THE IMPACT OF MICROPLASTICS ON MALE FERTILITY

Authors

DOI:

https://doi.org/10.31435/ijitss.1(49).2026.4663

Keywords:

Microplastics, Male Fertility, Spermatogenesis, Environmental Exposure, Endocrine Disruption, Sperm Quality

Abstract

Male infertility represents a growing global health concern, accounting for more than half of all infertility cases, while its environmental determinants remain insufficiently explored. Over recent decades, a marked decline in semen quality has coincided with the rapid expansion of plastic production and the widespread presence of microplastics and nanoplastics in the environment. This narrative review aims to synthesize current evidence on the impact of micro- and nanoplastic exposure on the male reproductive system, identify key mechanisms of reproductive toxicity, and highlight gaps requiring further investigation. A comprehensive literature search was conducted using PubMed, Scopus, Web of Science, and Google Scholar, focusing on experimental, epidemiological, and review studies addressing microplastics, male fertility, and reproductive toxicity. Available data indicate that microplastics can accumulate in testicular tissue and adversely affect spermatogenesis through multiple pathways, including disruption of the blood–testis barrier, oxidative stress, chronic inflammation, endocrine dysregulation, and structural damage to Sertoli and Leydig cells. These alterations are consistently associated with impaired sperm concentration, motility, morphology, and hormonal balance in experimental models. Although human data remain limited, emerging evidence suggests that lifelong, low-dose exposure may contribute to declining male reproductive potential. The review also discusses preventive strategies and emerging therapeutic approaches aimed at mitigating microplastic-induced reproductive damage. Collectively, current findings support microplastics as a relevant and potentially modifiable environmental risk factor for male infertility.

References

An, L., Liu, Q., Deng, Y., Wu, W., Gao, Y., & Ling, W. (2020). Sources of microplastic in the environment. In Sources of microplastic in the environment (pp. 143–159). Springer. https://doi.org/10.1007/698_2020_449

Andrady, A. L. (2011). Microplastics in the marine environment. Marine Pollution Bulletin, 62(8), 1596–1605. https://doi.org/10.1016/j.marpolbul.2011.05.030

Boctor, J., Hoyle, F. C., Farag, M. A., Ebaid, M., Walsh, T., Whiteley, A. S., & Murphy, D. V. (2025). Microplastics and nanoplastics: Fate, transport, and governance from agricultural soil to food webs and humans. Environmental Sciences Europe, 37(1), Article 68. https://doi.org/10.1186/s12302-025-01104-x

Browne, M. A., Crump, P., Niven, S. J., Teuten, E., Tonkin, A., Galloway, T., & Thompson, R. (2011). Accumulation of microplastic on shorelines worldwide: Sources and sinks. Environmental Science & Technology, 45(21), 9175–9179. https://doi.org/10.1021/es201811s

Catarino, A. I., Macchia, V., Sanderson, W. G., Thompson, R. C., & Henry, T. B. (2018). Low levels of microplastics (MP) in wild mussels indicate that MP ingestion by humans is minimal compared to exposure via household fibres fallout during a meal. Environmental Pollution, 237, 675–684. https://doi.org/10.1016/j.envpol.2018.02.069

Doroftei, B., Savuca, A., Cretu, A.-M., Maftei, R., Anton, N., Ilea, C., Doroftei, M., & Puha, B. (2025). Microplastics and human fertility: A comprehensive review of their presence in human samples and reproductive implication. Ecotoxicology and Environmental Safety, 303, Article 118939. https://doi.org/10.1016/j.ecoenv.2025.118939

Gan, S., Zhou, S., Zhou, J., Zhang, G., Chen, J., Liu, R., Sun, K., Li, S., Xiong, W., Wen, Y., Sheng, J., Zhang, Y., Ren, J., Li, Y., Huang, H., & Zhang, C. (2025). Therapeutic repair of sperm quality decline caused by polytetrafluoroethylene. Advanced Science, 12(38). https://doi.org/10.1002/ADVS.202505148

Hahladakis, J. N., Velis, C. A., Weber, R., Iacovidou, E., & Purnell, P. (2018). An overview of chemical additives present in plastics: Migration, release, fate and environmental impact during their use, disposal and recycling. Journal of Hazardous Materials, 344, 179–199. https://doi.org/10.1016/j.jhazmat.2017.10.014

Hartmann, N. B., Hüffer, T., Thompson, R. C., Hassellöv, M., Verschoor, A., Daugaard, A. E., Rist, S., Karlsson, T., Brennholt, N., Cole, M., Herrling, M. P., Hess, M. C., Ivleva, N. P., Lusher, A. L., & Wagner, M. (2019). Are we speaking the same language? Recommendations for a definition and categorization framework for plastic debris. Environmental Science & Technology, 53(3), 1039–1047. https://doi.org/10.1021/acs.est.8b05297

Hwang, Y. Y., Sudirman, S., Hsu, Y. C., Chen, C. C., Kong, F., Hwang, D. F., & Kong, Z. L. (2025). Lactobacillus brevis GKJOY supplementation ameliorates oxidative stress and reproductive dysfunction in male rats with polystyrene microplastics-induced reproductive toxicity. International Journal of Molecular Sciences, 26(10). https://doi.org/10.3390/IJMS26104533

Inhorn, M. C., & Patrizio, P. (2015). Infertility around the globe: New thinking on gender, reproductive technologies and global movements in the 21st century. Human Reproduction Update, 21(4), 411–426. https://doi.org/10.1093/HUMUPD/DMV016

Jahedi, F., & Jaafarzadeh Haghighi Fard, N. (2025). Micro- and nanoplastic toxicity in humans: Exposure pathways, cellular effects, and mitigation strategies. Toxicology Reports, 14. https://doi.org/10.1016/j.toxrep.2025.102043

Jeon, B. J., Ko, Y. J., Cha, J. J., Kim, C., Seo, M. Y., Lee, S. H., Park, J. Y., Bae, J. H., & Tae, B. S. (2024). Examining the relationship between polystyrene microplastics and male fertility: Insights from an in vivo study and in vitro Sertoli cell culture. Journal of Korean Medical Science, 39(38). https://doi.org/10.3346/jkms.2024.39.e259

Lamoree, M. H., van Boxel, J., Nardella, F., Houthuijs, K. J., Brandsma, S. H., Béen, F., & van Duursen, M. B. M. (2025). Health impacts of microplastic and nanoplastic exposure. Nature Medicine, 31(9), 2873–2887. https://doi.org/10.1038/s41591-025-03902-5

Marcelino, R. C., Cardoso, R. M., Domingues, E. L. B. C., Gonçalves, R. V., Lima, G. D. A., & Novaes, R. D. (2022). The emerging risk of microplastics and nanoplastics on the microstructure and function of reproductive organs in mammals: A systematic review of preclinical evidence. Life Sciences, 295, Article 120404. https://doi.org/10.1016/j.lfs.2022.120404

Organisation for Economic Co-operation and Development. (2024). Policy scenarios for eliminating plastic pollution by 2040. https://doi.org/10.1787/76400890-EN

Prata, J. C., da Costa, J. P., Lopes, I., Duarte, A. C., & Rocha-Santos, T. (2020). Environmental exposure to microplastics: An overview on possible human health effects. Science of the Total Environment, 702, Article 134455. https://doi.org/10.1016/j.scitotenv.2019.134455

Rani, A. (2024). Types and sources of microplastics: The ubiquitous environment contaminant: A review. Journal of Polymer Materials, 39(1–2), 17–35. https://doi.org/10.32381/JPM.2022.39.1-2.2

Rist, S., Carney Almroth, B., Hartmann, N. B., & Karlsson, T. M. (2018). A critical perspective on early communications concerning human health aspects of microplastics. Science of the Total Environment, 626, 720–726. https://doi.org/10.1016/j.scitotenv.2018.01.092

Rochman, C. M., Hentschel, B. T., & Teh, S. J. (2014). Long-term sorption of metals is similar among plastic types: Implications for plastic debris in aquatic environments. PLoS ONE, 9(1), e85433. https://doi.org/10.1371/journal.pone.0085433

Tang, K. H. D. (2025). Counteracting the harms of microplastics on humans: An overview from the perspective of exposure. Microplastics, 4(3), Article 47. https://doi.org/10.3390/MICROPLASTICS4030047

Vasse, G. F., & Melgert, B. N. (2024). Microplastic and plastic pollution: Impact on respiratory disease and health. European Respiratory Review, 33(172), 230226. https://doi.org/10.1183/16000617.0226-2023

Volsa, A. M., Iacono, E., & Merlo, B. (2025). Micro-nanoplastics pollution and mammalian fertility: A systematic review and meta-analysis. Theriogenology, 238. https://doi.org/10.1016/J.THERIOGENOLOGY.2025.117369

World Health Organization. (1999). WHO laboratory manual for the examination of human semen and sperm-cervical mucus interaction (4th ed.). https://books.google.com/books?hl=pl&lr=&id=dEfWhZZcC0AC&oi=fnd&pg=PR8&ots=elgN49bcZR&sig=zZT6ar7myo53M4k-VkMXkzvpRz8

World Health Organization. (2021). WHO laboratory manual for the examination and processing of human semen (6th ed.). https://pesquisa.bvsalud.org/portal/resource/pt/who-343208

Zenclussen, L., Alex, S. A., George, N. K., Guardiola, J., & Clegg, D. (2025). The threat of micro-/nanoplastics to male fertility: A review of the data and the importance of future research. International Journal of Molecular Sciences. https://doi.org/10.3390/ijms262311457

Zhang, C., Zhang, G., Sun, K., Ren, J., Zhou, J., Liu, X., Lin, F., Yang, H., Cao, J., Nie, L., Zhang, P., Zhang, L., Wang, Z., Guo, H., Lin, X., Duan, S., Cao, J., & Huang, H. (2024). Association of mixed exposure to microplastics with sperm dysfunction: A multi-site study in China. EBioMedicine, 108. https://doi.org/10.1016/j.ebiom.2024.105369

Zhao, T., Shen, L., Ye, X., Bai, G., Liao, C., Chen, Z., Peng, T., Li, X., Kang, X., & An, G. (2023). Prenatal and postnatal exposure to polystyrene microplastics induces testis developmental disorder and affects male fertility in mice. Journal of Hazardous Materials, 445. https://doi.org/10.1016/j.jhazmat.2022.130544

Downloads

Published

2026-03-30

How to Cite

Melania Czapla, Kacper Szada-Borzyszkowski, Konstancja Owczarenko, Bartosz Wróbel, Lena Wójcik, Krzysztof Gadzalski, & Michał Filipski. (2026). THE IMPACT OF MICROPLASTICS ON MALE FERTILITY. International Journal of Innovative Technologies in Social Science, 2(1(49). https://doi.org/10.31435/ijitss.1(49).2026.4663