TY - JOUR
T1 - Attribute-Driven Maternal–Fetal Transfer of Atmospheric Magnetite Nanoparticles Revealed by Single-Particle Analysis
AU - Wang, Mengyuan
AU - Tian, Li
AU - Lv, Jianong
AU - Xu, Miao
AU - Jin, Siyu
AU - Guo, Xingpan
AU - Zhan, Guangming
AU - Liu, Zhiru
AU - Zhang, Kexin
AU - Duan, Junchao
AU - Yang, Yi
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/6/30
Y1 - 2026/6/30
N2 - Atmospheric magnetite nanoparticles (MNPs) are an important yet understudied component of PM2.5, with potentially significant systemic and developmental health impacts. Here, using a whole-body inhalation model in pregnant C57BL/6 mice, we investigated the biodistribution and maternal–fetal transfer of atmospheric MNPs. Following gestational exposure, MNPs were magnetically extracted from maternal and fetal organs and characterized by high-resolution TEM and single-particle mass spectrometry. Exogenous MNPs in multiple maternal and fetal organs were investigated by TEM. Quantitative analysis revealed pronounced accumulation of MNPs in maternal serum, liver, spleen, placenta, and lung, accounting for 93% of the total burden. Approximately 0.7% of MNPs were transferred from the maternal compartment to the fetus, with over 60% of these transferred particles retained in the fetal liver. Single-particle analysis demonstrated selective enrichment of fine-sized MNP subcategories, enriched with potentially toxic metals (especially Zn and Pb), in fetal organs (like heart and brain). Multimodal network analysis further identified particle size and elemental composition as key determinants governing systemic transport and placental transfer. Our results demonstrate that inhaled atmospheric MNPs cross the placental barrier and accumulate in fetal organs, underscoring their contribution to early life exposure risks and the need for particle-specific air quality standards.
AB - Atmospheric magnetite nanoparticles (MNPs) are an important yet understudied component of PM2.5, with potentially significant systemic and developmental health impacts. Here, using a whole-body inhalation model in pregnant C57BL/6 mice, we investigated the biodistribution and maternal–fetal transfer of atmospheric MNPs. Following gestational exposure, MNPs were magnetically extracted from maternal and fetal organs and characterized by high-resolution TEM and single-particle mass spectrometry. Exogenous MNPs in multiple maternal and fetal organs were investigated by TEM. Quantitative analysis revealed pronounced accumulation of MNPs in maternal serum, liver, spleen, placenta, and lung, accounting for 93% of the total burden. Approximately 0.7% of MNPs were transferred from the maternal compartment to the fetus, with over 60% of these transferred particles retained in the fetal liver. Single-particle analysis demonstrated selective enrichment of fine-sized MNP subcategories, enriched with potentially toxic metals (especially Zn and Pb), in fetal organs (like heart and brain). Multimodal network analysis further identified particle size and elemental composition as key determinants governing systemic transport and placental transfer. Our results demonstrate that inhaled atmospheric MNPs cross the placental barrier and accumulate in fetal organs, underscoring their contribution to early life exposure risks and the need for particle-specific air quality standards.
KW - PM
KW - biological barrier
KW - internal exposure
KW - magnetite nanoparticle
KW - maternal−fetal transfer
KW - single-particle
UR - https://www.scopus.com/pages/publications/105043506049
U2 - 10.1021/acs.est.6c02876
DO - 10.1021/acs.est.6c02876
M3 - 文章
C2 - 42308441
AN - SCOPUS:105043506049
SN - 0013-936X
VL - 60
SP - 17972
EP - 17984
JO - Environmental Science and Technology
JF - Environmental Science and Technology
IS - 25
ER -