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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.
Abstract:
Human exposure to micro- and nanoplastics (MNPs) is increasingly relevant to clinical toxicology, but the field is not yet ready for routine patient-level testing. This narrative review evaluates MNPs as emerging clinical analytes from the perspective of diagnostic laboratory medicine. The central question is how laboratories can measure, interpret and act on toxicological information in human specimens without overstating immature evidence. Current studies have reported MNP-related signals in blood, urine, placenta, breast milk, lung tissue, vascular plaques and other tissues, yet comparisons are constrained by inconsistent definitions, heterogeneous matrices, variable sample preparation, incomplete contamination control, method-dependent reporting units and limited outcome-linked data. Particle-based methods such as micro-Fourier-transform infrared and Raman spectroscopy preserve size and morphology information but have practical detection limits and throughput constraints. Mass-based approaches such as pyrolysis-gas chromatography/mass spectrometry quantify polymer mass but can lose particle-level information and may be vulnerable to matrix interferences. Clinical laboratories should therefore treat MNP measurement as a high-complexity analytical problem requiring matrix-matched validation, procedural and field blanks, uncertainty estimates, orthogonal confirmation for consequential claims, and conservative interpretive comments. At present, MNP testing is best suited to research biomonitoring, occupational and public-health surveillance, exposure-source investigations and translational cohorts linking particle measurements to validated effect biomarkers. The review proposes reporting tiers, readiness levels and a laboratory roadmap to convert uncertain exposure signals into reproducible, interpretable and clinically responsible toxicological information.
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.
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