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Published on: July 27, 2022
Micro and nanoplastics in human carcinogenesis: Insights from in vitro studies
Geovanna Carla Amaro da Silva1, Matheus Naia Fioretto1, Micheli Canuto de Lima1
1São Paulo State University (UNESP), Institute of Biosciences, Department of Structural and Functional Biology, Botucatu, São Paulo, Brazil.
Abstract:
Many types of cancer affecting humans have been investigated for centuries, underscoring their significance as a major global health challenge shaped by genetic, epigenetic, and environmental factors. In contrast, plastic production has only recently gained attention in healthcare, largely due to its degradation and the resulting formation of micronanoplastics (MNPs), which pose potential risks to both the environment and human health. In both contexts, experimental models are crucial for elucidating the mechanisms linking MNPs exposure to cancer, with in vitro studies serving as a key investigative approach. This narrative review compiles in vitro evidence on the effects of MNPs exposure across various tumor cell types. Current findings indicate that MNPs can bioaccumulate and disrupt organ-specific homeostasis, primarily through oxidative stress induction and interference with lipid peroxidation. Within tumor environments, the dose and physicochemical properties of MNPs play a decisive role in determining the severity of their effects. Overall, MNPs appear to activate signaling pathways that promote cell proliferation and tumor-specific invasiveness, thereby contributing to a tumor-promoting microenvironment. Based on available in vitro data, a possible correlation emerges between MNPs-induced carcinogenesis and the identification of potential biomarkers of plastic exposure and tumor progression. This review thus provides a critical foundation for future in vivo and clinical studies aimed at clarifying the role of MNPs in cancer development.
Insights
Micronanoplastics (MNPs) exposure may promote cancer by increasing cell proliferation and invasiveness. This review highlights in vitro evidence linking MNPs to oxidative stress and a tumor-promoting microenvironment, suggesting potential biomarkers for plastic exposure and cancer progression.
Area of Science:
- Environmental Health
- Toxicology
- Oncology
Background:
- Cancer is a significant global health challenge influenced by genetic, epigenetic, and environmental factors.
- Plastic production and its environmental impact, particularly the formation of micronanoplastics (MNPs), are emerging concerns for human health.
- Experimental models are essential for understanding the mechanisms linking MNPs exposure to cancer development.
Purpose of the Study:
- To review and compile in vitro evidence on the effects of MNPs exposure on various tumor cell types.
- To elucidate the mechanisms by which MNPs may influence cancer progression.
- To explore potential correlations between MNPs exposure, carcinogenesis, and biomarkers.
Main Methods:
- Narrative review of existing in vitro studies.
- Analysis of data on MNPs' effects on different cancer cell lines.
- Examination of MNP dose and physicochemical properties in relation to observed effects.
Main Results:
- MNPs can bioaccumulate and disrupt organ homeostasis, primarily via oxidative stress and lipid peroxidation.
- MNPs activate signaling pathways that promote cancer cell proliferation and invasiveness, creating a tumor-promoting microenvironment.
- The dose and properties of MNPs significantly influence their impact on tumor cells.
Conclusions:
- In vitro data suggest a correlation between MNPs exposure and carcinogenesis.
- MNPs may contribute to cancer development by promoting a pro-tumorigenic microenvironment.
- Further in vivo and clinical studies are needed to confirm the role of MNPs in cancer and identify relevant biomarkers.
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