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Identification of micro-/nanoplastics in human placental blood using comprehensive multidimensional pyrolysis - gas chromatography x ion mobility mass spectrometry

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

Background: Micro-/nanoplastics (MNPs) are ubiquitous environmental contaminants and there has been a growing concern about their potential adverse effects on human health. The present study reports on the development of a novel pyrolysis-gas chromatography x ion mobility mass spectrometry method to identify MNPs in placental blood, while reducing false positive detections from matrix interferences. Results: Base digestion and filtration yielded acceptable recoveries: 90 ± 11 % for polystyrene (PS), 93 ± 16 % for polyethylene (PE), and 53 ± 18 % for polypropylene (PP). Limit of Detections (LODs) ranged from 0.15 to 0.60 μg/mL, depending on the polymer. Placental blood samples were collected from 46 donors and analyzed in triplicate, resulting in measurements for 138 samples. Forty-three samples contained at least one polymer type above the limit of detection, and 10 samples contained at least one polymer type above the limit of quantification. Total plastic concentration in samples with detectable levels (>LOD) of MNPs averaged 0.9 μg/mL and ranged between 0.2 and 3.6 μg/mL. Orthogonal separation by ion mobility revealed that 10/22 PE detections were false positives. Significance: This study is the first to integrate ion mobility separation to differentiate between genuine and false detection of PE in human blood. Without the aid of ion mobility separation, the concentration of PE in individual samples was overestimated by up to 233 % of the mean MNP concentration, underlining the importance of multidimensional separation for individual exposure analysis.

Original languageEnglish
Article number344606
Pages (from-to)1-10
Number of pages10
JournalAnalytica Chimica Acta
Volume1376
Early online date4 Sept 2025
DOIs
Publication statusPublished - 22 Nov 2025

Bibliographical note

Publisher Copyright:
© 2025 The Authors

Funding

This research was funded by the Canada Foundation for Innovation ( CFI ), the Natural Sciences and Engineering Research Council ( NSERC ), the Government of Canada's New Frontiers in Research Fund, and Health Canada . The views expressed herein do not necessarily represent the views of Health Canada. JRB is grateful for a Janeway Foundation research grant. KJJ, JRB and NEH gratefully acknowledge M.J.M Van Velzen and Marthinus Brits for their kind support, encouragement and valuable discussions.

Funders
Government of Canada's New Frontiers in Research Fund
Canada Foundation for Innovation
Natural Sciences and Engineering Research Council of Canada
Janeway Children's Hospital Foundation
Health Canada

    Keywords

    • Ion mobility-mass spectrometry
    • Microplastics
    • Multidimensional separation
    • Nanoplastics
    • Pyrolysis gas chromatography

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