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Cotransport of nanoplastics and plastic additive bisphenol AF (BPAF) in unsaturated hyporheic zone: Coupling effects of surface functionalization and protein corona

Water Research 2024 12 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Guanghua Lu, Jiaqi Zhang, Guanghua Lu, Xin Ling, Zhenhua Yan, Zhenhua Yan, Leibo Zhang, Zhenhua Yan, Guanghua Lu Zhenhua Yan, Guanghua Lu Zhenhua Yan, Jiaqi Zhang, Zhenhua Yan, Jiaqi Zhang, Xin Ling, Jiaqi Zhang, Zhenhua Yan, Zhenhua Yan, Guanghua Lu Guanghua Lu Guanghua Lu Guanghua Lu Zhenhua Yan, Zhenhua Yan, Zhenhua Yan, Zhenhua Yan, Zhenhua Yan, Guanghua Lu Guanghua Lu Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Guanghua Lu, Xin Ling, Guanghua Lu Guanghua Lu Jiaqi Zhang, Jiaqi Zhang, Guanghua Lu Jiaqi Zhang, Jiaqi Zhang, Jiaqi Zhang, Guanghua Lu Guanghua Lu Guanghua Lu Guanghua Lu Guanghua Lu Zhenhua Yan, Guanghua Lu Guanghua Lu Guanghua Lu Guanghua Lu Guanghua Lu Guanghua Lu Leibo Zhang, Guanghua Lu Leibo Zhang, Leibo Zhang, Guanghua Lu Zhenhua Yan, Zhenhua Yan, Zhenhua Yan, Leibo Zhang, Leibo Zhang, Zhenhua Yan, Zhenhua Yan, Heyun Fu, Xin Ling, Xin Ling, Guanghua Lu, Guanghua Lu, Leibo Zhang, Guanghua Lu, Zhenhua Yan, Zhenhua Yan, Leibo Zhang, Jiaqi Zhang, Jiaqi Zhang, Zhenhua Yan, Zhenhua Yan, Zhenhua Yan, Heyun Fu, Guanghua Lu Leibo Zhang, Guanghua Lu Zhenhua Yan, Zhenhua Yan, Heyun Fu, Leibo Zhang, Xin Ling, Heyun Fu, Xin Ling, Guanghua Lu, Guanghua Lu, Zhenhua Yan, Zhenhua Yan, Zhenhua Yan, Guanghua Lu Zhenhua Yan, Heyun Fu, Zhenhua Yan, Zhenhua Yan, Guanghua Lu, Guanghua Lu Leibo Zhang, Guanghua Lu Guanghua Lu, Zhenhua Yan, Guanghua Lu

Summary

Researchers examined how surface modifications and protein coatings affect the movement of nanoplastics and the plastic additive bisphenol AF through simulated riverbed sediments. The study found that both surface functionalization and protein corona formation significantly altered the transport behavior and retention of nanoplastics in unsaturated soil conditions. Evidence indicates that environmental transformations of nanoplastic surfaces play a key role in determining how plastics and associated contaminants spread through hyporheic zones.

The ecological risk of combined pollution from microplastics (MPs) and associated contaminants usually depends on their interactions and environmental behavior, which was also disturbed by varying surface modifications of MPs. In this study, the significance of surface functionalization and protein-corona on the cotransport of nanoplastics (NPs; 100 nm) and the related additive bisphenol AF (BPAF) was examined in simulated unsaturated hyporheic zone (quartz sand; 250-425 μm). The electronegative bovine serum albumin (BSA) and electropositive trypsin were chosen as representative proteins, while pristine (PNPs), amino-modified (ANPs), and carboxyl-modified NPs (CNPs) were representative NPs with different charges. The presence of BPAF inhibited the mobility of PNPs/CNPs, but enhanced the release of ANPs in hyporheic zone, which was mainly related to their hydrophobicity changes and electrostatic interactions. Meanwhile, the NPs with high mobility and strong affinity to BPAF became effective carriers, promoting the cotransport of BPAF by 16.4 %-26.4 %. The formation of protein-coronas altered the mobility of NPs alone and their cotransport with BPAF, exhibiting a coupling effect with functional groups. BSA-corona promoted the transport of PNPs/CNPs, but this promoting effect was weakened by the presence of BPAF via increasing particle aggregation and hydrophobicity. Inversely, trypsin-corona aggravated the deposition of PNPs/CNPs, but competition deposition sites and increased energy barrier caused by coexisting BPAF reversed this effect, facilitating the cotransport of trypsin-PNPs/CNPs in hyporheic zone. However, BPAF and protein-coronas synergistically promoted the mobility of ANPs, owing to competition deposition sites and decreased electrostatic attraction. Although all of the NPs with two protein-coronas reduced dissolved BPAF in the effluents via providing deposition sites, the cotransport of total BPAF was improved by the NPs with high mobility (BSA-PNPs/CNPs) or high affinity to BPAF (BSA/trypsin-ANPs). However, the trypsin-PNPs/CNPs inhibited the transport of BPAF due to their weak mobility and adsorption with BPAF. The results provide new insights into the role of varying surface modifications on NPs in the vertical cotransport of NPs and associated contaminants in unsaturated hyporheic zone.

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