Reactive oxygen species drive aging-associated microplastic release in diverse infusion ingredients
Xu Zhang1, Ning Li2, Xintong Li3
1Medical Science and Technology Innovation Center, Shandong First Medical University & Shandong Academy of Medical Sciences, Jinan, Shandong 250117, PR China; School of Public Health, Shandong First Medical University & Shandong Academy of Medical Sciences, Jinan, Shandong 250117, PR China.
Abstract:
Exposure routes and transport of microplastics (MPs) from the environment into the human bodies deserve considerable attention. Intravenous injection has been reported as a direct MP-intrusion pathway. However, it is unclear whether or how the infusion fluid composition influences polymer degradation and MP release. Here, we determined that the concentrations of MPs shed from infusion bags ranged from 522 to 5455 particles/L. The storage period, mechanical shaking, and storage temperature all contributed to MP release to some extent; however, the infusion fluid composition affected the formation of MPs more than any other factor. Infusion fluids containing moxifloxacin hydrochloride, etimicin sulfate, and sodium bicarbonate ringer's solution generated more reactive oxygen species than those containing sodium chloride, grape sugar, and glucose and sodium chloride. Specifically, the generation of reactive oxygen species (hydroxyl radicals, carbonate radicals, and single oxygen) facilitated oxygen-containing functional group formation and breaking of carbon chains on the surface of the polypropylene plastic, which increased aging and fragmentation. Overall, this study provides knowledge of the mechanisms underlying MP release from infusion bags during storage and transportation. This offers insight for optimizing the use and handling of infusion bags in medical settings to minimize contamination.
Insights
Microplastic (MP) release from medical infusion bags is influenced by fluid composition. Certain solutions generate reactive oxygen species, accelerating MP fragmentation and increasing contamination risk.
Area of Science:
- Environmental Science
- Materials Science
- Medical Device Contamination
Background:
- Microplastics (MPs) pose risks as they enter the human body through various pathways.
- Intravenous injection is a direct route for MP intrusion.
- The impact of infusion fluid composition on MP release from medical devices is not well understood.
Purpose of the Study:
- To investigate the release of MPs from infusion bags.
- To determine how infusion fluid composition affects MP shedding.
- To elucidate the mechanisms of MP release and degradation.
Main Methods:
- Quantified MP concentrations in infusion bags.
- Assessed the influence of storage period, shaking, and temperature on MP release.
- Analyzed the effect of different infusion fluid compositions on MP generation, focusing on reactive oxygen species (ROS).
Main Results:
- MP concentrations ranged from 522 to 5455 particles/L.
- Infusion fluid composition significantly impacted MP release, more than storage conditions.
- Fluids with moxifloxacin hydrochloride, etimicin sulfate, and sodium bicarbonate ringer's solution generated higher ROS levels, leading to polypropylene degradation.
Conclusions:
- Infusion fluid chemistry drives MP release from polypropylene infusion bags.
- ROS generation facilitates polymer aging and fragmentation, increasing MP shedding.
- Findings offer insights for optimizing medical practices to minimize MP contamination from infusion bags.
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