Micro- and nanoplastics as emerging clinical analytes: analytical validation, interpretive uncertainty, and

Esther Ugo Alum1, Daniel Ejim Uti2

  • 1Department of Research and Publications, Kampala International University, P. O. Box 20000, Kampala, Uganda; Department of Biochemistry, Faculty of Science, Ebonyi State University, Abakaliki, Ebonyi State, Nigeria.

Insights

Human exposure to micro- and nanoplastics (MNPs) is a growing concern. Current laboratory methods for detecting MNPs in patients are not yet reliable for routine clinical testing due to significant analytical challenges.

Area of Science:

  • Clinical toxicology
  • Diagnostic laboratory medicine
  • Environmental health

Background:

  • Human exposure to micro- and nanoplastics (MNPs) is a significant concern in clinical toxicology.
  • Existing studies report MNP detection in various human tissues and biofluids, but data are inconsistent.
  • The diagnostic laboratory medicine field faces challenges in reliably measuring and interpreting MNP toxicological data.

Purpose of the Study:

  • To evaluate micro- and nanoplastics (MNPs) as emerging clinical analytes.
  • To assess the readiness of laboratory medicine for MNP testing.
  • To guide laboratories in measuring, interpreting, and acting on MNP toxicological information responsibly.

Main Methods:

  • Narrative review of current literature on MNP detection in human specimens.
  • Analysis of particle-based (e.g., spectroscopy) and mass-based (e.g., pyrolysis-GC/MS) analytical methods.
  • Evaluation of challenges including matrix heterogeneity, contamination control, and data interpretation.

Main Results:

  • Significant inconsistencies exist in MNP detection methods, definitions, and reporting across studies.
  • Particle-based methods retain morphological data but have detection and throughput limits.
  • Mass-based methods quantify polymer mass but may lose particle information and face matrix interferences.

Conclusions:

  • MNP measurement is a high-complexity analytical problem requiring rigorous validation and conservative interpretation.
  • Current MNP testing is best suited for research, biomonitoring, and public health surveillance.
  • A laboratory roadmap is proposed to improve reproducibility, interpretability, and clinical responsibility in MNP toxicology.