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Gut & Microbiome
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Key Physicochemical Properties Dictating Gastrointestinal Bioaccessibility of Microplastics-Associated Organic Xenobiotics: Insights from a Deep Learning Approach
Environmental Science & Technology2020
61 citations
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Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Score: 50
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0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Gabriel Sigmund,
Thorsten Hüffer,
Thorsten Hüffer,
Thilo Hofmann
Thorsten Hüffer,
Thorsten Hüffer,
Thorsten Hüffer,
Thorsten Hüffer,
Xinlei Liu,
Thorsten Hüffer,
Thilo Hofmann
Thorsten Hüffer,
Thilo Hofmann
Thorsten Hüffer,
Thorsten Hüffer,
Thorsten Hüffer,
Thilo Hofmann
Thilo Hofmann
Wei Chen,
Thorsten Hüffer,
Thorsten Hüffer,
Mehdi Gharasoo,
Thorsten Hüffer,
Thilo Hofmann
Thorsten Hüffer,
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Gabriel Sigmund,
Rong Ji,
Rong Ji,
Rong Ji,
Rong Ji,
Rong Ji,
Rong Ji,
Rong Ji,
Wei Chen,
Yu Shi,
Yu Shi,
Thorsten Hüffer,
Thorsten Hüffer,
Thorsten Hüffer,
Thorsten Hüffer,
Thorsten Hüffer,
Thorsten Hüffer,
Thorsten Hüffer,
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Rong Ji,
Rong Ji,
Rong Ji,
Rong Ji,
Rong Ji,
Wei Chen,
Rong Ji,
Rong Ji,
Wei Chen,
Gabriel Sigmund,
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thorsten Hüffer,
Thorsten Hüffer,
Xinlei Liu,
Xinlei Liu,
Thilo Hofmann
Wei Chen,
Rong Ji,
Thorsten Hüffer,
Rong Ji,
Thorsten Hüffer,
Wei Chen,
Rong Ji,
Thorsten Hüffer,
Thilo Hofmann
Rong Ji,
Thilo Hofmann
Thorsten Hüffer,
Thilo Hofmann
Thilo Hofmann
Wei Chen,
Rong Ji,
Rong Ji,
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thorsten Hüffer,
Thilo Hofmann
Yu Shi,
Thilo Hofmann
Thilo Hofmann
Thorsten Hüffer,
Thorsten Hüffer,
Wei Chen,
Xin Lin,
Rong Ji,
Rong Ji,
Rong Ji,
Rong Ji,
Rong Ji,
Thorsten Hüffer,
Wei Chen,
Wei Chen,
Wei Chen,
Wei Chen,
Wei Chen,
Rong Ji,
Wei Chen,
Rong Ji,
Rong Ji,
Wei Chen,
Rong Ji,
Rong Ji,
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Thilo Hofmann
Rong Ji,
Gabriel Sigmund,
Thorsten Hüffer,
Yongfeng Wang,
Rong Ji,
Rong Ji,
Rong Ji,
Rong Ji,
Thilo Hofmann
Thilo Hofmann
Rong Ji,
Rong Ji,
Thorsten Hüffer,
Thilo Hofmann
Wei Chen,
Wei Chen,
Rong Ji,
Thilo Hofmann
Thorsten Hüffer,
Rong Ji,
Rong Ji,
Wei Chen,
Thilo Hofmann
Rong Ji,
Thorsten Hüffer,
Wei Chen,
Rong Ji,
Rong Ji,
Gabriel Sigmund,
Thilo Hofmann
Rong Ji,
Rong Ji,
Thilo Hofmann
Wei Chen,
Rong Ji,
Thilo Hofmann
Wei Chen,
Rong Ji,
Rong Ji,
Wei Chen,
Rong Ji,
Rong Ji,
Rong Ji,
Thilo Hofmann
Summary
A deep learning analysis of gastrointestinal bioaccessibility data for 18 microplastic types found that polymer structural rigidity and surface area were the key physicochemical properties controlling desorption of pyrene and 4-nonylphenol under digestive conditions, covering a bioaccessibility range of 16–83% across polymer types.
A potential risk from human uptake of microplastics is the release of plastics-associated xenobiotics, but the key physicochemical properties of microplastics controlling this process are elusive. Here, we show that the gastrointestinal bioaccessibility, assessed using an in vitro digestive model, of two model xenobiotics (pyrene, at 391-624 mg/kg, and 4-nonylphenol, at 3054-8117 mg/kg) bound to 18 microplastics (including pristine polystyrene, polyvinyl chloride, polyethylene terephthalate, polypropylene, thermoplastic polyurethane, and polyethylene, and two artificially aged samples of each polymer) covered wide ranges: 16.1-77.4% and 26.4-83.8%, respectively. Sorption/desorption experiments conducted in simulated gastric fluid indicated that structural rigidity of polymers was an important factor controlling bioaccessibility of the nonpolar, nonionic pyrene, likely by inducing physical entrapment of pyrene in porous domains, whereas polarity of microplastics controlled bioaccessibility of 4-nonylphenol, by regulating polar interactions. The changes of bioaccessibility induced by microplastics aging corroborated the important roles of polymeric structures and surface polarity in dictating sorption affinity and degree of desorption hysteresis, and consequently, gastrointestinal bioaccessibility. Variance-based global sensitivity analysis using a deep learning neural network approach further revealed that micropore volume was the most important microplastics property controlling bioaccessibility of pyrene, whereas the O/C ratio played a key role in dictating the bioaccessibility of 4-nonylphenol in the gastric tract.