Occurrence, sources and ecological risk assessment of per- and polyfluoroalkyl substances (PFASs) in water and sediment from urban rivers in Dhaka, Bangladesh

Md. Habibullah-Al-Mamun , Md. Monirul Islam , Sadman Sakib , Susmita Islam , Mir Mohammad Ali , Md. Hasan Faruque

Journal of Environmental Exposure Assessment ›› 2025, Vol. 4 ›› Issue (3) : 24

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Journal of Environmental Exposure Assessment ›› 2025, Vol. 4 ›› Issue (3) :24 DOI: 10.20517/jeea.2025.38
Research Article

Occurrence, sources and ecological risk assessment of per- and polyfluoroalkyl substances (PFASs) in water and sediment from urban rivers in Dhaka, Bangladesh

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Abstract

Per- and polyfluoroalkyl substances (PFASs) in urban rivers of rapidly industrializing regions remain understudied, particularly in South Asia. This study assessed the occurrence, sources, and ecological risks of 15 PFASs in water and sediment from three major rivers (Buriganga, Turag, Shitalakkha) in Dhaka, Bangladesh. PFASs were quantified using HPLC-MS/MS, and sources were identified via principal component analysis (PCA). All target compounds were detected, with total concentrations in water ranging from 23.96 to 89.35 ng/L and sediment from 2.18 to 11.67 ng/g dry weight. Perfluorooctanoic acid (PFOA) dominated water samples (34%-59% of ΣPFASs), reflecting its ongoing industrial use and high water solubility, while perfluorooctane sulfonate (PFOS) prevailed in sediments (up to 71% of ΣPFASs) due to historical accumulation. The Buriganga River exhibited the highest contamination, driven by untreated effluents from tanneries, textiles, and chemical industries. Risk quotient (RQ) analysis revealed low-to-moderate ecological risks for most PFASs, but PFOS in sediments posed a high risk (RQ = 1.68) near industrial clusters. Compared with global data, PFAS levels in rivers around Dhaka city exceeded those in less industrialized regions but were lower than those in heavily polluted systems. These findings highlight the urgent need for stricter regulation of industrial discharges, improved wastewater treatment, and long-term monitoring to mitigate PFAS contamination in urban waterways. This study also provides critical baseline data to inform environmental policy and sustainable water management in developing regions.

Keywords

PFAS / surface water / sediment / urban rivers / ecological risk assessment

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Md. Habibullah-Al-Mamun, Md. Monirul Islam, Sadman Sakib, Susmita Islam, Mir Mohammad Ali, Md. Hasan Faruque. Occurrence, sources and ecological risk assessment of per- and polyfluoroalkyl substances (PFASs) in water and sediment from urban rivers in Dhaka, Bangladesh. Journal of Environmental Exposure Assessment, 2025, 4(3): 24 DOI:10.20517/jeea.2025.38

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References

[1]

Buck RC,Berger U.Perfluoroalkyl and polyfluoroalkyl substances in the environment: terminology, classification, and origins.Integr Environ Assess Manag2011;7:513-41 PMCID:PMC3214619

[2]

Brendel S,Staude C,Biegel-Engler A.Short-chain perfluoroalkyl acids: environmental concerns and a regulatory strategy under REACH.Environ Sci Eur2018;30:9 PMCID:PMC5834591

[3]

OECD. Summary report on the new comprehensive global database of Per- and Polyfluoroalkyl Substances (PFASs). 2018. https://www.oecd.org/en/publications/summary-report-on-the-new-comprehensive-global-database-of-per-and-polyfluoroalkyl-substances-pfass_1a14ad6c-en.html. (accessed 14 Aug 2025)

[4]

Giesy JP.Global distribution of perfluorooctane sulfonate in wildlife.Environ Sci Technol2001;35:1339-42

[5]

Liu M,Meng L.Associations between novel and legacy per- and polyfluoroalkyl substances in human serum and thyroid cancer: a case and healthy population in Shandong Province, East China.Environ Sci Technol2022;56:6144-51

[6]

Faust JA.PFAS on atmospheric aerosol particles: a review.Environ Sci Process Impacts2023;25:133-50

[7]

Fenton SE,Boobis A.Per- and polyfluoroalkyl substance toxicity and human health review: current state of knowledge and strategies for informing future research.Environ Toxicol Chem2021;40:606-30 PMCID:PMC7906952

[8]

Habibullah-Al-Mamun M,Raknuzzaman M.Occurrence and assessment of perfluoroalkyl acids (PFAAs) in commonly consumed seafood from the coastal area of Bangladesh.Mar Pollut Bull2017;124:775-85

[9]

Ahrens L.Polyfluoroalkyl compounds in the aquatic environment: a review of their occurrence and fate.J Environ Monit2011;13:20-31

[10]

Wang X,Jones KC.Occurrence and spatial distribution of neutral perfluoroalkyl substances and cyclic volatile methylsiloxanes in the atmosphere of the Tibetan Plateau.Atmos Chem Phys2018;18:8745-55

[11]

Galloway JE,Lindstrom AB.Evidence of air dispersion: HFPO-DA and PFOA in Ohio and West Virginia surface water and soil near a fluoropolymer production facility.Environ Sci Technol2020;54:7175-84 PMCID:PMC8015386

[12]

Brusseau ML.Assessing the potential contributions of additional retention processes to PFAS retardation in the subsurface.Sci Total Environ2018;613-4:176-85 PMCID:PMC5693257

[13]

Stockholm Convention. The new POPs under the Stockholm Convention. Stockholm Convention Secretariat, United Nations Environment, Geneva, Switzerland. 2017. https://www.pops.int/TheConvention/ThePOPs/TheNewPOPs/tabid/2511/Default.aspx. (accessed 14 Aug 2025)

[14]

Schulz K,Klaper R.Distribution and effects of branched versus linear isomers of PFOA, PFOS, and PFHxS: a review of recent literature.Sci Total Environ2020;733:139186

[15]

USEPA. New chemical program review of alternatives for PFOA and related chemicals. https://www.epa.gov/assessing-and-managing-chemicals-under-tsca/new-chemicals-program-review-alternatives-pfoa-and. (Accessed 14 Aug 2025)

[16]

Brennan NM,Fritz MK,von Holst HE.Trends in the regulation of per- and polyfluoroalkyl substances (PFAS): a scoping review.Int J Environ Res Public Health2021;18:10900 PMCID:PMC8536021

[17]

Guruge K,Yamashita N. Fluoroalkyl surfactants in fish and water from Sri Lanka: an estimation of PFOS and PFOA intake via fish. In: Persistent organic pollutants (POP) research in Asia. 2008. pp. 167-72. https://www.researchgate.net/publication/283892588_FLUOROALKYL_SURFACTANTS_IN_FISH_AND_WATER_FROM_SRI_LANKA_AN_ESTIMATION_OF_PFOS_AND_PFOA_INTAKE_VIA_FISH. (accessed 14 Aug 2025)

[18]

Vassiliadou I,Kalogeropoulos N.Levels of perfluorinated compounds in raw and cooked Mediterranean finfish and shellfish.Chemosphere2015;127:117-26

[19]

Hossain S,Sultana S. Persistent threat: PFAS in textiles and water in Bangladesh. 2024. https://ipen.org/documents/persistent-threat-pfas-textiles-and-water-bangladesh. (accessed 14 Aug 2025)

[20]

Habibullah-Al-Mamun M,Raknuzzaman M.Occurrence and distribution of perfluoroalkyl acids (PFAAs) in surface water and sediment of a tropical coastal area (Bay of Bengal coast, Bangladesh).Sci Total Environ2016;571:1089-104

[21]

Cao X,Lu Y.Occurrence, sources and health risk of polyfluoroalkyl substances (PFASs) in soil, water and sediment from a drinking water source area.Ecotoxicol Environ Saf2019;174:208-17

[22]

Hu XC,Lindstrom AB.Detection of poly- and perfluoroalkyl substances (PFASs) in U.S. drinking water linked to industrial sites, military fire training areas, and wastewater treatment plants.Environ Sci Technol Lett2016;3:344-50 PMCID:PMC5062567

[23]

Martin JW,Braune BM,Muir DC.Identification of long-chain perfluorinated acids in biota from the Canadian Arctic.Environ Sci Technol2004;38:373-80

[24]

Shi Y,Yang R,Cai Y.Occurrence of perfluorinated compounds in fish from Qinghai-Tibetan Plateau.Environ Int2010;36:46-50

[25]

Becker AM,Gerstmann S.Perfluorooctanoic acid and perfluorooctane sulfonate released from a waste water treatment plant in Bavaria, Germany.Environ Sci Pollut Res Int2010;17:1502-7

[26]

Chen S,Meng J.Seasonal and annual variations in removal efficiency of perfluoroalkyl substances by different wastewater treatment processes.Environ Pollut2018;242:2059-67

[27]

Franke V,Lindegren K.Efficient removal of per- and polyfluoroalkyl substances (PFASs) in drinking water treatment: nanofiltration combined with active carbon or anion exchange.Environ Sci Water Res Technol2019;5:1836-43

[28]

United Nations. Dhaka Population 2025. World Population Prospects. 2024. https://worldpopulationreview.com/cities/bangladesh/dhaka. (accessed 14 Aug 2025)

[29]

Islam M,Tareq S.Alteration of water pollution level with the seasonal changes in mean daily discharge in three main rivers around Dhaka City, Bangladesh.Environments2015;2:280-94

[30]

Department of Environment, Ministry of Environment and Forest, Government of the people’s republic of Bangladesh. Surface and Ground Water Quality Report 2016. https://doe.portal.gov.bd/sites/default/files/files/doe.portal.gov.bd/publications/d5bb5df3_3e3e_40f9_bdd3_9a72d29c16b5/Surface%20and%20Ground%20Water%20Quality%20Report%202016-.pdf. (accessed 14 Aug 2025)

[31]

Uddin MJ.Urban river pollution in Bangladesh during last 40 years: potential public health and ecological risk, present policy, and future prospects toward smart water management.Heliyon2021;7:e06107 PMCID:PMC7892934

[32]

United Nations. SDG Goal 6. Ensure availability and sustainable management of water and sanitation for all. https://sdgs.un.org/goals/goal6. (accessed 14 Aug 2025)

[33]

United Nations. SDG Goal 11. Make cities and human settlements inclusive, safe, resilient and sustainable. https://sdgs.un.org/goals/goal11. (accessed 14 Aug 2025)

[34]

Ahmad MK,Rahman MS,Islam MM.Heavy metals in water, sediment and some fishes of Buriganga River, Bangladesh.Int J Environ Res2010;4:321-32

[35]

Gałęzowska G,Olkowska E,Wolska L.Environmental risk assessment resulting from sediment contamination with perfluoroalkyl substances.Molecules2020;26:116 PMCID:PMC7795547

[36]

Bao L,Zhang C.Occurrence and risk assessment of per- and polyfluoroalkyl substances (PFASs) in water, sediment, soil, and moss: an environmental media study in Caohai, China.Emerg Contam2025;11:100489

[37]

Wang Q,Ruan Y.Occurrence and distribution of per- and polyfluoroalkyl substances (PFASs) in the seawater and sediment of the South China sea coastal region.Chemosphere2019;231:468-77

[38]

Bao J,Liu L,Ran X.Perfluorinated compounds in urban river sediments from Guangzhou and Shanghai of China.Chemosphere2010;80:123-30

[39]

Brooke D,Nwaogu TA. Environmental risk evaluation report: perfluorooctane-sulphonate (PFOS). Environment Agency; 2004. https://www.pops.int/Portals/0/docs/from_old_website/documents/meetings/poprc/meeting_docs/en/POPRC1-INF9-e.pdf. (accessed 14 Aug 2025)

[40]

Hansen KJ,Eldridge JS,Dick LA.Quantitative characterization of trace levels of PFOS and PFOA in the Tennessee River.Environ Sci Technol2002;36:1681-5

[41]

So MK,Yeung WY.Perfluorinated compounds in the Pearl River and Yangtze River of China.Chemosphere2007;68:2085-95

[42]

Ahrens L,Yeung LW.Partitioning behavior of per- and polyfluoroalkyl compounds between pore water and sediment in two sediment cores from Tokyo Bay, Japan.Environ Sci Technol2009;43:6969-75

[43]

Campo J,Pérez F,Farré Ml.Analysis of the presence of perfluoroalkyl substances in water, sediment and biota of the Jucar River (E Spain). Sources, partitioning and relationships with water physical characteristics.Environ Res2016;147:503-12

[44]

An X,Lu Y.Per- and polyfluoroalkyl substances (PFASs) in water and sediment from a temperate watershed in China: occurrence, sources, and ecological risks.Sci Total Environ2023;890:164207

[45]

Hong S,Wang T.Bioaccumulation characteristics of perfluoroalkyl acids (PFAAs) in coastal organisms from the west coast of South Korea.Chemosphere2015;129:157-63

[46]

Zhao Z,Tang J.Seasonal variations and spatial distributions of perfluoroalkyl substances in the rivers Elbe and lower Weser and the North Sea.Chemosphere2015;129:118-25

[47]

Novak PA,Thompson SN.Per- and polyfluoroalkyl substances (PFAS) contamination in a microtidal urban estuary: sources and sinks.Mar Pollut Bull2023;193:115215

[48]

Lewis AJ,Spooner DE,McKenzie ER.Exposure pathways and bioaccumulation of per- and polyfluoroalkyl substances in freshwater aquatic ecosystems: key considerations.Sci Total Environ2022;822:153561

[49]

Chu K,Hua Z.Perfluoroalkyl acids (PFAAs) in the aquatic food web of a temperate urban lake in East China: bioaccumulation, biomagnification, and probabilistic human health risk.Environ Pollut2022;296:118748

[50]

Li F,Tian S.Short-chain per- and polyfluoroalkyl substances in aquatic systems: occurrence, impacts and treatment.Chem Eng J2020;380:122506

[51]

Wang P,Wang T.Occurrence and transport of 17 perfluoroalkyl acids in 12 coastal rivers in south Bohai coastal region of China with concentrated fluoropolymer facilities.Environ Pollut2014;190:115-22

[52]

Si Y,Liang Z.Occurrence and ecological risk assessment of perfluoroalkyl substances (PFASs) in water and sediment from an urban river in South China.Arch Environ Contam Toxicol2021;81:133-41

[53]

Munoz G,Geneste E,Budzinski H.Spatio-temporal dynamics of per and polyfluoroalkyl substances (PFASs) and transfer to periphytic biofilm in an urban river: case-study on the River Seine.Environ Sci Pollut Res Int2018;25:23574-82

[54]

Zarębska M,Hordyjewicz-Baran Z.Assessment of legacy and emerging PFAS in the Oder River: occurrence, distribution, and sources.Environ Res2024;251:118608

[55]

De Silva, A. O.; Spencer, C.; Scott, B. F.; Backus, S.; Muir, D. C. Detection of a cyclic perfluorinated acid, perfluoroethylcyclohexane sulfonate, in the Great Lakes of North America.Environ Sci Technol2011;45:8060-6

[56]

Zhao Z,Mi L.Perfluoroalkyl and polyfluoroalkyl substances in the lower atmosphere and surface waters of the Chinese Bohai Sea, Yellow Sea, and Yangtze River estuary.Sci Total Environ2017;599-600:114-23

[57]

Niisoe T,Harada KH.Perfluorinated carboxylic acids discharged from the Yodo River Basin, Japan.Chemosphere2015;138:81-8

[58]

Bai X.Perfluoroalkyl substances (PFAS) in surface water and sediments from two urban watersheds in Nevada, USA.Sci Total Environ2021;751:141622

[59]

Guo C,Zhao X.Distribution, source characterization and inventory of perfluoroalkyl substances in Taihu Lake, China.Chemosphere2015;127:201-7

[60]

Sharma BM,Tayal S.Perfluoroalkyl substances (PFAS) in river and ground/drinking water of the Ganges River basin: emissions and implications for human exposure.Environ Pollut2016;208:704-13

[61]

Cai L,Li J,Lyu Y.Occurrence, source apportionment, and pollution assessment of per- and polyfluoroalkyl substances in a river across rural and urban areas.Sci Total Environ2022;835:155505

[62]

Zhao Z,Xie Z.Perfluoroalkyl acids (PFAAs) in riverine and coastal sediments of Laizhou Bay, North China.Sci Total Environ2013;447:415-23

[63]

Labadie P.Partitioning behaviour of perfluorinated alkyl contaminants between water, sediment and fish in the Orge River (nearby Paris, France).Environ Pollut2011;159:391-7

[64]

Lasier PJ,Hassan SM.Perfluorinated chemicals in surface waters and sediments from northwest Georgia, USA, and their bioaccumulation in Lumbriculus variegatus.Environ Toxicol Chem2011;30:2194-201

[65]

Senthil Kumar, K.; Zushi, Y.; Masunaga, S.; Gilligan, M.; Pride, C.; Sajwan, K. S. Perfluorinated organic contaminants in sediment and aquatic wildlife, including sharks, from Georgia, USA.Mar Pollut Bull2009;58:621-9

[66]

Pico Y,Farré M.Occurrence of perfluorinated compounds in water and sediment of L’Albufera Natural Park (València, Spain).Environ Sci Pollut Res Int2012;19:946-57

[67]

Senthilkumar K,Sajwan K,Kannan K.Perfluorinated compounds in river water, river sediment, market fish, and wildlife samples from Japan.Bull Environ Contam Toxicol2007;79:427-31

[68]

Paul R. Challenges of water quality management: case of peripheral Rivers in Dhaka Mega City. Presentation from the world water week in Stockholm. 2010. https://www.slideshare.net/slideshow/challenges-of-water-quality-management-case-of-peripheral-rivers-in-dhaka-mega-city-presented-by-reba-paul-executive-secretary-bwp-and-azharul-haq-former-managing-director-dhaka-wasa-at-world-water-week-2010/5352131. (accessed 14 Aug 2025)

[69]

Akbor MA,Bodrud-Doza M.Metal pollution in water and sediment of the Buriganga River, Bangladesh: an ecological risk perspective.Desalination Water Treat2020;193:284-301

[70]

Gaines LGT.Historical and current usage of per- and polyfluoroalkyl substances (PFAS): a literature review.Am J Ind Med2023;66:353-78

[71]

Jian JM,Wang F,Wang F.Effect of solution chemistry and aggregation on adsorption of perfluorooctanesulphonate (PFOS) to nano-sized alumina.Environ Pollut2019;251:425-33

[72]

Baqar M,Zhao M.Combustion of high-calorific industrial waste in conventional brick kilns: an emerging source of PFAS emissions to agricultural soils.Sci Total Environ2024;906:167612

[73]

Saha PK. Geochemical and ecotoxicological approach for evaluation of heavy metal pollution in the Buriganga River Sediment. In: Proceedings of Bangladesh geotechnical conference. 2010. https://www.scirp.org/reference/referencespapers?referenceid=733268. (accessed 14 Aug 2025)

[74]

Ahrens L.Fate and effects of poly- and perfluoroalkyl substances in the aquatic environment: a review.Environ Toxicol Chem2014;33:1921-9

[75]

Guerra P,Kinsman L,Alaee M.Parameters affecting the formation of perfluoroalkyl acids during wastewater treatment.J Hazard Mater2014;272:148-54

[76]

Giesy JP.Perfluorochemical surfactants in the environment.Environ Sci Technol2002;36:146A-52A

[77]

Houde M,Letcher RJ,Muir DC.Biological monitoring of polyfluoroalkyl substances: a review.Environ Sci Technol2006;40:3463-73

[78]

Du G,Hu J.Endocrine-related effects of perfluorooctanoic acid (PFOA) in zebrafish, H295R steroidogenesis and receptor reporter gene assays.Chemosphere2013;91:1099-106

[79]

Huang Y,Zhang JW.Impact of endocrine-disrupting chemicals on reproductive function in zebrafish (Danio rerio).Reprod Domest Anim2015;50:1-6

[80]

Ma T,Wang T,Luo Y.Toxicity of per- and polyfluoroalkyl substances to aquatic invertebrates, planktons, and microorganisms.Int J Environ Res Public Health2022;19:16729 PMCID:PMC9779086

[81]

Guo R,Liu J.Occurrence, partition and environmental risk assessment of per- and polyfluoroalkyl substances in water and sediment from the Baiyangdian Lake, China.Sci Rep2020;10:4691 PMCID:PMC7069980

[82]

Post GB,Cooper KR.Perfluorooctanoic acid (PFOA), an emerging drinking water contaminant: a critical review of recent literature.Environ Res2012;116:93-117

[83]

Brack W,Ågerstrand M.Towards the review of the European Union Water Framework Directive: recommendations for more efficient assessment and management of chemical contamination in European surface water resources.Sci Total Environ2017;576:720-37 PMCID:PMC8281610

[84]

Lin N,Su S,Wang B.Exposure characteristics of legacy and novel per- and polyfluoroalkyl substances in blood and association with hypertension among low-exposure population.J Hazard Mater2023;459:132185

[85]

Zeng Z,Xiao R.Assessing the human health risks of perfluorooctane sulfonate by in vivo and in vitro studies.Environ Int2019;126:598-610

[86]

Stevenson ED,Bai X.Critical review on PFOA, kidney cancer, and testicular cancer.J Air Waste Manag Assoc2021;71:1265-76

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