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Desorption of pharmaceuticals from pristine and aged polystyrene microplastics under simulated gastrointestinal conditions

Journal of Hazardous Materials 2020 163 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 55 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Peng Liu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Peng Liu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Peng Liu, Xiaowei Wu, Xiaowei Wu, Hanyu Wang, Hanyu Wang, Peng Liu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Xiaowei Wu, Kun Lü, Xiaowei Wu, Xiaowei Wu, Hanyu Wang, Xiaowei Wu, Haiyong Liu, Haiyong Liu, Xiaowei Wu, Xiaowei Wu, Hanyu Wang, Xiaowei Wu, Hanyu Wang, Hanyu Wang, Kun Lü, Hanyu Wang, Hanyu Wang, Hanyu Wang, Hanyu Wang, Kun Lü, Hanyu Wang, Kun Lü, Xiaowei Wu, Shixiang Gao, Xiaowei Wu, Hanyu Wang, Hanyu Wang, Hanyu Wang, Hanyu Wang, Hanyu Wang, Xiaowei Wu, Hanyu Wang, Xiaowei Wu, Hanyu Wang, Hanyu Wang, Xiaowei Wu, Hanyu Wang, Shixiang Gao Kun Lü, Haiyong Liu, Hanyu Wang, Hanyu Wang, Hanyu Wang, Hanyu Wang, Xiaowei Wu, Kun Lü, Xiaowei Wu, Shixiang Gao Xiaowei Wu, Shixiang Gao, Xiaowei Wu, Shixiang Gao, Shixiang Gao, Shixiang Gao, Haiyong Liu, Shixiang Gao, Hanyu Wang, Shixiang Gao Shixiang Gao Shixiang Gao Shixiang Gao Hanyu Wang, Shixiang Gao, Shixiang Gao, Shixiang Gao, Xiaowei Wu, Shixiang Gao Shixiang Gao Shixiang Gao Shixiang Gao, Shixiang Gao Shixiang Gao Shixiang Gao Shixiang Gao, Shixiang Gao Kun Lü, Shixiang Gao, Shixiang Gao, Shixiang Gao, Shixiang Gao, Xiaowei Wu, Shixiang Gao, Shixiang Gao Shixiang Gao, Shixiang Gao, Shixiang Gao

Summary

Researchers investigated how pharmaceuticals desorb from pristine and aged polystyrene microplastics under simulated stomach and intestinal conditions of marine organisms. The study found that pharmaceutical release was higher in gut conditions due to intestinal components enhancing solubility, while aging of microplastics actually suppressed desorption by strengthening electrostatic bonds. Risk assessment indicated that microplastic-associated pharmaceuticals posed relatively low risks to organisms overall.

Polymers
Body Systems

Microplastics (MPs) in the environment usually undergo extensive weathering and can transport pollutants to organisms once being ingested. However, the transportation mechanism and effect of aging process are poorly understood. This study systematically investigated the desorption mechanisms of pharmaceuticals from pristine and aged polystyrene (PS) MPs under simulated gastric and intestinal conditions of marine organisms. Results showed that the increased desorption in stomach mainly depended on the solubilization of pepsin to pharmaceuticals and the competition for sorption sites on MPs via π-π and hydrophobic interactions. However, high desorption in gut relied on the solubilization of intestinal components (i.e. bovine serum albumin (BSA) and bile salts (NaT)) and the competitive sorption of NaT since the enhanced solubility increased the partition of pharmaceuticals in aqueous phase. Aging process suppressed the desorption of pharmaceuticals because aging decreased hydrophobic and π-π interactions but increased electrostatic interaction between aged MPs and pharmaceuticals, which became less affected by gastrointestinal components. Risk assessment indicated that the MP-associated pharmaceuticals posed low risks to organisms, and warm-blooded organisms suffered relatively higher risks than cold-blooded ones. This study reveals important information to understand the ecological risks of co-existed MPs and pollutants in the environment.

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