetag/dricksvattenproduktion/riskhantering-pfas-i-dricksvatten-egenfangad-fisk (accessed 2022-04-12).

Perfluorooctane Sulfonate (PFOS), Perfluorooctanoic Acid (PFOA) and Their Salts Scientific Opinion of the Panel on Contaminants in the Food Chain. EFSA Journal 2008, 6 (7), 653. 10.2903/j.efsa.2008.653. PubMed DOI PMC

Skaggs C. S.; Logue B. A. Ultratrace Analysis of Per- and Polyfluoroalkyl Substances in Drinking Water Using Ice Concentration Linked with Extractive Stirrer and High Performance Liquid Chromatography – Tandem Mass Spectrometry. Journal of Chromatography A 2021, 1659, 462493. 10.1016/j.chroma.2021.462493. PubMed DOI

Eurofins. Testing for PFOS, PFOA & GenX. https://cdnmedia.eurofins.com/european-west/media/1926921/pfas_flier_oct_18_uk.pdf (accessed 2022-06-16).

Yamashita N.; Taniyasu S.; Petrick G.; Wei S.; Gamo T.; Lam P. K. S.; Kannan K. Perfluorinated Acids as Novel Chemical Tracers of Global Circulation of Ocean Waters. Chemosphere 2008, 70 (7), 1247–1255. 10.1016/j.chemosphere.2007.07.079. PubMed DOI

Moermond C. T. A.; Verbruggen E. M. J.; Smit C. E.. Environmental Risk Limits for PFOS, RIVM Report 601714013/2010; RIVM Rijksinstituut voor Volksgezondheid en Milieu, 2010; p 70. https://www.rivm.nl/bibliotheek/rapporten/601714013.pdf.

Ahrens L. Polyfluoroalkyl Compounds in the Aquatic Environment: A Review of Their Occurrence and Fate. J. Environ. Monit 2011, 13 (1), 20–31. 10.1039/C0EM00373E. PubMed DOI

McLachlan M. S.; Holmström K. E.; Reth M.; Berger U. Riverine Discharge of Perfluorinated Carboxylates from the European Continent. Environ. Sci. Technol. 2007, 41 (21), 7260–7265. 10.1021/es071471p. PubMed DOI

Stockholms stad. Avrådan från att äta insjöfisk. https://via.tt.se/pressmeddelande/avradan-fran-att-ata-insjofisk?publisherId=1213538&releaseId=3302276 (accessed 2022-06-15).

RIVM Rijksinstituut voor Volksgezondheid en Milieu. Risicogrenzen voor PFOS, PFOA en GenX voor toepassen van grond en bagger. https://www.rivm.nl/documenten/risicogrenzen-voor-pfos-pfoa-en-genx-voor-toepassen-van-grond-en-bagger (accessed 2022-02-23).

RIVM Rijksinstituut voor Volksgezondheid en Milieu. Temporary background values for PFAS in Dutch soil. https://www.rivm.nl/en/news/temporary-background-values-for-pfas-in-dutch-soil (accessed 2022-02-23).

RIVM Rijksinstituut voor Volksgezondheid en Milieu. Tijdelijke landelijke achtergrondwaarden bodem voor PFOS en PFOA. https://www.rivm.nl/documenten/tijdelijke-landelijke-achtergrondwaarden-bodem-voor-pfos-en-pfoa (accessed 2022-02-23).

Rankin K.; Mabury S. A.; Jenkins T. M.; Washington J. W. A North American and Global Survey of Perfluoroalkyl Substances in Surface Soils: Distribution Patterns and Mode of Occurrence. Chemosphere 2016, 161, 333–341. 10.1016/j.chemosphere.2016.06.109. PubMed DOI

Sörengård M.; Kikuchi J.; Wiberg K.; Ahrens L. Spatial Distribution and Load of Per- and Polyfluoroalkyl Substances (PFAS) in Background Soils in Sweden. Chemosphere 2022, 295, 133944. 10.1016/j.chemosphere.2022.133944. PubMed DOI

Maine State Legislature. An Act To Prevent the Further Contamination of the Soils and Waters of the State with So-Called Forever Chemicals. https://legislature.maine.gov/legis/bills/getPDF.asp?paper=HP1417&item=2&snum=130.

Prevedouros K.; Cousins I. T.; Buck R. C.; Korzeniowski S. H. Sources, Fate and Transport of Perfluorocarboxylates. Environ. Sci. Technol. 2006, 40 (1), 32–44. 10.1021/es0512475. PubMed DOI

Sha B.; Johansson J. H.; Tunved P.; Bohlin-Nizzetto P.; Cousins I. T.; Salter M. E. Sea Spray Aerosol (SSA) as a Source of Perfluoroalkyl Acids (PFAAs) to the Atmosphere: Field Evidence from Long-Term Air Monitoring. Environ. Sci. Technol. 2022, 56 (1), 228–238. 10.1021/acs.est.1c04277. PubMed DOI PMC

Land M.; de Wit C. A.; Bignert A.; Cousins I. T.; Herzke D.; Johansson J. H.; Martin J. W. What Is the Effect of Phasing out Long-Chain per- and Polyfluoroalkyl Substances on the Concentrations of Perfluoroalkyl Acids and Their Precursors in the Environment? A Systematic Review. Environmental Evidence 2018, 7 (1), 4. 10.1186/s13750-017-0114-y. DOI

MacLeod M.; Breitholtz M.; Cousins I. T.; Wit C. A. de; Persson L. M.; Rudén C.; McLachlan M. S. Identifying Chemicals That Are Planetary Boundary Threats. Environ. Sci. Technol. 2014, 48 (19), 11057–11063. 10.1021/es501893m. PubMed DOI

Boucher J. M.; Cousins I. T.; Scheringer M.; Hungerbühler K.; Wang Z. Toward a Comprehensive Global Emission Inventory of C4–C10 Perfluoroalkanesulfonic Acids (PFSAs) and Related Precursors: Focus on the Life Cycle of C6- and C10-Based Products. Environ. Sci. Technol. Lett. 2019, 6 (1), 1–7. 10.1021/acs.estlett.8b00531. PubMed DOI

Grandjean P.; Heilmann C.; Weihe P.; Nielsen F.; Mogensen U. B.; Timmermann A.; Budtz-Jørgensen E. Estimated Exposures to Perfluorinated Compounds in Infancy Predict Attenuated Vaccine Antibody Concentrations at Age 5-Years. Journal of Immunotoxicology 2017, 14 (1), 188–195. 10.1080/1547691X.2017.1360968. PubMed DOI PMC

Interstate Technology and Regulatory Council (ITRC). PFAS—Per- and Polyfluoroalkyl Substances. https://pfas-1.itrcweb.org/#1_7 (accessed 2022-06-15).

Goldenman G.; Fernandes M.; Holland M.; Tugran T.; Nordin A.; Schoumacher C.; McNeill A.. Cost of Inaction: A Socioeconomic Analysis of Environmental and Health Impacts Linked to Exposure to PFAS; Nordisk Ministerråd, 2019. http://urn.kb.se/resolve?urn=urn:nbn:se:norden:org:diva-5514.

Blum A.; Balan S. A.; Scheringer M.; Trier X.; Goldenman G.; Cousins I. T.; Diamond M.; Fletcher T.; Higgins C.; Lindeman A. E.; Peaslee G.; de Voogt P.; Wang Z.; Weber R. The Madrid Statement on Poly- and Perfluoroalkyl Substances (PFASs). Environ. Health Perspect. 2015, 123 (5), A107–A111. 10.1289/ehp.1509934. PubMed DOI PMC

Cousins I. T.; Goldenman G.; Herzke D.; Lohmann R.; Miller M.; Ng C. A.; Patton S.; Scheringer M.; Trier X.; Vierke L.; Wang Z.; DeWitt J. C. The Concept of Essential Use for Determining When Uses of PFASs Can Be Phased Out. Environ. Sci.: Processes Impacts 2019, 21 (11), 1803–1815. 10.1039/C9EM00163H. PubMed DOI PMC

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