Ingested Polystyrene Nanospheres Translocate to Placenta and Fetal Tissues in Pregnant Rats: Potential Health Implications

Author:

Cary Chelsea M.12ORCID,DeLoid Glen M.1,Yang Zhenning12,Bitounis Dimitrios13ORCID,Polunas Marianne4,Goedken Michael J.4,Buckley Brian1,Cheatham Byron5,Stapleton Phoebe A.12,Demokritou Philip13ORCID

Affiliation:

1. Nanoscience and Advanced Materials Center, Environmental and Occupational Health Sciences Institute (EOHSI), School of Public Health, Rutgers University, Piscataway, NJ 08854, USA

2. Ernest Mario School of Pharmacy, Rutgers University, Piscataway, NJ 08854, USA

3. Center for Nanotechnology and Nanotoxicology, Department of Environmental Health, Harvard T. H. Chan School of Public Health, Boston, MA 02115, USA

4. Research Pathology Services, Rutgers University, Piscataway, NJ 08854, USA

5. CytoViva, Inc., Auburn, AL 36832, USA

Abstract

Recent studies in experimental animals found that oral exposure to micro- and nano-plastics (MNPs) during pregnancy had multiple adverse effects on outcomes and progeny, although no study has yet identified the translocation of ingested MNPs to the placenta or fetal tissues, which might account for those effects. We therefore assessed the placental and fetal translocation of ingested nanoscale polystyrene MNPs in pregnant rats. Sprague Dawley rats (N = 5) were gavaged on gestational day 19 with 10 mL/kg of 250 µg/mL 25 nm carboxylated polystyrene spheres (PS25C) and sacrificed after 24 h. Hyperspectral imaging of harvested placental and fetal tissues identified abundant PS25C within the placenta and in all fetal tissues examined, including liver, kidney, heart, lung and brain, where they appeared in 10–25 µm clusters. These findings demonstrate that ingested nanoscale polystyrene MNPs can breach the intestinal barrier and subsequently the maternal–fetal barrier of the placenta to access the fetal circulation and all fetal tissues. Further studies are needed to assess the mechanisms of MNP translocation across the intestinal and placental barriers, the effects of MNP polymer, size and other physicochemical properties on translocation, as well as the potential adverse effects of MNP translocation on the developing fetus.

Funder

Nanotechnology Health Implications Research

National Institute of Environmental Health Sciences of the National Institutes of Health

Rutgers NIEHS Center for Environmental Exposure and Diseases

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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