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Environmentally Relevant Polylactic Acid Microplastics from 3D Printing Induce Germline Apoptosis and Reproductive Decline in Caenorhabditis elegans

Maldonado, C. A. O.; Farley, D.; Mares, D. M.; Rutledge, R. J.; Gamez, M. F.; Sosa, L. R.; Palacios, V.; Gutierrez, A.; Peterson, R. L.; Harr, J. C.

2026-07-28 pharmacology and toxicology
10.64898/2026.07.24.740412 bioRxiv
Show abstract

Bio-based plastics, such as polylactic acid, offer an alternative to petroleum-based plastics and a prospect to address the plastic pollution problem. While mounting evidence suggests that microplastics pose a human health threat, the risk posed by bio-based plastics remains unknown. Here, we use Caenorhabditis elegans to investigate the effects of secondary microplastics from 3D-printed polylactic acid on fertility and lifespan. We have created and characterized microplastics from a 3D-printed item using cryogenic milling. Using these microplastics, we exposed C. elegans and assessed lifespan, reproduction, and various stress responses. Our studies demonstrate that exposure to 1 {micro}g/L polylactic acid microplastics reduces fertility and alters the gonad structure. When examining germline integrity, we find chromosomal disorganization in the gonad after polylactic acid microplastic exposure and increased apoptotic cell death, which correlates with a DAF-16/FOXO and gst-4 oxidative stress responses. While lifespan has been observed to decrease with exposure to microplastics of different polymer types, we did not observe a change in lifespan with exposure to polylactic acid microplastics. The germline is likely more sensitive than somatic tissues under our exposure conditions. The reduction in fertility is driven by alterations to the germline, characterized by chromosome aberrations, oxidative stress, and cell death.

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