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September 10, 2025Toxics16 citationsOpen Access

Polyethylene Microplastics and Human Cells: A Critical Review

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SVSharin ValdiviaUniversity of ConcepciónCRCamila RiquelmeUniversity of ConcepciónMAManel ArmengolUniversitat Autònoma de Barcelona

Key Points

  • Polyethylene microplastics can induce significant oxidative stress and inflammation in human cells, affecting overall cellular health.
  • Evidence indicates that microplastics lead to cytotoxic responses, mitochondrial dysfunction, and changes in gene expression.
  • In vitro studies reveal that exposure to polyethylene microplastics promotes harmful cellular changes like epigenetic dysregulation.
  • The lack of standardized methods for measuring microplastics complicates comparisons across research, highlighting a need for regulatory policies.

Abstract

The widespread production and poor management of plastic waste have led to the pervasive presence of microplastics (MPs) in environmental and biological systems. Among various polymers, polyethylene (PE) is the most widely produced plastic globally, primarily due to its use in single-use packaging. Its persistence in ecosystems and resistance to degradation processes result in the continuous formation of PE-derived MPs. These particles have been detected in human biological matrices, including blood, lungs, placenta, and even the brain, raising increasing concerns about their bioavailability and potential health effects. Once internalized, PE MPs can interact with cellular membranes, induce oxidative stress, inflammation, and apoptosis, and interfere with epigenetic regulatory pathways. In vitro studies on epithelial, immune, and neuronal cells reveal concentration-dependent cytotoxicity, mitochondrial dysfunction, membrane disruption, and activation of pro-inflammatory cytokines. Moreover, recent findings suggest that PE MPs can induce epithelial-to-mesenchymal transition (EMT), senescence, and epigenetic dysregulation, including altered expression of miRNAs and DNA methyltransferases. These cellular changes highlight the potential role of MPs in disease development, especially in cardiovascular, metabolic, and possibly cancer-related conditions. Despite growing evidence, no standardized method currently exists for quantifying MPs in human samples, complicating comparisons across studies. Further, MPs can carry harmful additives and environmental contaminants such as bisphenols, phthalates, dioxins, and heavy metals, which enhance their toxicity. Global estimates indicate that humans ingest and inhale tens of thousands of MPs particles each year, yet long-term human research remains limited. Given these findings, it is crucial to expand research on PE MP toxicodynamics and to establish regulatory policies to reduce their release. Promoting alternative biodegradable materials and improved waste management practices will be vital in decreasing human exposure to MPs and minimizing potential health risks.

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Cite This Study

Valdivia et al. (2025) studied this question.

synapsesocial.com/papers/68c18f409b7b07f3a0615e25https://doi.org/10.3390/toxics13090756
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