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Sampling, Identification and Characterization of Microplastics Release from Polypropylene Baby Feeding Bottle during Daily Use
Published on: July 24, 2021
Investigating the microwave degradation of polypropylene microplastics and their impact on human intestinal cell
Raphaela O G Ferreira1,2, Emine Merve Canga1, Aoife Gowen1
1UCD School of Biosystems & Food Engineering, University College Dublin, Belfield, Dublin, Ireland.
Abstract:
Humans are inevitably exposed to microplastics (MPs) through various pathways, with ingestion being a primary route. Polypropylene (PP), commonly used for food storage and microwave (MW) heating, has the potential to release MPs when exposed to heat or prolonged use. Despite their detection in human tissues, including the gut, the health impacts of degraded PP particles remain poorly understood. This study investigates the characteristics of MW-treated PP particles and their effects on human intestinal Caco-2 cells, focusing on cell metabolic activity, membrane damage, and oxidative stress. Caco-2 cells were exposed to PP-MPs with a concentration of 200 µg/mL subjected to various MW degradation cycles: 3-minute cycles (repeated 1, 5, and 10 times) and a 30-minute continuous cycle at high power (1000 W), for 24 and 48 h. Surface charge and infrared spectral analyses were employed for chemical characterization of the MPs. Toxicological assays were used to evaluate cell metabolism, membrane integrity, and oxidative stress. Results indicated that prolonged MW exposure led to oxidative degradation in the PP-MPs. After 24 h of exposure to MW-treated PP-MPs, an increase in the metabolic activity of Caco-2 cells ranging from 14% to 35% was observed. However, after 48 h, a statistically significant decrease in metabolic activity, ranging from 10% to 14% was observed for the cells treated with PP-MPs subjected to short MW cycles, while a persistent upregulation was observed for the 30 min continuous MW MPs. No membrane damage was detected in Caco-2 cells under any experimental condition. In contrast, oxidative stress (OS) levels surged by at least 74% in all MW cycle treatments after 24 h exposure and remained elevated compared to untreated controls after 48 h, suggesting OS as a key mechanism influencing cytotoxicity. Cell imaging suggested that MW-degraded PP-MPs induced a ROS-driven intracellular vacuolization consistent with early apoptotic signaling in Caco-2 cells. This study enhances our understanding of the biological effects of PP-MPs exposed to MW degradation, highlighting the need for further research into the broader health implications of plastic usage.
Insights
Microwave (MW) heating degrades polypropylene (PP) microplastics (MPs), causing oxidative stress in human intestinal cells. While initial cell activity increased, prolonged exposure led to decreased metabolism and potential early apoptosis, highlighting health risks of MW-degraded MPs.
Area of Science:
- Environmental Science
- Toxicology
- Materials Science
Background:
- Humans are exposed to microplastics (MPs) via ingestion, with polypropylene (PP) being common in foodware.
- PP MPs can degrade under microwave (MW) heating, but their health effects are unclear.
- Previous studies lack detailed analysis of MW-degraded PP MPs' impact on human intestinal cells.
Purpose of the Study:
- To investigate MW-induced degradation of PP MPs.
- To assess the toxicological effects of MW-treated PP MPs on human intestinal Caco-2 cells.
- To determine impacts on cell metabolic activity, membrane integrity, and oxidative stress.
Main Methods:
- PP MPs were subjected to various MW degradation cycles.
- Surface charge and infrared spectral analyses characterized MPs.
- Caco-2 cells were exposed to PP MPs (200 µg/mL) for 24 and 48 hours.
- Toxicological assays measured metabolic activity, membrane damage, and oxidative stress.
Main Results:
- MW exposure caused oxidative degradation of PP MPs.
- Cell metabolic activity initially increased (14-35% at 24h) but decreased significantly (10-14%) after 48h with short MW cycles.
- Oxidative stress increased by at least 74% at 24h and remained elevated; no membrane damage was observed.
- MW-degraded PP MPs induced ROS-driven vacuolization, suggesting early apoptosis.
Conclusions:
- MW degradation alters PP MPs, inducing oxidative stress in intestinal cells.
- Prolonged exposure to MW-treated PP MPs can negatively impact cell metabolism and induce early apoptotic signaling.
- Further research is needed on the health implications of MW-degraded plastic exposure.
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