The Effect of Oral Polyethylene Microplastic Doses on Femoral Bone Cell Profiles in Wistar Rats

Authors

  • Nixon Adrian Wijaya Mahasiswa Fakultas Kedokteran Universitas Katolik Widya Mandala
  • Yudhiakuari Sincihu Universitas Katolik Widya Mandala Surabaya
  • Henry Ricardo Handoyo Universitas Katolik Widya Mandala Surabaya
  • Taufin Warindra Universitas Katolik Widya Mandala Surabaya
  • Inge Wattimena Universitas Katolik Widya Mandala Surabaya

DOI:

https://doi.org/10.58954/epj.v6i2.440

Keywords:

polyethylene, osteocyte, osteoblast, osteoclast, femur

Abstract

Microplastics pose a potential health risk because they can enter the body orally and accumulate in various organs, including bone, potentially disrupting bone homeostasis through oxidative stress and inflammation. This study aimed to analyze the effect of oral polyethylene microplastic exposure on the femoral bone cell profile of Wistar strain Rattus norvegicus. A laboratory experimental study with a post-test only control group design was conducted using 28 male Wistar rats divided into four groups: control (X0) and treatment groups receiving LDPE microplastics (≤20 µm) at doses of 1.25 mg/day (X1), 2.5 mg/day (X2), and 5 mg/day (X3) for 28 days. Femoral bones were examined histologically using HE staining, and osteocytes, osteoblasts, and osteoclasts were counted. Results showed a significant increase in osteocyte and osteoclast numbers in treatment groups (p=0.002), while osteoblast numbers were not significantly different (p=0.655). Increased osteoclasts indicate enhanced bone resorption that may impair bone homeostasis.

References

Al-Bari, A. A., & Mamun, A. Al. (2020). Current advances in regulation of bone homeostasis. In FASEB BioAdvances (Vol. 2, Issue 11, pp. 668–679). Blackwell Publishing Ltd. https://doi.org/10.1096/fba.2020-00058

Anasulfalah, H., Verasita, P., Widiyanto, A., & Atmojo, J. T. (2023). Smoking Behavior and the Incident of Osteoporosis in the Elderly: Meta-Analysis. Indonesian Journal of Global Health Research, 5(4), 735–742. https://doi.org/10.37287/ijghr.v5i4.2426

Campanale, C., Massarelli, C., Savino, I., Locaputo, V., & Uricchio, V. F. (2020). A Detailed Review Study on Potential Effects of Microplastics and Additives of Concern on Human Health. International Journal of Environmental Research and Public Health, 17(4), 1212. https://pmc.ncbi.nlm.nih.gov/articles/PMC7068600/

Clynes, M. A., Harvey, N. C., Curtis, E. M., Fuggle, N. R., Dennison, E. M., & Cooper, C. (2020). The epidemiology of osteoporosis. In British Medical Bulletin (Vol. 133, Issue 1, pp. 105–117). Oxford University Press. https://doi.org/10.1093/bmb/ldaa005

Dzierżyński, E., Gawlik, P. J., Puźniak, D., Flieger, W., Jóźwik, K., Teresiński, G., Forma, A., Wdowiak, P., Baj, J., & Flieger, J. (2024). Microplastics in the Human Body: Exposure, Detection, and Risk of Carcinogenesis: A State-of-the-Art Review. Cancers, 16(21), 1–55. https://doi.org/10.3390/cancers16213703

Fusagawa, H., Youn, A., Wilkerson, E., Pandya, N., & Feeley, B. T. (2025). The Effects of Microplastics on Musculoskeletal Disorder; A Narrative Review. In Current Reviews in Musculoskeletal Medicine (Vol. 18, Issue 2, pp. 39–47). Springer. https://doi.org/10.1007/s12178-024-09932-9

Gartner, L. P., & Hiatt, J. L. (2007). Color textbook of histology. Saunders/Elsevier.

Giannandrea, D., Parolini, M., Citro, V., Felice, B. De, Pezzotta, A., Abazari, N., Platonova, N., Sugni, M., Chiu, M., Villa, A., Lesma, E., Chiaramonte, R., & Casati, L. (2024). Nanoplastic impact on bone microenvironment: A snapshot from murine bone cells. Journal of Hazardous Materials, 462. https://doi.org/10.1016/j.jhazmat.2023.132717

Kaur, M., Sharma, A., John, P., & Bhatnagar, P. (2023). Manifestation of polystyrene microplastic accumulation in tissues of vital organs including brain with histological and behaviour analysis on Swiss albino mice. https://doi.org/10.21203/rs.3.rs-3073756/v1

Liu, Y., Li, X., & Xiong, Y. (2024). Chronic Polystyrene Microplastic Exposure Reduces Testosterone Levels in Mice through Mitochondrial Oxidative Stress and BAX/BCL2-Mediated Apoptosis. Toxics, 12(8). https://doi.org/10.3390/toxics12080561

Pan, C., Wu, Y., Hu, S., Li, K., Liu, X., Shi, Y., Lin, W., Wang, X., Shi, Y., Xu, Z., Wang, H., & Chen, H. (2023). Polystyrene microplastics arrest skeletal growth in puberty through accelerating osteoblast senescence. Environmental Pollution, 322. https://doi.org/10.1016/j.envpol.2023.121217

Pilapitiya, P. G. C. N. T., & Ratnayake, A. S. (2024). The world of plastic waste: A review. In Cleaner Materials (Vol. 11). Elsevier Ltd. https://doi.org/10.1016/j.clema.2024.100220

Prasetya, R. N., Suarnadwipa, I. N., & Murti, M. R. (2024). Uji Karakteristik Bahan Bakar Hasil Pirolisis Sampah Plastik Berjenis Low Density Polyethylene (LDPE) dengan Memvariasikan Laju Volume Air Pendingin pada Kondensor. Jurnal Ilmiah Teknik Desain Mekanika, 13(4), 396–401. https://rekayasamesin.ub.ac.id/index.php/rm/article/download/1561/834

Putro, P. W., & Priyambodo, S. (2009). Preferensi Tikus Riul, Rattus novergicus pada Berbagai Variasi Pengolahan Pakan dan Uji Rodentisida. Seminar Nasional Perlindungan Tanaman.

Sibilia, V., Bottai, D., Maggi, R., Pagani, F., Chiaramonte, R., Giannandrea, D., Citro, V., Platonova, N., & Casati, L. (2021). Sex steroid regulation of oxidative stress in bone cells: An in vitro study. International Journal of Environmental Research and Public Health, 18(22). https://doi.org/10.3390/ijerph182212168

Sun, R., Xu, K., Yu, L., Pu, Y., Xiong, F., He, Y., Huang, Q., Tang, M., Chen, M., Yin, L., Zhang, J., & Pu, Y. (2021). Preliminary study on impacts of polystyrene microplastics on the hematological system and gene expression in bone marrow cells of mice. Ecotoxicology and Environmental Safety, 218. https://doi.org/10.1016/j.ecoenv.2021.112296

Supit, A., Tompodung, L., & Kumaat, S. (2022). Mikroplastik sebagai Kontaminan Anyar dan Efek Toksiknya terhadap Kesehatan Microplastic as an Emerging Contaminant and its Toxic Effects on Health. Jurnal Kesehatan, 13, 199–208.

Turner, P. V. (2013). Rodent and Rabbit Welfare in the Research Environment. In Laboratory Animal Welfare (pp. 171–196). Elsevier Inc. https://doi.org/10.1016/B978-0-12-385103-1.00012-9

Zhang, Y. W., Zhou, D. Y., Wang, S. C., Zhou, F. J., Wang, G. C., & Su, J. C. (2024). Bridging relevance between microplastics, human health and bone metabolism: Emerging threats and research directions. In Environmental Chemistry and Ecotoxicology (Vol. 6, pp. 422–435). KeAi Communications Co. https://doi.org/10.1016/j.enceco.2024.08.006

Zhao, X., & You, F. (2024). Microplastic Human Dietary Uptake from 1990 to 2018 Grew across 109 Major Developing and Industrialized Countries but Can Be Halved by Plastic Debris Removal. Environmental Science and Technology, 58(20), 8709–8723. https://doi.org/10.1021/acs.est.4c00010

Downloads

Published

2026-07-21

How to Cite

Wijaya, N. A., Yudhiakuari Sincihu, Henry Ricardo Handoyo, Taufin Warindra, & Inge Wattimena. (2026). The Effect of Oral Polyethylene Microplastic Doses on Femoral Bone Cell Profiles in Wistar Rats. Environmental Pollution Journal, 6(2), 159–169. https://doi.org/10.58954/epj.v6i2.440

Issue

Section

Articles