Microplastics in drinking water: Addressing human health risks and removal strategies
DOI:
https://doi.org/10.61511/ajteoh.v4i1.2026.3606Keywords:
drinking water, environmental contamination, human health risks, microplastics, public health, regulatory frameworks, removal strategiesAbstract
Background: Microplastics (MPs) have emerged as significant environmental contaminants increasingly detected in drinking water. Originating from plastic waste, textiles, and industrial effluents, MPs can infiltrate water systems and resist conventional treatment processes. Their small size and ability to carry toxic substances such as plasticizers, heavy metals, and persistent organic pollutants raise serious concerns regarding human health and water safety. Methods: This study employed a narrative review approach by synthesizing literature published between 2021 and 2025 from PubMed, Dimensions AI, and ScienceDirect. The review examined the sources of MPs in drinking water, associated human health risks, detection methods, removal technologies, and existing regulatory frameworks. Findings: The review found that MPs in drinking water pose considerable health risks through chemical leaching, bioaccumulation, and physical damage. Smaller particles, particularly nanoplastics, are difficult to detect and can bypass conventional filtration systems. Exposure to MPs is associated with endocrine disruption, gastrointestinal disorders, neurodegenerative diseases, and other long-term health impacts, especially among vulnerable groups such as children and pregnant women. Advanced treatment technologies, including nanofiltration, reverse osmosis, and electrocoagulation show potential for effective removal, although economic and operational limitations hinder large-scale implementation. The study also identified major policy gaps, including the absence of standardized global regulations and safety thresholds for MPs. Conclusion: Microplastic contamination in drinking water represents a growing threat to public health and water quality management. Improved detection methods, stronger regulatory frameworks, advanced treatment technologies, and public health education are urgently needed to reduce exposure and ensure safer drinking water systems worldwide. Novelty/Originality of this article: This study provides a comprehensive and up-to-date synthesis of microplastic contamination in drinking water by integrating health risk assessment, detection challenges, treatment technologies, and policy analysis within a single review. It highlights critical gaps in regulation and emphasizes the need for global standardization and interdisciplinary solutions.
References
Agnew, S., Kopke, K., Power, O.-P., Dozier, A., & Fitzgerald, E. (2024). Marine microplastic pollution and misinformation in the public sphere: A systematic review. Discover Oceans, 1(1), Article 30. https://doi.org/10.1007/s44289-024-00033-6
Al-Mansoori, M., Harrad, S., & Abdallah, M. A.-E. (2025). Synthetic microplastics in hot and cold beverages from the UK market: Comprehensive assessment of human exposure via total beverage intake. Science of the Total Environment, 996, Article 180188. https://doi.org/10.1016/j.scitotenv.2025.180188
Bhat, M. A., & Janaszek, A. (2024). Evaluation of potentially toxic elements and microplastics in the water treatment facility. Environmental Monitoring and Assessment, 196(5), Article 475. https://doi.org/10.1007/s10661-024-12651-w
Bidashimwa, D., Hoke, T., Huynh, T. B., Narkpitaks, N., Priyonugroho, K., Ha, T. T., Burns, A., & Weissman, A. (2023). Plastic pollution: How can the global health community fight the growing problem? BMJ Global Health, 8(3), Article e012140. https://doi.org/10.1136/bmjgh-2023-012140
Borenstein, S. (2024). Scientists find about a quarter million invisible nanoplastic particles in a liter of bottled water. AP News. https://apnews.com/article/plastic-nano-bottled-drinking-water-contaminate-b77dce04539828207fe55ebac9b27283
Cai, T., Tang, Z., Gu, T., Tong, K., Wang, X., Chen, H., Zhou, X., Long, Z., Hao, C., Chen, C., & Zeng, R. (2025). Microplastics in drinking water: A review of sources, removal, detection, occurrence, and potential risks. Toxics, 13(9), Article 782. https://doi.org/10.3390/toxics13090782
Carter, J., Horan, T., Miller, J., Madejski, G., Butler, E., Amato, C., & Roussie, J. (2023). Comparative evaluation of filtration and imaging properties of analytical filters for microplastic capture and analysis. Chemosphere, 332, Article 138811. https://doi.org/10.1016/j.chemosphere.2023.138811
Cherian, A. G., Liu, Z., McKie, M. J., Almuhtaram, H., & Andrews, R. C. (2023). Microplastic removal from drinking water using point-of-use devices. Polymers, 15(6), Article 1331. https://doi.org/10.3390/polym15061331
European Commission. (2026). Drinking water. Environment European Commission. https://environment.ec.europa.eu/topics/water/drinking-water_en
European Union. (n.d.). Commission Regulation (EU) 2023/2055: Restriction of microplastics intentionally added to products. Economy European Commission. https://single-market-economy.ec.europa.eu/sectors/chemicals/reach/restrictions/commission-regulation-eu-20232055-restriction-microplastics-intentionally-added-products_en
FDA. (2024). Microplastics and nanoplastics in foods. Food and Drug Administration. https://www.fda.gov/food/environmental-contaminants-food/microplastics-and-nanoplastics-foods
Gálvez-Blanca, V., Edo, C., González-Pleiter, M., Fernández-Piñas, F., Leganés, F., & Rosal, R. (2024). Microplastics and non-natural cellulosic particles in Spanish bottled drinking water. Scientific Reports, 14(1), Article 11089. https://doi.org/10.1038/s41598-024-62075-2
Hagelskjær, O., Hagelskjær, F., Margenat, H., Yakovenko, N., Sonke, J. E., & Roux, G. L. (2025). The majority of potable water microplastics are smaller than the 20 μm EU methodology limit for consumable water quality. PLOS Water, 4(1), Article e0000250. https://doi.org/10.1371/journal.pwat.0000250
Hassan, I., Sethupathi, S., Bashir, M. J. K., Ahmad, A. L., & Parthasarathy, P. (2025). Tracking microplastics at the source: A comparative study of fluorescent and FTIR microscopy at a drinking water intake in the Perak River, Malaysia. Environmental Monitoring and Assessment, 197(6), Article 702. https://doi.org/10.1007/s10661-025-14127-x
Kirstein, I. V., Hensel, F., Gomiero, A., Iordachescu, L., Vianello, A., Wittgren, H. B., & Vollertsen, J. (2021). Drinking plastics? Quantification and qualification of microplastics in drinking water distribution systems by µFTIR and Py-GCMS. Water Research, 188, Article 116519. https://doi.org/10.1016/j.watres.2020.116519
Lee, J.-Y., Cha, J., Ha, K., & Viaroli, S. (2024). Microplastic pollution in groundwater: A systematic review. Environmental Pollutants and Bioavailability, 36(1), Article 2299545. https://doi.org/10.1080/26395940.2023.2299545
Li, X., Yu, Y., Yang, M., Wen, S., & Zhang, J. (2024). Tracking microplastics contamination in drinking water supply chain in Haikou, China: From source to household taps. Toxics, 12(11), Article 793. https://doi.org/10.3390/toxics12110793
Matavos-Aramyan, S. (2024). Addressing the microplastic crisis: A multifaceted approach to removal and regulation. Environmental Advances, 17, Article 100579. https://doi.org/10.1016/j.envadv.2024.100579
Measurlabs. (2024, February 20). Overview of microplastic testing standard ISO 24187. https://measurlabs.com/blog/microplastic-testing-standard-iso-24187/
Mohan, M., Gaonkar, A. A., Pandyanda Nanjappa, D., K, K., Vittal, R., Chakraborty, A., & Chakraborty, G. (2023). Screening for microplastics in drinking water and its toxicity profiling in zebrafish. Chemosphere, 341, Article 139882. https://doi.org/10.1016/j.chemosphere.2023.139882
Negrete Velasco, A., Borboën, D., Ramseier Gentile, S., Zimmermann, S., Ramaciotti, P., Perdaems, P., Jeanneret, B., Ramirez Arenas, L., Le Coustumer, P., & Stoll, S. (2025). Microplastics detection and characterisation in the urban water cycle of Geneva, Switzerland: Assessing the supply network impacts. Chemosphere, 385, Article 144558. https://doi.org/10.1016/j.chemosphere.2025.144558
Pop, V., Ozunu, A., Petrescu, D. C., Stan, A.-D., & Petrescu-Mag, R. M. (2023). The influence of media narratives on microplastics risk perception. PeerJ, 11, Article e16338. https://doi.org/10.7717/peerj.16338
Raimi, M. O., Odipe, O. E., Waleola, T., Ogunyebi, A., & Omoyajowo, K. (2021). Public awareness, knowledge, attitude and perception on microplastics pollution around Lagos Lagoon. Ecological Safety and Balanced Use of Resources. https://doi.org/10.31471/2415-3184-2021-2(24)-35-46
Ramirez Arenas, L., Ramseier Gentile, S., Zimmermann, S., & Stoll, S. (2021). Nanoplastics adsorption and removal efficiency by granular activated carbon used in drinking water treatment process. Science of the Total Environment, 791, Article 148175. https://doi.org/10.1016/j.scitotenv.2021.148175
Rodríguez-Barroso, R., Cruceira, A., Coello, M. D., Quiroga, J. M., & Egea-Corbacho, A. (2025). Microplastics in drinking water: Efficiency of treatment and distribution of a drinking water cycle. Cleaner Engineering and Technology, 26, Article 100972. https://doi.org/10.1016/j.clet.2025.100972
Seifi, Z., Zarei, F., & Ahmadi, F. (2025). The effect of an educational intervention based on a mobile application on women’s knowledge, attitudes, and practices with respect to microplastics and health: A randomized controlled trial. BMC Public Health, 25, Article 1762. https://doi.org/10.1186/s12889-025-23019-1
Sekar, V., Shaji, S., & Sundaram, B. (2024). Microplastic prevalence and human exposure in bottled drinking water in the West Godavari region of Andhra Pradesh, India. Journal of Contaminant Hydrology, 264, Article 104346. https://doi.org/10.1016/j.jconhyd.2024.104346
Sharma, S., Sharma, P., Bala, N., Sharma, A., Sharma, M., Atri, P., Kaur, K., Kaur, H., Nagpal, A. K., Bahel, S., & Katnoria, J. K. (2024). Microplastics in soil and water: Unveiling environmental risks and implications. Advances in Food Security and Sustainability, 9, 75–101. Elsevier. https://doi.org/10.1016/bs.af2s.2024.07.007
Stephens, S. (2024). Commission issues methodology to measure microplastics in drinking water. AgencyIQ by POLITICO. https://www.agencyiq.com/blog/commission-issues-methodology-to-measure-microplastics-in-drinking-water/
U.S. EPA. (n.d.). Drinking water contaminant candidate list (CCL) and regulatory determination. EPA. https://www.epa.gov/ccl
U.S. EPA, O. (2022). Microplastics research. EPA. https://www.epa.gov/water-research/microplastics-research
Weber, F., Kerpen, J., Wolff, S., Langer, R., & Eschweiler, V. (2021). Investigation of microplastics contamination in drinking water of a German city. Science of the Total Environment, 755(2). https://doi.org/10.1016/j.scitotenv.2020.143421
WHO. (2019). Microplastics in drinking-water. World Health Organization. https://www.who.int/publications/i/item/9789241516198
Wikipedia contributors. (2025). Safe Drinking Water Act. Wikipedia. https://en.wikipedia.org/w/index.php?title=Safe_Drinking_Water_Act&oldid=1326993965
Wikipedia contributors. (n.d.). Microplastics. Wikipedia. https://en.wikipedia.org/w/index.php?title=Microplastics&oldid=1340636142
Yadav, P., Kumar, A., Ram, K., Kumar, A., Gupta, R. K., & Dufossé, L. (2025). Microbial degradation of microplastics: Effectiveness, challenges, and sustainable solutions. Current Research in Microbial Sciences, 9, Article 100495. https://doi.org/10.1016/j.crmicr.2025.100495
Yang, L., Kang, S., Luo, X., & Wang, Z. (2024). Microplastics in drinking water: A review on methods, occurrence, sources, and potential risks assessment. Environmental Pollution, 348, Article 123857. https://doi.org/10.1016/j.envpol.2024.123857
Yarahmadi, A., Heidari, S., Sepahvand, P., Afkhami, H., & Kheradjoo, H. (2024). Microplastics and environmental effects: Investigating the effects of microplastics on aquatic habitats and their impact on human health. Frontiers in Public Health, 12, Article 1411389. https://doi.org/10.3389/fpubh.2024.1411389
Downloads
Published
How to Cite
Issue
Section
Citation Check
License
Copyright (c) 2026 Felix Donkor, Gifty Dudzilah, Ogonna Kizzito Agbahiwe, Buabeng Victoria Fosua, Mariam Iyabo Adeoba

This work is licensed under a Creative Commons Attribution 4.0 International License.














