Bioaccumulation of microplastics in decedent human brains

Биоаккумуляция микропластика в головном мозге умерших людей
Natalie L. Adolphi, Andrew B. West, Rama R. Gullapalli, Matthew J. Campen, Eliseo F. Castillo, Heather Jarrell, M. Spilde, Alexander Nihart, Marcus A. Garcia, Eliane El Hayek, Rui Liu, Marian Olewine, Josiah D. Kingston, Tamara Howard, Barry E. Bleske, Justin Scott, Jorge González-Estrella, Jessica Gross, Daniel F. Gallego, Gabrielle Dvorscak, Maria E. Zuluaga-Ruiz
2025-02-03

dementiahuman brain tissuemicroplastic bioaccumulationpolyethylene nanoparticlespyrolysis gas chromatography-mass spectrometry
Rising global concentrations of environmental microplastics and nanoplastics (MNPs) drive concerns for human exposure and health outcomes. Complementary methods for the robust detection of tissue MNPs, including pyrolysis gas chromatography-mass spectrometry, attenuated total reflectance-Fourier transform infrared spectroscopy and electron microscopy with energy-dispersive spectroscopy, confirm the presence of MNPs in human kidney, liver and brain. MNPs in these organs primarily consist of polyethylene, with lesser but significant concentrations of other polymers. Brain tissues harbor higher proportions of polyethylene compared to the composition of the plastics in liver or kidney, and electron microscopy verified the nature of the isolated brain MNPs, which present largely as nanoscale shard-like fragments. Plastic concentrations in these decedent tissues were not influenced by age, sex, race/ethnicity or cause of death; the time of death (2016 versus 2024) was a significant factor, with increasing MNP concentrations over time in both liver and brain samples (P = 0.01). Finally, even greater accumulation of MNPs was observed in a cohort of decedent brains with documented dementia diagnosis, with notable deposition in cerebrovascular walls and immune cells. These results highlight a critical need to better understand the routes of exposure, uptake and clearance pathways and potential health consequences of plastics in human tissues, particularly in the brain.
1
Brain microplastics and nanoplastics were largely nanoscale, shard-like fragments verified by electron microscopy with energy-dispersive spectroscopy.
2
Decedent brains with documented dementia showed greater plastic accumulation, including notable deposition in cerebrovascular walls and immune cells.
3
Multiple complementary analytical methods confirmed microplastic and nanoplastic particles in human kidney, liver, and brain tissues.
4
Particles predominantly consisted of polyethylene, with brain tissue containing a higher polyethylene proportion than liver or kidney tissue.
5
Tissue plastic concentrations were unrelated to age, sex, race/ethnicity, or cause of death, but increased significantly between 2016 and 2024 in liver and brain samples (P = 0.01).

Microplastics and nanoplastics accumulated in decedent human brain tissue

The composition, concentration, nanoscale morphology, temporal accumulation, and dementia-associated deposition of brain microplastics and nanoplastics

Publication Details
Publication Date
2025-02-03
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Authors
Natalie L. Adolphi
Andrew B. West
Rama R. Gullapalli
Matthew J. Campen
Eliseo F. Castillo
Heather Jarrell
M. Spilde
Alexander Nihart
Marcus A. Garcia
Eliane El Hayek
Rui Liu
Marian Olewine
Josiah D. Kingston
Tamara Howard
Barry E. Bleske
Justin Scott
Jorge González-Estrella
Jessica Gross
Daniel F. Gallego
Gabrielle Dvorscak
Maria E. Zuluaga-Ruiz
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