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February 8, 2026Kardiologia Polska0 citationsOpen Access

Analytical techniques for detecting micro- and nanoplastics in blood and vascular tissues: Strengths and limitations

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PIPasquale IovinoAFAngelo FentiMBMarta Martı́nez Belmonte

Key Points

  • The aim is to evaluate current analytical techniques for measuring micro- and nanoplastics in cardiovascular tissues.
  • Overview of vibrational methods including μ-Fourier transform infrared spectroscopy and µ-Raman
  • Discussion of mass-based techniques like pyrolysis-gas chromatography-mass spectrometry
  • Comparison of methods focusing on polymer identification, particle counting, and mass metrics
  • Review of studies on human tissues such as atheromatous plaques and thrombi
  • Vibrational techniques identify polymers and characterize particle size and morphology.
  • Mass-based strategies quantify specific polymer burdens relevant to health outcomes.
  • Each analytical method presents unique advantages and limitations affecting data reliability.
  • Findings underscore the significance of micro- and nanoplastics in cardiovascular health.

Abstract

Micro- and nanoplastics (MNPs) are increasingly reported in human biofluids and tissues, including cardiovascular-relevant specimens, making reliable detection and quantification a prerequisite for clinically meaningful research in cardiology. However, human-derived matrices are analytically challenging because they are often available in limited amounts, rich in lipids and proteins, highly susceptible to background contamination, and subject to matrix-driven interferences that can bias polymer identification and quantification, particularly for submicron fractions. This review provides a method-focused overview of the analytical toolbox most frequently used for MNPs assessment in biologically relevant and human samples, with specific attention to cardiovascular applications. We compare particle-resolved vibrational approaches (μ-Fourier transform infrared spectroscopy, µ-Raman, and quantum cascade laser-based laser direct infrared spectroscopy) that deliver polymer identification alongside particle counts, size proxies, and morphology, and mass-based strategies (double-shot pyrolysis-gas chromatography/mass spectrometry MS and targeted depolymerization coupled to liquid chromatography-MS/MS) that provide polymer-specific mass burdens suited to exposure metrics and clinical correlations. Representative studies are discussed, including recent analyses of atheromatous plaques, coronary blood, thrombi, and other human tissue where polymer burden, morphology, and size have been investigated in relation to adverse health outcomes. Finally, we outline the main advantages and limitations of each technique, emphasizing practical factors that influence data quality and comparability across studies. By framing MNP analytics within clinically relevant cardiovascular specimens and endpoints, this review aims to critically appraise current evidence and design robust translational investigations.

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Cite This Study

Iovino et al. (2026) studied this question.

synapsesocial.com/papers/698827c90fc35cd7a8846c1ahttps://doi.org/10.33963/v.phj.111049
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Emerging Analytical Methodologies for Micro- and Nano-Plastics Detection in Human Samples: Analytical Challenges and Health Risk Perspectives2026
  2. 2Micro- and Nanoplastics as Emerging Cardiovascular Risk Factors: A Systematic Review2026
  3. 3Nano- and Microplastics in the Cardiovascular System: Current Insights and Biological Implications2026 · 1 citations
  4. 4Quantitation of micro and nanoplastics in human blood by pyrolysis-gas chromatography–mass spectrometry2024 · 118 citations
  5. 5Optical, Chemical, and Biological Detection Methods of Microplastics and Nanoplastics2026 · 5 citations